WO2004064434A2 - Method and apparatus for updating locations of dormant mobile stations - Google Patents

Method and apparatus for updating locations of dormant mobile stations Download PDF

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Publication number
WO2004064434A2
WO2004064434A2 PCT/CA2004/000015 CA2004000015W WO2004064434A2 WO 2004064434 A2 WO2004064434 A2 WO 2004064434A2 CA 2004000015 W CA2004000015 W CA 2004000015W WO 2004064434 A2 WO2004064434 A2 WO 2004064434A2
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WO
WIPO (PCT)
Prior art keywords
zone
hacking
message
timer
bts
Prior art date
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PCT/CA2004/000015
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French (fr)
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WO2004064434A3 (en
WO2004064434B1 (en
Inventor
Hang Zhang
Mo-Han Fong
Ki-Chi Jang
Jun Li
Xixian Chen
Chung-Ching Wang
Geng Wu
James Weisert
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Nortel Networks Limited
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Publication of WO2004064434A2 publication Critical patent/WO2004064434A2/en
Publication of WO2004064434A3 publication Critical patent/WO2004064434A3/en
Publication of WO2004064434B1 publication Critical patent/WO2004064434B1/en

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Classifications

    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04WWIRELESS COMMUNICATION NETWORKS
    • H04W60/00Affiliation to network, e.g. registration; Terminating affiliation with the network, e.g. de-registration
    • H04W60/02Affiliation to network, e.g. registration; Terminating affiliation with the network, e.g. de-registration by periodical registration
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04WWIRELESS COMMUNICATION NETWORKS
    • H04W24/00Supervisory, monitoring or testing arrangements
    • H04W24/10Scheduling measurement reports ; Arrangements for measurement reports
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04WWIRELESS COMMUNICATION NETWORKS
    • H04W36/00Hand-off or reselection arrangements
    • H04W36/0005Control or signalling for completing the hand-off
    • H04W36/0083Determination of parameters used for hand-off, e.g. generation or modification of neighbour cell lists
    • H04W36/0085Hand-off measurements
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04WWIRELESS COMMUNICATION NETWORKS
    • H04W36/00Hand-off or reselection arrangements
    • H04W36/08Reselecting an access point
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04WWIRELESS COMMUNICATION NETWORKS
    • H04W60/00Affiliation to network, e.g. registration; Terminating affiliation with the network, e.g. de-registration
    • H04W60/04Affiliation to network, e.g. registration; Terminating affiliation with the network, e.g. de-registration using triggered events
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04WWIRELESS COMMUNICATION NETWORKS
    • H04W68/00User notification, e.g. alerting and paging, for incoming communication, change of service or the like
    • H04W68/04User notification, e.g. alerting and paging, for incoming communication, change of service or the like multi-step notification using statistical or historical mobility data

Definitions

  • the present invention relates to a method and an apparatus for updating locations of dormant mobile stations and in particular to a method and an apparatus for updating the locations of mobile stations to support fast call setup and reduce paging resource utilization in wireless access networks.
  • Code division multiple access (CDMA) communication systems provide communication services of wireless radio transmissions.
  • mobile stations (MSs) connected thereto may be in different states, e.g., active and dormant states.
  • a power-on MS may be operating in different states (e.g., active state, control-hold state or dormant state in a cdma2000 system).
  • the wireless access network has no knowledge on the location of the dormant MS. It is ideal in the ' wireless access network to have knowledge of an MS's location at sector level when the MS is in the dormant state, so as to support fast call setup as well as efficient paging.
  • the network has to page the MS across the entire network to know the location of the MS. After the MS responds to the paging and the network becomes aware of the location of the MS, the network can allocate dedicated resources to the MS and move it to the active state. Usually, this procedure takes about 1 - 2 seconds. It has been shown that the system capacity and the MS's end-to-end performance are quite sensitive to the dormant to active state transition delay, especially in a network where packet-data applications dominate the traffic load.
  • the network has data to send to an MS that is in a dormant state, but without bringing the MS back to the active state (e.g., short data burst application).
  • the network has to send the data across the whole network as it has no information on the location of the MS. This usually consumes significant forward link resources, especially when the short data burst application is widely supported.
  • the wireless access network is aware of the location of the MSs in the dormant state, the network will send a short data burst to the MS through the right sector and the consumption of the forward link resource will be reduced.
  • the frequency of sending "location update" messages should be configurable based on different scenarios.
  • Still other situations address the problem associated with locating the dormant MS through the use of current layer 3 messaging for the purpose of location update. Attached with each such layer 3 message is a list of pilot strengths that is redundant and increases the reverse link overhead.
  • the method and apparatus in accordance with the present invention achieve reduction of the overhead caused by the location update and to enable efficient paging.
  • a method for determining when a location update message is sent from a mobile station (MS) to a base transceiver station (BTS) when the MS is in a dormant state is provided.
  • the method includes the steps of: starting a first timer when the MS enters a dormant state; starting a second timer when the first timer reaches a predefined value Tl; while the first timer is counting and prior to its reaching the predefined value Tl, sending a layer 2 location update message whenever the MS performs an idle handoff indicating that the strongest pilot signal strength has changed from one sector to another sector; while the second timer is counting and prior to its reaching a predefined value T2, sending a layer 2 location update message whenever a further criterion is met; and after the second timer has reached the predefined value T2, sending no further layer 2 location update messages.
  • the further criterion is a time period, an MS's travel distance, a predefined number of idle handoffs.
  • the values Tl and T2 of the first and second timers are defined based on the condition of the network (e.g., QoS). The values Tl and T2 are provided by the network to the MSs.
  • a method for defining the region of a wireless network in which to page a dormant mobile station (MS) when the network determines that data is to be sent to that dormantMS is provided.
  • the method includes the steps of: starting a first timer when the MS enters a dormant state; starting a second timer when the first timer reaches a predefined value Tl; while the first timer is counting and prior to its reaching the predefined value Tl, sending an MS page to the sector indicated by the most recent layer 2 location update message received from the MS; while the second timer is counting and prior to its reaching a predefined value T2, sending an MS page to the sectors surrounding the sector indicated in the most recently received layer 2 location update message consistent with the further criterion being used to trigger a location update messages being sent from the MS; and after the second timer has reached the predefined value T2, sending an MS page to all network sectors.
  • a method for determining when a location update message needs to be sent from an MS to a base transceiver station (BTS) when the MS is in a dormant state includes the steps of: determining if the MS has moved physically from one geographic region to another region served by a cell sector; and sending a location update message to the network servicing the MS indicating that the two strongest pilot signals are received by the MS.
  • the step of determining includes the step of determining if the MS has moved physically outside the geographic region served by a plurality of cell sectors defined in a sub-packet zone received previously from the network servicing the MS.
  • the step of determining may include the step of: determining if the MS has moved physically into the geographic region served by a cell sector not identified in a list of cell sectors in a sub-packet zone received previously from the network servicing the MS.
  • the location update message is transmitted as a Level 2 message.
  • the layer 2 location update message contains a message type and an MS identifier, thereby the network updating the location of the MS.
  • the method may further include the step of: sending by the BTS to the MS a location update acknowledgement message containing a message type and an MS identifier, in response to the layer 2 location update message from the MS. Accordingly, the location update is initiated by the MS.
  • the methods may further include the steps of sending by the MS in the dormant state to the BTS a reconnect message containing a message type and an MS identifier; and sending by the BTS to the MS a channel assignment message.
  • the MS's dormant to active state transition is initiated by the MS.
  • the method may further include the steps of: sending by the MS to the BTS a layer 2 location update message containing a message type and an MS identifier; sending by the BTS to the MS a location update acknowledgement message containing a message type and an MS identifier; and sending by the BTS to the MS a message informing MS's active set.
  • the BTS initiates an MS's dormant to active state transition.
  • the metliod may further include the steps of: sending by the MS to the BTS a layer 2 location update message containing a message type and an MS identifier; sending by the BTS to the MS a location update acknowledgement message containing a message type and an MS identifier; sending by the BTS to the MS a message informing MS's active set; sending by the BTS to the MS a data burst message; and sending by the MS to the BTS a data burst acknowledgement message containing a message type and an MS identifier.
  • the data burst is initiated by the BTS.
  • zones may be registered to track MSs.
  • BTSs need to track MSs to a smaller tracking zone to achieve efficient dormant to active transition.
  • a method for tracking zone update to enable the network to page a mobile station (MS) in a smaller area, zones relating to base station controllers (BSCs) that control communications among the BTSs and the MSs, the zones being further defined as smaller zones that are registered for zone tracking.
  • the method includes the steps of: defining the size of the tracking zones; defining the zones of the BTSs; broadcasting tracking zone identifiers; and paging MSs in the tracking zones.
  • sub-packet zone ID is broadcasted in the overhead message.
  • the MS reports its location on R-CSCH when it detects a tracking zone change.
  • the network with the BSC level control can page the MS within the zone where the MS sends the report.
  • the MS reports on its change of location in the tracking zone.
  • the reporting of the location change is made on R-CSCH.
  • the same value is assigned to the BTSs in the same tracking zone and the size of the zone is determined.
  • the values are defined for the tracking zone identifier; the number of tracking zone identifiers to be maintained in the tracking zone list; the maximum number of Radio Environment Report Messages that the MS is permitted to transmit before disabling tracking zone reporting the BTS's support of tracking zone reporting indicator; and the tracking zone list which is a list of most recent tracking zone identifier received by the MS.
  • a mobile station for communicating with a base transceiver station (BTS) and a base station controller (BSC) in a wireless communication system
  • BTS base transceiver station
  • BSC base station controller
  • the MS in a dormant state sending a location update message, the MS starting a first timer when the MS enters a dormant state; starting a second timer when the first timer reaches a predefined value Tl ; while the first timer is counting and prior to its reaching the predefined value Tl, sending a layer 2 location update message whenever the MS performs an idle handoff indicating that the strongest pilot signal strength has changed from one sector to another sector; while the second timer is counting and prior to its reaching a predefined value T2, sending a layer 2 location update message whenever a further criterion is met; and after the second timer has reached the predefined value T2, sending no further layer 2 location update messages.
  • a communication network including the MS and a base transceiver stations
  • the network pages a dormant MS when the network determines that data is to be sent to that dormant MS.
  • the BTS receives the layer 2 location update message and sends a location update acknowledgement message to the MS.
  • a system for tracking zone update to enable the network to page a mobile station (MS) in a smaller area, zones relating to base station controllers (BSCs) that control communications among the BTSs and the MSs, the zones being further defined as smaller zones that are registered for zone tracking.
  • MS mobile station
  • BSCs base station controllers
  • the network is able to know the location of dormant MSs.
  • the overhead caused by the location update can be reduced and still efficient paging is enabled.
  • Figure 1 illustrates a wireless access network based on the CDMA system that can operate in accordance with an embodiment of the present invention.
  • Figure 2 illustrates a method for updating the location of an MS to facilitate fast paging in accordance with an embodiment of the present invention.
  • Figures 3 A and 3B illustrate a method for initiating the MS's dormant to active state transition by the MS in accordance with an embodiment of the present invention.
  • Figures 4A and 4B illustrate a method for initiating the MS's dormant to active state transition by the BTS in accordance with an embodiment of the present invention.
  • Figure 5 illustrates a method for initiating the data burst transmission by the MS in accordance with an embodiment of the present invention.
  • Figure 6 illustrates a method for initiating the data burst transmission by the BTS in accordance with an embodiment of the present invention.
  • Figure 7 illustrates service zones defined by areas wherein MSs communicate with the relevant BTSs wherein a method for tracking zone update according to an embodiment of the present invention can operate.
  • the present invention uses short layer 2 signalling to facilitate location determination of the MS within a network.
  • the usage of shorter messages significantly over-performs the use of longer messages (e.g., layer 3).
  • a method of three-level location update by MSs in dormant state is provided.
  • the three-level location update in accordance with the present invention may be applied to a cdma2000 system, for example.
  • a three-level location update mechanism is defined that is a "sector level” location update, an "area level” location update, and a completion of location update (i.e., a "network level”).
  • the sector level location update After an MS enters a dormant state, it reports its location whenever it performs an idle handoff. This operation is called a "sector level” location update and operates only for a certain period of time. The purpose of the "sector level” location update is to speed up the packet data state transition from dormant to active.
  • the MS reduces the frequency of location update.
  • the MS performs location update once every specified number of idle handoffs. This operation is called “area level” location update and is performed for a certain period of time.
  • the purpose of the "area level” location update is to significantly reduce the location update overhead (compared to the case of "sector level” location update) and still provide information on an MS's 'rough location' for the network to estimate the paging area.
  • an MS stops updating its location completely.
  • the existing operation procedure for an MS in a dormant state is performed.
  • the network operates at three levels: i.e., a sector level, an area level (page control mechanism), and a network level.
  • Tl specifies the time period when operating on the "sector level” location update
  • T2 specifies the time period when operating on the "area level” location update.
  • the values of Tl and T2 are defined based on the parameters such as the traffic type, tie system load, the MS's type and so on.
  • the "location update” message should be as short as possible in order to increase the throughput and reduce the interference.
  • this message only the absolutely necessary information is carried, which is an MS_ID, to uniquely identifythe MS.
  • This MS_ID is sent over a layer 2 message.
  • the MS_ID is assigned either during call setup or whenever the MS enters dormant state.
  • the MS sends the location update layer 2 message on the reverse link random access channel associated with the sector selected by the MSs. Therefore, when the network receives the layer 2 message, both the MS and the sector are uniquely identified.
  • Any radio environment related information (such as pilot strength measurements) will not be attached with each "location update" message and can be sent on the dedicated channel if needed when an MS is brought back to the active state.
  • the sector level location update is performed.
  • the timer is set to count and it continues up to Tl.
  • the MS In today's system, when the MS is in the dormant state, it continuously monitors the pilot strength of the surrounding sectors. The MS typically selects a sector with the highest pilot strength to monitor any paging information from the network. When a new sector with the highest pilot strength is detected, the MS performs an idle handoff and puts this new sector into its active set (1 member).
  • the location update is performed after the occurrence of every idle handoff. The location update procedure is performed until the timer reaches Tl .
  • the network is able to assign resources to the MS immediately on the reported sector and bring the MS back to its active state when needed. This feature is called fast call setup.
  • the timer reaches Tl, the MS starts the "area level" location update procedure, and the timer restarts counting until T2.
  • the timer restarts counting and the MS reports its location through the "location update” message.
  • the trigger for sending the "location update” message is a further criterion such as a timer based, distance based, or count of idle handoff based criteria.
  • the frequency of sending the "location update” message in this period should be much lower than that during the "sector level” operation. If the network needs to page an MS, the network can perform the paging in a larger area than one sector but much smaller area than the entire network and the specifics of this page is implementation specific.
  • the paging should be in sectors consistent with the distance an MS could travel during that 15 minute interval. If the further criterion is distance based, then the network page need only cover the area in which the MS could travel without causing a location update message being sent. If the further criterion is based on counting idle handoffs, a predefined number of idle handoffs can be counted or a predetermined number of idle handoffs indicating a move of the MS into a new sector can be counted. When the timer reaches T2, the MS starts the "network level" location update procedure.
  • the network location update is performed. An MS stops sending any location update message and the network has to do the general paging when needed. After an MS stops sending the "location update" message, the existing procedure is resumed.
  • the network can configure the MS to bypass the "sector level” and/or the "area level” update. By setting Tl as 0, the "sector level” update is bypassed. By setting T2 as 0, the "area level” update is bypassed.
  • the existing layer 3 message (resource release message (RRM)/resource release mini-message (RRMM)) can be modified to include the values of Tl and T2 and the "location update acknowledge required" flag.
  • the value of Tl and/or T2 could be zero, which means that there is no corresponding location update period.
  • the "location update acknowledge required" flag (one bit) can be set or reset to show whether the acknowledgement to the "location update" message is supported.
  • Option 1 is to modify the header part in the existing reservation mode of the reverse link enhanced access channel (R-EACH). Such modified header format is shown in Tables hereinafter.
  • Option 2 is to define a new 5ms frame (9.6 kb/s) for basic mode operation of R-EACH.
  • the layer 2 information carried on this frame is same as Option 1.
  • the long code mask includes the identification of sector used, R-EACH channel, the relationship between the MS and the selected R-EACH channel of the selected sector is unique.
  • a new MS_ID is defined and sent in the "location update” message.
  • This MS_ID length can be, e.g., 24 bit, to uniquely identify an MS in the dormant state that supports location update operation.
  • the MS_ID is sent through the reverse link channels associated with the sector which the MS selected as the member of its active set (the long code mask used for the transmission of the "location update” message) includes the sector ID. Therefore, the one-to-one relationship between the MS and the sector is clearly identified.
  • the MS_ID can be assigned either at the registration of the MS or whenever an MS goes to the dormant state through the existing RJ- ⁇ M/RRMM.
  • the ACK can be sent on the forward link channel assignment channel (F-CACH) or on the forward link common control channel (F-CCCH).
  • F-CACH forward link channel assignment channel
  • F-CCCH forward link common control channel
  • the network can send the Enhanced Channel Assignment message (ECAM) on F_CCCH channel and bring the MS back to the active state.
  • ECAM Enhanced Channel Assignment message
  • the network can require the MS to report its radio environment through the pilot strength measurement message (PSMM)/pilot strength measurement mini- message (PSMMM) or the MS can autonomously sends PSMM/PSMMM once it acquires the traffic channel.
  • PSMM pilot strength measurement message
  • PSMMM pilot strength measurement mini- message
  • the network decides the paging range based on the parameters which control the rule of location update operation.
  • the overhead caused by the location update is to define a MAC layer message for the purpose of location update is reduced.
  • the network brings an MS to the dormant state, the network assigns a specific length (e.g., 24-bit) mobile station identifier, LOC_UP_MS_ID, to the MS in a L3 signalling message.
  • a specific length e.g., 24-bit
  • the MS sends its LOC_UP_MS_ID contained in a MAC layer "location update" message over a random channel associated with the sector the MS is monitoring. In this way, the network obtains the information on the MS's location.
  • the additional radio environment report can be sent on the dedicated channel if needed, once a dedicated channel is acquired.
  • the MAC layer message can be sent, for example, in a frame with the length of 5 ms at rate of 9.6kbps.
  • the shorter message length sent over the random channel reduces the interference and increases the throughput by reducing the possibility of collisions.
  • the network can acknowledge each "location update" message by using the existing MAC layer ACK mechanism.
  • FIG. 1 shows a wireless access network that can operate in accordance with an embodiment of the present invention.
  • the network includes a plurality of Base Transceiver Stations (BTSs) (here only two BTSs 111 and 113 are shown for simplicity).
  • BTSs Base Transceiver Stations
  • MSs MSs
  • MSs Mobile Station Controller
  • PSTN Public Switching Telephone Network
  • the BSC 141 and BTSs 111 and 113 each have central processing units (CPU) and related data store means (not shown) to perform the communication and other functions.
  • each of the MSs 121 - 125 has a CPU and related data store means (not shown) to perform the communication and the other functions.
  • Each of the MSs 121 - 125 provides a timer function to enable the location update operation. The timer's function may be achieved by the CPU of the MS. The timer starts when the MS enters its dormant state. The timer stops when it reaches a specified value Tl. Thereafter, the timer restarts and it stops when it reaches another specified value T2.
  • the network shown in Figure 1 operates at three levels: i.e., a sector level, an area level (page control mechanism), and a network level.
  • the network and the MSs communicate with the R_EACH messages and the F_CACH messages.
  • Table I shows the format of the release C R_EACH header (32 bits).
  • HASH D Hash Identifier
  • HASHJD is for identification by F_CASH.
  • RATE_WORD Rate and frame size indicator.
  • the MS shall set this field according to Table II to indicate the requested transmission rate and frame size of the data to be transmitted on R-CCCH.
  • RATE_WORD indicates one of six configurations.
  • MODEJD Mode Identifier.
  • HOJREQ ID Handoff Request Identifier.
  • the MS shall include this field if MODEJD is set to '0'.
  • the MS shall include this field only if HO -EQJD is included and set to ' 1 ' . If included, the MS shall set this field to the neighbor pilot PN offset.
  • RESERVED Reserved bits.
  • the MS shall set this field so that the total number of bits in this message is 32.
  • the MS shall set all the reserved bits to '0'.
  • Table II shows the RATE_WORD Encoding.
  • Table III shows the format of a location update message (LUM).
  • the MS shall set this field so that the total number of bits in this message is 32.
  • the MS shall set all the reserved bits to '0'.
  • MSJD Mobile station identifier.
  • the MS shall set this field to LOC_UP_MS JDs.
  • MSGJTYPE Message Type.
  • the MS shall set this field to ' 10'.
  • Table IV shows the format of a reconnect message.
  • the MS shall set this field so that the total number of bits in this message is 32.
  • the MS shall set all the reserved bits to '0'.
  • MSJD Mobile station identifier.
  • the MS shall set this field to LOC_UP_MS JDs.
  • MSGJTYPE Message Type.
  • the MS shall set this field to '01 '.
  • Table V shows the format of a reservation request message.
  • the MS shall set this field so that the total number of bits in this message is 32.
  • the MS shall set all the reserved bits to '0'.
  • HASHJD Hash Identifier.
  • HASHJD is for identification by F_CASH.
  • MODEJD Mode Identifier.
  • the MS shall set this field to '0'. Other values for this field are reserved.
  • RATEJWORD Rate and frame size indicator.
  • the MS shall set this field according to Table II to indicate the requested transmission rate and frame size of the data to be transmitted on R-CCCH.
  • HOJREQJD Handoff Request Identifier.
  • the MS shall include this field if MODEJD is set to '0'.
  • NEIGHBOR_PN Neighbor Pilot PN Offset.
  • the MS shall include this field only if HO_REQJD is included and set to ' 1 ' . If included, the MS shall set this field to the neighbor pilot PN offset.
  • MSGJTYPE Message Type.
  • the MS shall set this field to '00'.
  • Table VI shows the format of an Early Acknowledgement Channel Assignment Message (EACAM).
  • MSGJTYPE Message Type.
  • the BTS shall set this field to '000'.
  • HASHJD Hash Identifier
  • the BTS shall set this field to the HASHJD field of the corresponding Enhanced Access Channel header received from the MS.
  • the BTS shall set this field according to above-mentioned Table II to indicate the transmission rate and frame duration of the R- CCCH that the BTS grants to the MS.
  • the BTS should determine the rate and frame duration based on the RATEJWORD field of the corresponding Enhanced Access Channel header received from the MS.
  • RCCCHJD Reverse Common Channel Identifier
  • the BTS shall set this field to the R-CCCH index that the BTS grants to the MS.
  • CPCCH ID Common Power Control Channel Identifier.
  • the BTS shall set this field to the index of the Common Power Control Channel.
  • HO_FLAG Handoff Flag
  • the BTS shall set this field to ' 1 ' if the HO J-EQ JD field of the corresponding Enhanced Access Channel header received from the MS is equal to ' 1' and the BTS grants the request for Power Control Subchannel being in soft-handoff. Otherwise, the BTS shall set this field to '0'.
  • the BTS shall set all the bits in this field to '0'.
  • Table VII shows the format of a power control channel assignment message (PCCAM).
  • MSGJTYPE Message Type.
  • the BTS shall set this field to '001 ' HASH ID: Hash Identifier.
  • the BTS shall set this field to the HASHJD field of the corresponding Enhanced Access Channel header received from the
  • the BTS shall set this field to the Common PC Channel corresponding to the neighbor BTS.
  • CPCSCH 2 Common Power Control Subchannel Identifier.
  • the BTS shall set this field to the Common PC Sub-channel corresponding to the neighbor BTS.
  • POWER_COMB JND PC bits combine Indicator.
  • the BTS shall set this field to ' 1 ' . Otherwise, the BTS shall set this field to '0'.
  • RESERVED Reserved bits.
  • the BTS shall set this field to '000'.
  • Table VIII shows the format of a location update aclcnowledgment message (LUAM).
  • MSGJTYPE Message Type.
  • the BTS shall set this field to '010'.
  • MSJD Mobile station identifier
  • the BTS shall set this field to the LOC_UP_MSJD field of the corresponding Location Update Message received from the MS.
  • RESERVED Reserved bits.
  • the BTS shall set this field to '00000'.
  • Table IX shows the format of a modified message format of a data burst acknowledgement message (DBAM).
  • MSGJTYPE Message Type.
  • the BTS shall set this field to '011 '.
  • MSJD Mobile station identifier.
  • the BTS shall set this field to the LOC JJP_MS JD field of the corresponding Location Update Message received from the MS.
  • -RESERVED Reserved bits.
  • the BTS shall set this field to '00000'.
  • Figure 2 shows a method of location update by an MS.
  • the BTS and the MS communicate with the R_EACH messages and the F_CACH messages.
  • the location update initiated by an MS will be described.
  • the values of Tl and T2 are defined based on the parameters such as the traffic type, the system load, the MS's type and so on.
  • the values of Tl and T2 are determined by the BSC 141 and sent by the BSC 141 (of the sector) to the MSs 121 - 125.
  • the MS initiates the location update. When the MS (e.g., the MS 121) enters its dormant state, the timer of the MS starts counting.
  • the location update header is shown in Table III (MSGJTYPE of two bits).
  • the location update acknowledgement message of three bits is shown in Table VIII (MSGJTYPE of three bits).
  • the BTS1 Before sending the location update acknowledgement message to the MS, the BTS1 notifies the BSC 141 to identify the update of the active set of the MS (Active_set info (MSJD)). This is repeated in a case where the timer does not reach Tl . The location of the dormant MS is updated.
  • the BTS2 sends the BSC 141 a message identifying the MS (Active_set info (MSJD)). The location of the dormant MS is updated.
  • the "location update” message is short in order to increase the throughput and reduce the interference.
  • this message only the absolutely necessary information is carried, which is an MSJD, to uniquely identify the MS.
  • This MSJD is sent over a layer 2 message.
  • the MS sends the location update layer 2 message on the reverse link random access channel associated with the sector selected by the MSs. Therefore, when the network receives the layer 2 message, both the MS and the sector are uniquely identified.
  • any radio environment related information (such as pilot strength measurements) will not be attached with each "location update" message and can be sent on a dedicated channel if needed when an MS is brought back to active state.
  • the BTS sends back the acknowledgement message to the MS that initiated the location update.
  • an acknowledgement to the "location update” message is implemented. However this is optional operation and the network can decide whether such an acknowledgement is required or not through a control bit along with the "release" message which brings the MS to the dormant state.
  • the timer is set to count when the MS goes to dormant state and continues counting up to Tl.
  • the MS In today's systems, when the MS is in the dormant state, it continuously monitors the pilot strength of the surrounding sectors.
  • the MS typically selects a sector with the highest pilot strength to monitor any paging information from the network. When a new sector with the highest pilot strength is detected, the MS performs an idle handoff and put this new sector into its active set (1 member).
  • the location update is performed after the occurrence of every idle handoff.
  • the location update procedure is performed as long as the timer does not reach Tl . Therefore, before the timer counts Tl, the network is able to assign resources to the MS immediately on the reported sector and bring the MS back to its active state when needed. This feature is called fast call setup.
  • the MS starts the "area level" location update procedure, and the timer starts counting until T2.
  • the timer starts counting and the MS reports its location through the "location update” message.
  • the trigger for sending the "location update” message is a further criterion such as a timer based, distance based or count of idle handoff based criteria.
  • the frequency of sending the "location update” message in this period should be much lower than that during the "sector level” operation.
  • the timer reaches T2
  • the MS starts the "network level” location update procedure. An MS stops sending any location update message and the network has to do the general paging when needed.
  • the network needs to page an MS, it can do the paging in a larger area than one sector but much smaller area than the entire network and the specifics of this page is implementation specific. For example, if the further criterion is time based (such as every 15 minutes where the period of T2 is perhaps 3 hours), the paging should be in sectors consistent with the distance an MS could travel during that 15 minute interval. If the further criterion is distance based, then the network page need only cover the area in which the MS could travel without causing a location update message being sent. If the further criterion is based on counting idle handoffs, a predefined number of idle handoffs can be counted or a predetermined number of idle handoffs indicating a move of the MS into a new sector can be counted.
  • the network can bring an MS in the dormant state back to active state before the expiration of Tl.
  • Figures 3 A and 3B show the procedure of the dormant to active state transition initiated by the MS. Referring to Figures 1 and 3 A and 3B, the dormant to active state transition by an MS will be described
  • the reconnect header is shown in Table IV (MSGJTYPE of two bits).
  • the BTS sends back the enhanced channel assignment message (ECAM).
  • ECAM enhanced channel assignment message
  • the MS returns to its active state and operates on one leg mode (i.e., one member in an active set). Later, the MS sends a pilot report message to the BTS over R_FCH/DCCH. This achieves higher throughput than RJ EACH.
  • the BTS sends ECAM (multiple members of active set) message to the MS over FJFCH/PDCH, because the network requires that the MS to report its radio environment through PSMM/PSMMM or the MS can autonomously sends PSMM/PSMMM once it acquires the traffic channel.
  • ECAM multiple members of active set
  • Option 1 is to send the ECAM over F_CCCH as shown in Figure 3A.
  • Option 2 is to send the ECAM over F_CACH as shown in Figure 3B.
  • Option 2 is more efficient than option 1, but the length of message in over F_CACH is restricted.
  • the network decides the paging range based on the parameters which control the rule of location update operation.
  • the network can bring an MS in the dormant state back to active state initiated by the BTS.
  • Figures 4A and 4B show the procedure of the dormant to active state transition initiated by the BTS. Referring to Figures 1 and 4A and 4B, the dormant to active state transition initiated by the BTS will be described.
  • the BTS initiates the location update in response to the MS's location update.
  • the MS e.g., the MS 121
  • the location update header is shown in Table III (MSGJTYPE of two bits).
  • the location update acknowledgement message of three bits is shown in Table VIII (MSGJTYPE of three bits).
  • the network is now aware of the location of the MS and the BTS sends the enhanced channel assignment message (ECAM) over F_CCCH.
  • ECAM enhanced channel assignment message
  • the MS backs to its active state and operates on one leg mode (i.e., one member in an active set).
  • the MS sends a pilot report message to the BTS over RJDCCH/FCH, because the network requires that the MS to report its radio environment through PSMM once it acquires the traffic channel. This achieves higher throughput than R_REACH.
  • Option 1 is that the BTS sends ECAM of multiple members in active set as shown in Figure 4A.
  • Option 2 is that the BTS sends ECAM of the MS's active set that is necessary to be updated as shown in Figure 4B. In Option 2, during the active state, the active set can be gradually updated.
  • the network can transmit the data burst to an MS in the dormant state.
  • Figure 5 shows the procedure of the data burst transmission initiated by a dormant MS. Referring to Figures 1 and 5, the data burst transition initiated by the MS will be described.
  • the MS (e.g., the MS 121) sends a message consisting of a preamble and header
  • MSGJType 10
  • R_EACH reverse link
  • the reservation request header is shown in Table V (MSGJTYPE of two bits).
  • EACAM Early Acknowledgement Channel Assignment Message
  • Table VI the format of the Early Acknowledgement Channel Assignment Message
  • the format of the data burst acknowledgement message is shown in Table IX.
  • the network can transmit the data burst to an MS in the dormant state.
  • Figure 6 shows the procedure of the data burst transmission initiated by the BTS. Referring to Figures 1 and 6, the data burst transition initiated by the BTS will be described.
  • the MS (e.g., the MS 121) sends a message consisting of a preamble and header
  • the location update message is shown in Table III (MSGJTYPE of two bits).
  • the network is aware of the location ofthe MS, the network sends a short data burst message to the MS over F_CCCH ofthe sectors in the "sub-packet data zone "where the MS is.
  • the format ofthe data burst acknowledgment message is shown in Table IX.
  • zones may be registered to track MSs. Such registration zones are efficient to voice services, but not to packet data services. BTSs need to track MS to a smaller tracking zone to achieve more efficient dormant to active transitions.
  • the present invention may provide a method for tracking zone update to enable a base transceiver station (BTS) to page a mobile station (MS) in a smaller area.
  • BTS base transceiver station
  • MS mobile station
  • sub-packet zone ID is broadcasted in the overhead message.
  • the MS that support the feature reports its location on R-CSCH when it detects a tracking zone change.
  • the service provider configures the size ofthe tracking zone and all BTSs in the same tracking zone have same zone value.
  • the network with the BSC level control can page the MS within the zone where the MS sends the report.
  • FIG. 7 shows an example of zones containing user MSs.
  • zones Zll, Z12 and Z13 belong to the area of one Base Station Controller BSC1.
  • Zones Z21, Z22 and Z23 belong to an adjacent area of another Base Station Controller BSC2.
  • Each zone is divided to a plurality of smaller areas: e.g., Bl, B2, B3, B4 and B5.
  • Zone Z13 is adjacent to zone Z23 and Bl, B2 and B3 belong to zone Z13 and B4 and B5 belong to zone 23, respectively.
  • TKZ_LIST_LEN S - Number of tracking zone identifier to be maintained in the tracking zone list.
  • MAX_NUM_TKZ S The maximum number of Radio Environment Report Messages that the MS is permitted to transmit before disabling tracking zone reporting.
  • TKZ_SUP S BTS support of tracking zone reporting indicator.
  • TKZJLISTs Tracking zone list. It is a list of most recent T ZJDs MS have received.
  • the MS monitors the Paging Channel or the Quick Paging Channel or Forward Common Control Channel/Primary Broadcast Control Channel.
  • the MS can receive messages, receive an incoming call (MS terminated call), initiate a call (MS originated call), cancel a priority access and channel assignment (PACA) call, initiate a registration, or initiate a message transmission.
  • MS terminated call receives an incoming call
  • MS originated call initiates a call
  • PDA priority access and channel assignment
  • the MS may monitor the Quick Paging Channel to determine if it should receive messages from the Paging Channel or Forward Common Control Channel.
  • the MS Upon entering the Mobile Station Dormant State from the Mobile Station Initialization State, the MS shall perform the following:
  • the MS shall perform the following:
  • T_SLOTTED s is equal to '00000000' or if the MS does not support the slotted timer; otherwise, enable the TMS Slotted timer with the duration specified by T SLOTTEDs and set SLOTTEDg to NO, and
  • the initial parameter is set up when the MS enters the dormant state from the MS initialization state.
  • the MS shall perform the following: - Set its code channel to PAGECH S ,
  • T_SLOTTED s is equal to '00000000' or if the MS does not support the slotted timer; otherwise, enable the TMS Slotted timer with the duration specified by T SLOTTEDg and set SLOTTEDg to NO, and
  • the MS Upon entering the Mobile Station Dormant State from the Mobile Station Control on the Traffic Channel State, the MS shall perform all ofthe following:
  • the MS may exit the Mobile Station Dormant State at any time and enter the System Determination Substate ofthe Mobile Station Initialization State with a reselection indication.
  • the MS While in the Mobile Station Dormant State, the MS shall perform the following procedures: • The MS shall perform Paging Channel or Forward Common Control Channel monitoring procedures.
  • the MS shall perform message acknowledgment procedures with the received forward message from the BTS.
  • the MS shall set REG_SECURITY_RESYNC (formerly called REG_ENCRYPT_RESYNC) to YES and the MS shall go to the System Determination Substate with an encryption/message integrity failure indication.
  • TKZ JD S is not equal to any entry in TKZ_LIST S , the MS shall send a Radio Environment Report Message by performing the Mobile Station Message Transmission Operation.
  • the MS shall disable the tracking zone update timer and set TKZ_ENABLED to NO.
  • the MS Upon expiration of the radio environment report timer, the MS shall disable the timer and set RER_ENABLED (the radio environment report) to NO. If TKZ JNFOJNCLg is equal to ' 1', then the MS shall perform the following:
  • the configuration message sequence number, CONFIG_MSG_SEQ r shall be compared to that stored in EXT_SYS_PAR_MSG_SEQ S . If the comparison results in a match, the MS may ignore the message. If the comparison results in a mismatch, then the MS shall process the remaining fields in the message as follows.
  • TKZjSUPg ' 1 '
  • the configuration message sequence number, CONFIG_MSG_SEO shall be compared to that stored in A41_SYS_PAR_MSG_SEQ S . If the comparison results in a match, the MS may ignore the message. If the comparison results in a mismatch, then the MS shall process the remaining fields in the message to store parameters. [00119] The MS shall store the following parameters:
  • CONFIG_MSG_SEQ s CONFIG_MSG_SEQ r
  • A41_SYS_PAR_MSG_SEQ S CONFIG_MSG_SEQ r
  • the MS shall also store the following parameters if the MS is not in the Origination Attempt Substate or Page Response Substate:
  • NID S NID r
  • TKZ_SUP S TKZ_SUP r
  • TKZJDg TKZJDr
  • TKZ _ENABLED is set to YES and the tracking zone update timer is not enabled, the MS shall perform the following:
  • the MS supports the Mobile Station Message Transmission Operation, the operation will be performed when the user directs the MS to transmit a Data Burst Message, or when the MS detects a change in the hook status since the last time when the MS sent hook status information and the MS supports the Device Information Message on the R-CSCH, or when the MS detects that a Radio Environment Report Message is required to be transmitted on the R-CSCH.
  • the MS shall set CURR_ACC_MSG_SEQ to NULL.
  • the MS shall enter the Update Overhead Information Substate ofthe System Access State with a message transmission indication within T33 m seconds.
  • the MS shall enter the Update Overhead Information Substate of the System Access State with a hook status indication within T33 m seconds.
  • the MS shall perform the following:
  • the MS shall enter the Update Overhead Information Substate ofthe System Access State with a radio environment report indication within T33 m seconds.
  • the MS shall enter the Update Overhead Information Substate of the System Access State with a tracking zone report indication within T33 m seconds. [00126] The MS enters different substates dependent upon the entry of the Update Overhead Information Substate as follows:
  • the MS shall enter the Mobile Station Message Transmission Substate with a message transmission indication.
  • the MS shall enter the Mobile Station Message Transmission Substate with a radio environment report indication.
  • the MS shall enter the Mobile Station Message Transmission Substate with a tracking zone report indication.
  • the MS responds in this substate.
  • the MS shall transmit the Data Burst Message to the BTS.
  • the MS shall set the autonomous message timer equal to AUTO_MSG_TNTERVAL s and shall start the timer.
  • the MS shall transmit the Device Information Message to the BTS, with the RECORD JTYPE field ofthe message set to 00100000 and the Hook Indicator field set to the current hook status.
  • the MS shall transmit the Radio Environment Report Message to the BTS in assured mode, and increment RER_COUNT (the radio environment report count) upon receiving confirmation of delivery. If, after incrementing, RER_COUNT is equal to MAX_NUM_RER S , the MS shall set RERJENABLED to NO. If RER_ENABLED is set to NO and TKZ_INFO_INCL s is equal to ' 1 ', the MS shall perform the following:
  • the MS shall perform the following:
  • the MS shall transmit the Radio Environment Report Message to the BTS.
  • the MS shall add TKZJDg to TKZJLISTg and start the TKZ timer for this TKZJDg. If TKZJLIST S is full, the entry with active TKZ timer with smallest remaining TKZ timer value shall be removed from the list before adding the new entry.
  • TKZ_COUNT upon receiving confirmation of delivery. If, after incrementing, TKZ_COUNT is equal to MAXJSrUMJTKZs, the MS shall disable the tracking zone update timer and set TKZ_ENABLED to NO.
  • the MS While in the Mobile Station Message Transmission Substate, the MS shall monitor the Paging Channel or the Forward Common Control Channel. The MS determines and declares in a case of a loss ofthe Paging Channel or the Forward Common Control Channel.
  • the MS may exchange Traffic Channel frames with the BTS in accordance with the current service configuration.
  • the MS may perform the gating operation of Reverse Pilot Channel.
  • the MS While in the Traffic Channel Substate, the MS shall perform the following:
  • the MS shall perform Forward Traffic Chaimel supervision. If a loss of the Forward Traffic Channel is declared, the layer 3 shall terminate all Call Control instances, and shall enter the System Determhiation Substate ofthe Mobile Station Initialization State with a system lost indication.
  • the MS may send a Pilot Strength Measurement Mini Message to report pilot strength order change information, periodic pilot strength information, or threshold based pilot strength information, as specified in the Mobile Assisted Burst Operation Parameters Message.
  • the MS shall set TKZ JENABLED to NO, set TKZ_LIST S to NULL, and disable the tracking zone update timer.
  • the MS shall adjust its transmit power.
  • the MS confirms the disconnect of all calls and physical channels. Upon entering the Release Substate, the MS shall perform the following:
  • the MS shall set the substate timer for T55 m seconds.
  • MAX_NUM_RER S 2MAX_NUM_RERJDXr).
  • RER_SID S SIDg
  • RERJS-TDg NIDg
  • the MS shall initialize the radio environment report pilot list (RER_PILOT_LIST).
  • the initial RER_PILOT_LIST is defined as the set of pilots that made up the Active Set on the Traffic Channel.
  • the MS shall enable the radio environment report timer with an initial value of infinity if RER_TIME r is equal to '111'; otherwise, the MS shall enable the radio environment report timer with an initial value of 2 ⁇ R, TMEr seconds if
  • RER_TIME_UNIT r is equal to '00', or 2 RE R- TMEr minutes if >
  • RERjriMEJUNITr is equal to '01 ', or 2 RE R IMEr h 0U rs if
  • RER_TIME_UNIT r is equal to '10'.
  • the MS shall set TKZ_COUNT to 0, and shall perform the following:
  • TKZJLISTJLEN S TKZ_LIST_LEN r ).
  • TKZjTIMERg T-KZJTIMER-r.
  • TKZ_UPDATE_PRD S TKZ_UPDATE_PRD r ).
  • the MS shall perform the procedures to determine whether to enter the Mobile Station Dormant State or System Determination Substate of the Mobile Station Initialization State.
  • MSGJTAG RERM - The RERM is shown in Table XL
  • the MS shall set this field to '1' if RER_COUNT is equal to (MAX_NUM_RER S - 1) or TKZ_COUNT is equal to (MAX_NUMJTKZg - 1); otherwise, the MS shall set this field to '0'.
  • the MS shall set this field to '1' if the Radio Environment Report Message is sent for tracking zone report; otherwise, the MS shall set this field to '0'.
  • the Capability Information record identifies whether the following optional or MOBJJREV dependent features are supported by the MS.
  • the format ofthe indicator message is shown in Table XII.
  • the MS shall set this field to ' 1' if it supports radio environment reporting on the R-CSCH; otherwise, the MS shall set this field to '0'.
  • T e MS shall set this field to '1 ' if it supports tracking zone reporting on the R-CSCH; otherwise, the MS shall set this field to '0'.
  • MSGJTAG ESPM - The fonnat of the Extended System Parameters Message (ESPM)is shown in Table XIII.
  • the BTS shall set this field to ' 1 ' if the tracking zone is supported; otherwise, the BTS shall set this field to '0'.
  • TKZ_SUP is set to ' 1 ', the BTS shall set this field to its tracking zone identifier; otherwise, the BTS shall omit this field.
  • MSGJTAG A41SPM -
  • the format of the ANSI-41 System Parameters Message (A41SPM) is shown in Table XIV.
  • Table XIV The format of the ANSI-41 System Parameters Message (A41SPM) is shown in Table XIV.
  • MSG_TNTEGRITY_SUP is set to '1', the BTS shall set this field as follows; otherwise, the BTS shall omit this field.
  • the BTS shall set this field to indicate the supported message integrity algorithms in addition to the default integrity algorithm.
  • the BTS shall set each subfield to '1' if the corresponding message integrity algorithm is supported by the BTS; otherwise, the BTS shall set the subfield to '0'.
  • the BTS shall set the RESERVED subfield to '00000000'.
  • TKZ_SUPPORTED - Tracking zone supported indicator The BTS shall set this field to ' 1 ' if the tracking zone is supported; otherwise, the BTS shall set this field to '0'.
  • TKZ JD - Tracking zone identifier The BTS shall set this field to ' 1 ' if the tracking zone is supported; otherwise, the BTS shall set this field to '0'.
  • TKZ_SUP is set to '1', the BTS shall set this field to its tracking zone identifier; otherwise, the BTS shall omit this field.
  • MSGJTAG ERM - The fonnat of the Extended Release Message (ERM) is shown in Table XV.
  • the BTS shall omit this field; otherwise, the BTS shall include this field and set it as follows: The BTS shall set this field to the maximum number of pilots other than the Active Set pilot that the MS is to maintain in RERJPILOT JJST. The BTS shall set this field to a value in the range 0 to 5 inclusive. TKZ JNFO JNCL - Tracking zone reporting information included indicator.
  • the BTS shall set this field as follows:
  • the BTS shall set this field to '1'; otherwise, the BTS shall set this field to '0'. Otherwise, the BTS shall set this field to '0.
  • MAXJSrUMJTKZ JDX Maximum number of tracking zone reporting index. If the tracking zone reporting information included indicator is set to '0', the BTS shall omit this field; otherwise, the BTS shall include this field and set it as follows:
  • the BTS shall set this field to the maximum number of tracking zone reports that the MS is allowed to transmit, expressed as 2 MAX _NUM_TKZJDX where 0 ⁇ MAX_NUM_TKZJDX ⁇ 6. If the MS is allowed to transmit an unlimited number of tracking zone reports, then the BTS shall set this field to '111'. TKZJUPDATE JPRD - Tracking zone update period.
  • the BTS shall omit this field; otherwise, the BTS shall include this field and set it as follows:
  • the BTS shall set this field such that the desired hacking zone update timer value is 2 TKZJJPDATEJPRD+6 sec0 nds. If the value of the timer is infinite, then the BTS shall set this field to '1111'. TKZ_LIST_LEN - Tracking zone list length.
  • the BTS shall omit this field; otherwise, the BTS shall include this field and set it as follows:
  • the BTS shall set this field to the length of the tracking zone list minus one. TKZ JTIMER - tracking zone timer.
  • the BTS shall omit this field; otherwise, the BTS shall include this field and set it as follows:
  • the BTS shall set this field to the value of the tracking zone timer (in units of seconds) minus one.
  • the radio environment report fields are required for being set to support tracking zone reporting by the MS while in the dormant state. If P_REV_IN_USE ⁇ is greater than or equal to four, the MS shall include the radio environment report fields; otherwise, the MS shall omit the radio environment report fields. When the MS includes time- sensitive radio environment report fields in the PDU being transmitted, the MS shall set the time-sensitive radio environment report fields.
  • the MS shall select the NUM_ADD_PILOTS and NUM_AUX_PILOTS pilots to be reported from among the pilots monitored in the ACCESS_HO_LIST and OTHERJREPORTED JJST, and shall include the respective records in the PDU, as a list with NUM_ADD JPILOTS and NUM_AUX_PILOTS entries, according to the following procedure (or equivalent):
  • the list shall be empty initially and new records shall be added consecutively from the start ofthe list, without duplicates, until the list contains NUM_ADD_PILOTS plus NUM_AUX_PILOTS records.
  • PREVIOUS_ACTIVE_PILOT s is not NULL, a record corresponding to the pilot identified by PREVIOUS_ACTIVE_PILOT s shall be added to the list, unless already present in the list.
  • RER_ENABLED is set to YES
  • the MS shall generate a new RERJPILOT JJST, which is the set of pilots that includes the Active Set pilot and the min(MAX_RER_PILOT_LIST_SIZE s , NUM_ADD JPILOTS + NUM_AUX_PILOTS) additional pilots with records included in the PDU that have the strongest pilot strength.
  • lxEV-DO has been standardized by the Telecommunication Industry Association as TIA/EIA/IS-856, " CDMA2000, High Rate Packet Data Air Interface Specification”.
  • lxEV-DV provides integrated voice and simultaneous high-speed packet data multimedia services within CDMA2000 at speeds of up to 3.09 Mbps.
  • MC-DV provides integrated multi-carrier voice and simultaneous high-speed packet data multimedia services within CDMA2000. .
  • UMTS/HSDPA is High Speed Downlink Packet Access (HSDPA) within the Universal Mobile Telephone System (UMTS).
  • HSDPA High Speed Downlink Packet Access
  • UMTS Universal Mobile Telephone System
  • the present invention can easily update the location of a dormant MS and setup fast call, while reduce paging resource utilization in wireless access networks.

Abstract

The invention concerns methods, a mobile station and a network for updating locations of mobile stations to support fast call setup and reduce paging resource utilisation in wireless access networks. The method comprises the steps of : - starting a first timer when the mobile station <MS> enters a dormant state - while the first timer is counting and prior to its reaching a prefined value T1, sending a layer 2 location update message whenever the MS performs an idle handoff, or sending an MS page to the sector indicated by the most recent layer 2 location update message received from the MS, - starting a second timer when the first timer reaches T1 - while the second timer is running and prior to its reaching a predefined value T2, sending a layer 2 location update message whenever a further criterion is met, or sending an MS page to the sectors surroiunding the sector indicated in the most recently received layer 2 location update message consistent with the further criterion used, and - after the second timer has reached T2, sending no further layer 2 location update messages, or sending an MS page message to all network sectors. In a second embodiment, a sinle timer, which is reset after reaching T1, is employed in a similar location update-method.

Description

METHOD AND APPARATUS FOR UPDATING LOCATIONS OF DORMANT MOBILE STATIONS
[0001] RELATED APPLICATIONS
[0002] The present invention claims priority from United States Provisional Patent
Application Serial Number 60/438,748 entitled "Method of Mobile Location Update to Support Fast Call Setup and Reduce Paging Resource Utilization in Wireless Access Networks" filed January 8, 2003 and United States Provisional Patent Application Serial Number 60/469,105 entitled "Method of Mobile Location Update to Support Fast Call Setup and Reduce Paging Resource Utilization in Wireless Access Networks" filed May 9, 2003.
[0003] TECHNICAL FIELD
[0004] The present invention relates to a method and an apparatus for updating locations of dormant mobile stations and in particular to a method and an apparatus for updating the locations of mobile stations to support fast call setup and reduce paging resource utilization in wireless access networks.
[0005] BACKGROUND INFORMATION
[0006] Code division multiple access (CDMA) communication systems provide communication services of wireless radio transmissions. In wireless access networks in accordance with CDMA systems, mobile stations (MSs) connected thereto may be in different states, e.g., active and dormant states. Moreover, a power-on MS may be operating in different states (e.g., active state, control-hold state or dormant state in a cdma2000 system). When an MS is in the dormant state, usually, the wireless access network has no knowledge on the location of the dormant MS. It is ideal in the ' wireless access network to have knowledge of an MS's location at sector level when the MS is in the dormant state, so as to support fast call setup as well as efficient paging.
[0007] Currently, the typical manner in which the network will determine the location of the MS will be to broadcast to the entire network. This presents a significant drain on the network resources. Further, in order for the wireless access network to know an MS's location as it moves through the network, an MS in the dormant state has to report on its location over the reverse link random channel whenever the MS performs an idle handoff. However, such a mechanism to update an MS's location significantly increases the reverse link overhead. It is therefore necessary to reduce the overhead caused by the location update and, at the same time, still enable efficient paging.
[0008] In some situations, whenever the network wants to bring the MS in the dormant state back to the active state, the network has to page the MS across the entire network to know the location of the MS. After the MS responds to the paging and the network becomes aware of the location of the MS, the network can allocate dedicated resources to the MS and move it to the active state. Usually, this procedure takes about 1 - 2 seconds. It has been shown that the system capacity and the MS's end-to-end performance are quite sensitive to the dormant to active state transition delay, especially in a network where packet-data applications dominate the traffic load.
[0009] In other situations, the network has data to send to an MS that is in a dormant state, but without bringing the MS back to the active state (e.g., short data burst application). In such instances, the network has to send the data across the whole network as it has no information on the location of the MS. This usually consumes significant forward link resources, especially when the short data burst application is widely supported. If the wireless access network is aware of the location of the MSs in the dormant state, the network will send a short data burst to the MS through the right sector and the consumption of the forward link resource will be reduced. However, due to the consideration of the reverse link overhead, the frequency of sending "location update" messages should be configurable based on different scenarios. [0010] Still other situations address the problem associated with locating the dormant MS through the use of current layer 3 messaging for the purpose of location update. Attached with each such layer 3 message is a list of pilot strengths that is redundant and increases the reverse link overhead.
[0011] SUMMARY OF THE INVENTION
[0012] It is an object of the present invention to provide an improved method and apparatus for updating locations of dormant MSs. The method and apparatus in accordance with the present invention achieve reduction of the overhead caused by the location update and to enable efficient paging.
[0013] In accordance with one aspect of the present invention, there is provided a method for determining when a location update message is sent from a mobile station (MS) to a base transceiver station (BTS) when the MS is in a dormant state. The method includes the steps of: starting a first timer when the MS enters a dormant state; starting a second timer when the first timer reaches a predefined value Tl; while the first timer is counting and prior to its reaching the predefined value Tl, sending a layer 2 location update message whenever the MS performs an idle handoff indicating that the strongest pilot signal strength has changed from one sector to another sector; while the second timer is counting and prior to its reaching a predefined value T2, sending a layer 2 location update message whenever a further criterion is met; and after the second timer has reached the predefined value T2, sending no further layer 2 location update messages.
[0014] For example, the further criterion is a time period, an MS's travel distance, a predefined number of idle handoffs. [0015] Advantageously, the values Tl and T2 of the first and second timers are defined based on the condition of the network (e.g., QoS). The values Tl and T2 are provided by the network to the MSs.
[0016] In accordance with another aspect of the present invention, there is provided a method for defining the region of a wireless network in which to page a dormant mobile station (MS) when the network determines that data is to be sent to that dormantMS. The method includes the steps of: starting a first timer when the MS enters a dormant state; starting a second timer when the first timer reaches a predefined value Tl; while the first timer is counting and prior to its reaching the predefined value Tl, sending an MS page to the sector indicated by the most recent layer 2 location update message received from the MS; while the second timer is counting and prior to its reaching a predefined value T2, sending an MS page to the sectors surrounding the sector indicated in the most recently received layer 2 location update message consistent with the further criterion being used to trigger a location update messages being sent from the MS; and after the second timer has reached the predefined value T2, sending an MS page to all network sectors.
[0017] In accordance with yet another aspect, there is provided a method for determining when a location update message needs to be sent from an MS to a base transceiver station (BTS) when the MS is in a dormant state. The method includes the steps of: determining if the MS has moved physically from one geographic region to another region served by a cell sector; and sending a location update message to the network servicing the MS indicating that the two strongest pilot signals are received by the MS.
[0018] For example, the step of determining includes the step of determining if the MS has moved physically outside the geographic region served by a plurality of cell sectors defined in a sub-packet zone received previously from the network servicing the MS. Similarly, the step of determining may include the step of: determining if the MS has moved physically into the geographic region served by a cell sector not identified in a list of cell sectors in a sub-packet zone received previously from the network servicing the MS.
[0019] Advantageously, the location update message is transmitted as a Level 2 message. The layer 2 location update message contains a message type and an MS identifier, thereby the network updating the location of the MS.
[0020] The method may further include the step of: sending by the BTS to the MS a location update acknowledgement message containing a message type and an MS identifier, in response to the layer 2 location update message from the MS. Accordingly, the location update is initiated by the MS.
[0021] The methods may further include the steps of sending by the MS in the dormant state to the BTS a reconnect message containing a message type and an MS identifier; and sending by the BTS to the MS a channel assignment message. The MS's dormant to active state transition is initiated by the MS.
[0022] The method may further include the steps of: sending by the MS to the BTS a layer 2 location update message containing a message type and an MS identifier; sending by the BTS to the MS a location update acknowledgement message containing a message type and an MS identifier; and sending by the BTS to the MS a message informing MS's active set. The BTS initiates an MS's dormant to active state transition.
[0023] The metliod may further include the steps of: sending by the MS to the BTS a layer 2 location update message containing a message type and an MS identifier; sending by the BTS to the MS a location update acknowledgement message containing a message type and an MS identifier; sending by the BTS to the MS a message informing MS's active set; sending by the BTS to the MS a data burst message; and sending by the MS to the BTS a data burst acknowledgement message containing a message type and an MS identifier. The data burst is initiated by the BTS. [0024] In communication services, zones may be registered to track MSs. BTSs need to track MSs to a smaller tracking zone to achieve efficient dormant to active transition. In accordance with the present invention, there is provided a method for tracking zone update to enable the network to page a mobile station (MS) in a smaller area, zones relating to base station controllers (BSCs) that control communications among the BTSs and the MSs, the zones being further defined as smaller zones that are registered for zone tracking. The method includes the steps of: defining the size of the tracking zones; defining the zones of the BTSs; broadcasting tracking zone identifiers; and paging MSs in the tracking zones.
[0025] In accordance with one aspect of the present invention, sub-packet zone ID is broadcasted in the overhead message. The MS reports its location on R-CSCH when it detects a tracking zone change. Based on the report from the MSs, the network with the BSC level control can page the MS within the zone where the MS sends the report.
[0026] Advantageously, the MS reports on its change of location in the tracking zone. The reporting of the location change is made on R-CSCH. For example, the same value is assigned to the BTSs in the same tracking zone and the size of the zone is determined. The values are defined for the tracking zone identifier; the number of tracking zone identifiers to be maintained in the tracking zone list; the maximum number of Radio Environment Report Messages that the MS is permitted to transmit before disabling tracking zone reporting the BTS's support of tracking zone reporting indicator; and the tracking zone list which is a list of most recent tracking zone identifier received by the MS.
[0027] In accordance with yet another aspect, there is provided a mobile station (MS) for communicating with a base transceiver station (BTS) and a base station controller (BSC) in a wireless communication system, the MS in a dormant state sending a location update message, the MS starting a first timer when the MS enters a dormant state; starting a second timer when the first timer reaches a predefined value Tl ; while the first timer is counting and prior to its reaching the predefined value Tl, sending a layer 2 location update message whenever the MS performs an idle handoff indicating that the strongest pilot signal strength has changed from one sector to another sector; while the second timer is counting and prior to its reaching a predefined value T2, sending a layer 2 location update message whenever a further criterion is met; and after the second timer has reached the predefined value T2, sending no further layer 2 location update messages.
[0028] Also, a communication network including the MS and a base transceiver stations
(BTSs) may be provided according to an embodiment of the present invention. The network pages a dormant MS when the network determines that data is to be sent to that dormant MS. In the network, the BTS receives the layer 2 location update message and sends a location update acknowledgement message to the MS.
[0029] In accordance with yet another aspect of the present invention, there is provided a system for tracking zone update to enable the network to page a mobile station (MS) in a smaller area, zones relating to base station controllers (BSCs) that control communications among the BTSs and the MSs, the zones being further defined as smaller zones that are registered for zone tracking.
[0030] In accordance with the present invention, the network is able to know the location of dormant MSs. The overhead caused by the location update can be reduced and still efficient paging is enabled.
[0031] BRIEF DESCRIPTION OF THE DRAWINGS
[0032] Figure 1 illustrates a wireless access network based on the CDMA system that can operate in accordance with an embodiment of the present invention.
[0033] Figure 2 illustrates a method for updating the location of an MS to facilitate fast paging in accordance with an embodiment of the present invention. [0034] Figures 3 A and 3B illustrate a method for initiating the MS's dormant to active state transition by the MS in accordance with an embodiment of the present invention.
[0035] Figures 4A and 4B illustrate a method for initiating the MS's dormant to active state transition by the BTS in accordance with an embodiment of the present invention.
[0036] Figure 5 illustrates a method for initiating the data burst transmission by the MS in accordance with an embodiment of the present invention.
[0037] Figure 6 illustrates a method for initiating the data burst transmission by the BTS in accordance with an embodiment of the present invention.
[0038] Figure 7 illustrates service zones defined by areas wherein MSs communicate with the relevant BTSs wherein a method for tracking zone update according to an embodiment of the present invention can operate.
[0039] DETAILED DESCRIPTION
[0040] The present invention uses short layer 2 signalling to facilitate location determination of the MS within a network. The usage of shorter messages (layer 2 message) significantly over-performs the use of longer messages (e.g., layer 3). In accordance with an embodiment of the present invention, a method of three-level location update by MSs in dormant state is provided. The three-level location update in accordance with the present invention may be applied to a cdma2000 system, for example.
[0041] In an example of the present invention, a three-level location update mechanism is defined that is a "sector level" location update, an "area level" location update, and a completion of location update (i.e., a "network level").
[0042] In the sector level location update, after an MS enters a dormant state, it reports its location whenever it performs an idle handoff. This operation is called a "sector level" location update and operates only for a certain period of time. The purpose of the "sector level" location update is to speed up the packet data state transition from dormant to active.
[0043] In the area level location update, after the "sector level" location update period, the
MS reduces the frequency of location update. The MS performs location update once every specified number of idle handoffs. This operation is called "area level" location update and is performed for a certain period of time. The purpose of the "area level" location update is to significantly reduce the location update overhead (compared to the case of "sector level" location update) and still provide information on an MS's 'rough location' for the network to estimate the paging area.
[0044] In the completion of location update, after the operation of the "area level" location update, an MS stops updating its location completely. At this level, the existing operation procedure for an MS in a dormant state is performed. Regarding the location update, the network operates at three levels: i.e., a sector level, an area level (page control mechanism), and a network level.
[0045] Whenever the network requires an MS to go to dormant through a "release" message, two timer values are defined, Tl and T2. Here, Tl specifies the time period when operating on the "sector level" location update and T2 specifies the time period when operating on the "area level" location update. The values of Tl and T2 are defined based on the parameters such as the traffic type, tie system load, the MS's type and so on. When an MS enters the dormant state, the timer starts counting and when it reaches Tl, it stops. Then, the timer restarts counting and when it reaches T2, it stops.
[0046] Due to the "location update" messages being sent over the random channel by the
MSs, the "location update" message should be as short as possible in order to increase the throughput and reduce the interference. In this message, only the absolutely necessary information is carried, which is an MS_ID, to uniquely identifythe MS. This MS_ID is sent over a layer 2 message. The MS_ID is assigned either during call setup or whenever the MS enters dormant state. The MS sends the location update layer 2 message on the reverse link random access channel associated with the sector selected by the MSs. Therefore, when the network receives the layer 2 message, both the MS and the sector are uniquely identified.
[0047] Any radio environment related information (such as pilot strength measurements) will not be attached with each "location update" message and can be sent on the dedicated channel if needed when an MS is brought back to the active state.
[0048] For the sake of reliability of the location' update operation, an acknowledgement to the "location update" message is implemented. However, this is an optional operation and the network can decide whether such an acknowledgement is required or not through a control bit along with the "release" message which brings the MS to the dormant state.
[0049] The sector level location update is performed. When the MS goes to a dormant state, the timer is set to count and it continues up to Tl. In today's system, when the MS is in the dormant state, it continuously monitors the pilot strength of the surrounding sectors. The MS typically selects a sector with the highest pilot strength to monitor any paging information from the network. When a new sector with the highest pilot strength is detected, the MS performs an idle handoff and puts this new sector into its active set (1 member). In accordance with an embodiment of the present invention, the location update is performed after the occurrence of every idle handoff. The location update procedure is performed until the timer reaches Tl . Therefore, before the timer counts Tl, the network is able to assign resources to the MS immediately on the reported sector and bring the MS back to its active state when needed. This feature is called fast call setup. When the timer reaches Tl, the MS starts the "area level" location update procedure, and the timer restarts counting until T2.
[0050] When an MS starts the "area level" location update procedure, the timer restarts counting and the MS reports its location through the "location update" message. The trigger for sending the "location update" message is a further criterion such as a timer based, distance based, or count of idle handoff based criteria. The frequency of sending the "location update" message in this period should be much lower than that during the "sector level" operation. If the network needs to page an MS, the network can perform the paging in a larger area than one sector but much smaller area than the entire network and the specifics of this page is implementation specific. For example, if the further criterion is time based (such as every 15 minutes where the period of T2 is perhaps 3 hours), the paging should be in sectors consistent with the distance an MS could travel during that 15 minute interval. If the further criterion is distance based, then the network page need only cover the area in which the MS could travel without causing a location update message being sent. If the further criterion is based on counting idle handoffs, a predefined number of idle handoffs can be counted or a predetermined number of idle handoffs indicating a move of the MS into a new sector can be counted. When the timer reaches T2, the MS starts the "network level" location update procedure.
[0051] The network location update is performed. An MS stops sending any location update message and the network has to do the general paging when needed. After an MS stops sending the "location update" message, the existing procedure is resumed.
[0052] The network can configure the MS to bypass the "sector level" and/or the "area level" update. By setting Tl as 0, the "sector level" update is bypassed. By setting T2 as 0, the "area level" update is bypassed.
[0053] In order to support the three-level location update operation, the existing layer 3 message (resource release message (RRM)/resource release mini-message (RRMM)) can be modified to include the values of Tl and T2 and the "location update acknowledge required" flag. The value of Tl and/or T2 could be zero, which means that there is no corresponding location update period. The "location update acknowledge required" flag (one bit) can be set or reset to show whether the acknowledgement to the "location update" message is supported. [0054] In order to support a short message (5 ms layer 2 message), two options are disclosed. 1) Option 1 is to modify the header part in the existing reservation mode of the reverse link enhanced access channel (R-EACH). Such modified header format is shown in Tables hereinafter. Option 2 is to define a new 5ms frame (9.6 kb/s) for basic mode operation of R-EACH. The layer 2 information carried on this frame is same as Option 1. As the long code mask includes the identification of sector used, R-EACH channel, the relationship between the MS and the selected R-EACH channel of the selected sector is unique.
[0055] A new MS_ID is defined and sent in the "location update" message. This MS_ID length can be, e.g., 24 bit, to uniquely identify an MS in the dormant state that supports location update operation. The MS_ID is sent through the reverse link channels associated with the sector which the MS selected as the member of its active set (the long code mask used for the transmission of the "location update" message) includes the sector ID. Therefore, the one-to-one relationship between the MS and the sector is clearly identified. The MS_ID can be assigned either at the registration of the MS or whenever an MS goes to the dormant state through the existing RJ-^M/RRMM.
[0056] If the network supports the feature of acknowledging the "location update" message, the ACK can be sent on the forward link channel assignment channel (F-CACH) or on the forward link common control channel (F-CCCH).
[0057] If the network wants to bring an MS in the dormant state back to active state before the expiration of Tl, the network can send the Enhanced Channel Assignment message (ECAM) on F_CCCH channel and bring the MS back to the active state. If multi-legs operation (multiple members in an active set of MSs in a soft handoff) is required, the network can require the MS to report its radio environment through the pilot strength measurement message (PSMM)/pilot strength measurement mini- message (PSMMM) or the MS can autonomously sends PSMM/PSMMM once it acquires the traffic channel. [0058] When the network wants to either bring an MS back or has short data to send to an MS when the MS is operating in the "area level" location update period, the network decides the paging range based on the parameters which control the rule of location update operation.
[0059] In another example of the present invention, the overhead caused by the location update is to define a MAC layer message for the purpose of location update is reduced. When the network brings an MS to the dormant state, the network assigns a specific length (e.g., 24-bit) mobile station identifier, LOC_UP_MS_ID, to the MS in a L3 signalling message.
[0060] Whenever an MS in the dormant state reports its location, instead of sending a L3 message with radio environment report, the MS sends its LOC_UP_MS_ID contained in a MAC layer "location update" message over a random channel associated with the sector the MS is monitoring. In this way, the network obtains the information on the MS's location. The additional radio environment report can be sent on the dedicated channel if needed, once a dedicated channel is acquired.
[0061] Since the MAC layer "location update" message contains much fewer information bits than a L3 layer message, the MAC layer message can be sent, for example, in a frame with the length of 5 ms at rate of 9.6kbps. The shorter message length sent over the random channel reduces the interference and increases the throughput by reducing the possibility of collisions. The network can acknowledge each "location update" message by using the existing MAC layer ACK mechanism.
[0062] Figure 1 shows a wireless access network that can operate in accordance with an embodiment of the present invention. In Figure 1, the network includes a plurality of Base Transceiver Stations (BTSs) (here only two BTSs 111 and 113 are shown for simplicity). Each of the BTSs provides communication links among a plurality of MSs (MSs) (here only three MSs 121, 123 and 125 are shown for simplicity) and between the MSs. The BTSs are connected to a Base Station Controller (BSC) 141 which is connected to a wireline network such as the Public Switching Telephone Network (PSTN) 131. The BSC 141 controls communication operations in the system, the operation being in relation to a back haul between the PSTN 131 and the BTSs. The BSC 141 and BTSs 111 and 113 each have central processing units (CPU) and related data store means (not shown) to perform the communication and other functions. Also, each of the MSs 121 - 125 has a CPU and related data store means (not shown) to perform the communication and the other functions. Each of the MSs 121 - 125 provides a timer function to enable the location update operation. The timer's function may be achieved by the CPU of the MS. The timer starts when the MS enters its dormant state. The timer stops when it reaches a specified value Tl. Thereafter, the timer restarts and it stops when it reaches another specified value T2.
The network shown in Figure 1 operates at three levels: i.e., a sector level, an area level (page control mechanism), and a network level. The network and the MSs communicate with the R_EACH messages and the F_CACH messages. Table I shows the format of the release C R_EACH header (32 bits).
Table I
Figure imgf000015_0001
[0064] In Table I,
HASH D: Hash Identifier.
The MS shall set this field to HASH_IDS. HASHJD is for identification by F_CASH. RATE_WORD: Rate and frame size indicator.
The MS shall set this field according to Table II to indicate the requested transmission rate and frame size of the data to be transmitted on R-CCCH. RATE_WORD indicates one of six configurations. MODEJD : Mode Identifier.
The MS shall set this field to '0'. Other values for this field are reserved. HOJREQ ID: Handoff Request Identifier.
The MS shall include this field if MODEJD is set to '0'.
Otherwise, the MS shall omit this field. NEIGHBOR J>N: Neighbor Pilot PN Offset.
The MS shall include this field only if HO -EQJD is included and set to ' 1 ' . If included, the MS shall set this field to the neighbor pilot PN offset. RESERVED: Reserved bits.
The MS shall set this field so that the total number of bits in this message is 32. The MS shall set all the reserved bits to '0'.
[0065] Table II shows the RATE_WORD Encoding.
Table II
Figure imgf000017_0001
[0066] Table III shows the format of a location update message (LUM).
Table III
Figure imgf000017_0002
[0067] In Table III,
RESERVED: Reserved bits.
The MS shall set this field so that the total number of bits in this message is 32. The MS shall set all the reserved bits to '0'. MSJD: Mobile station identifier.
The MS shall set this field to LOC_UP_MS JDs. MSGJTYPE : Message Type.
The MS shall set this field to ' 10'.
[0068] Table IV shows the format of a reconnect message. Table IV
Figure imgf000018_0001
[0069] In Table IV,
RESERVED: Reserved bits.
The MS shall set this field so that the total number of bits in this message is 32. The MS shall set all the reserved bits to '0'. MSJD: Mobile station identifier.
The MS shall set this field to LOC_UP_MS JDs. MSGJTYPE : Message Type.
The MS shall set this field to '01 '.
[0070] Table V shows the format of a reservation request message.
Table V
Figure imgf000018_0002
[0071] In Table V,
RESERVED: Reserved bits.
The MS shall set this field so that the total number of bits in this message is 32. The MS shall set all the reserved bits to '0'. HASHJD: Hash Identifier.
The MS shall set this field to HASHJDS. HASHJD is for identification by F_CASH. MODEJD : Mode Identifier.
The MS shall set this field to '0'. Other values for this field are reserved. RATEJWORD: Rate and frame size indicator.
The MS shall set this field according to Table II to indicate the requested transmission rate and frame size of the data to be transmitted on R-CCCH. HOJREQJD: Handoff Request Identifier.
The MS shall include this field if MODEJD is set to '0'.
Otherwise, the MS shall omit this field. NEIGHBOR_PN: Neighbor Pilot PN Offset.
The MS shall include this field only if HO_REQJD is included and set to ' 1 ' . If included, the MS shall set this field to the neighbor pilot PN offset. MSGJTYPE : Message Type.
The MS shall set this field to '00'.
[0072] Table VI shows the format of an Early Acknowledgement Channel Assignment Message (EACAM). Table VI
Figure imgf000020_0001
ble VI,
MSGJTYPE: Message Type.
The BTS shall set this field to '000'.
HASHJD: Hash Identifier.
The BTS shall set this field to the HASHJD field of the corresponding Enhanced Access Channel header received from the MS.
RATE_WORD: Rate and frame duration indicator.
The BTS shall set this field according to above-mentioned Table II to indicate the transmission rate and frame duration of the R- CCCH that the BTS grants to the MS. The BTS should determine the rate and frame duration based on the RATEJWORD field of the corresponding Enhanced Access Channel header received from the MS.
RCCCHJD: Reverse Common Channel Identifier.
The BTS shall set this field to the R-CCCH index that the BTS grants to the MS.
CPCCH ID: Common Power Control Channel Identifier. The BTS shall set this field to the index of the Common Power Control Channel.
HO_FLAG: Handoff Flag.
The BTS shall set this field to ' 1 ' if the HO J-EQ JD field of the corresponding Enhanced Access Channel header received from the MS is equal to ' 1' and the BTS grants the request for Power Control Subchannel being in soft-handoff. Otherwise, the BTS shall set this field to '0'.
RESERVED: Reserved bits.
The BTS shall set all the bits in this field to '0'.
[0074] Table VII shows the format of a power control channel assignment message (PCCAM).
Table VII
Figure imgf000021_0001
[0075] In Table VII,
MSGJTYPE: Message Type.
The BTS shall set this field to '001 ' HASH ID: Hash Identifier. The BTS shall set this field to the HASHJD field of the corresponding Enhanced Access Channel header received from the
MS. CPCCHJD_2: Common Power Control Channel Identifier.
The BTS shall set this field to the Common PC Channel corresponding to the neighbor BTS. CPCSCH 2: Common Power Control Subchannel Identifier.
The BTS shall set this field to the Common PC Sub-channel corresponding to the neighbor BTS. POWER_COMB JND: PC bits combine Indicator.
If the BTS instructs the MS to combine the PC bits received from the neighbor BTS, the BTS shall set this field to ' 1 ' . Otherwise, the BTS shall set this field to '0'. RESERVED: Reserved bits.
The BTS shall set this field to '000'.
[0076] Table VIII shows the format of a location update aclcnowledgment message (LUAM).
Table VIII
Figure imgf000022_0001
[0077] In Table VIII,
MSGJTYPE: Message Type.
The BTS shall set this field to '010'.
MSJD: Mobile station identifier.
The BTS shall set this field to the LOC_UP_MSJD field of the corresponding Location Update Message received from the MS. RESERVED: Reserved bits.
The BTS shall set this field to '00000'.
[0078] Table IX shows the format of a modified message format of a data burst acknowledgement message (DBAM).
Table IX
Figure imgf000023_0001
[0079] In Table IX,
MSGJTYPE: Message Type.
The BTS shall set this field to '011 '. MSJD: Mobile station identifier.
The BTS shall set this field to the LOC JJP_MS JD field of the corresponding Location Update Message received from the MS. -RESERVED: Reserved bits.
The BTS shall set this field to '00000'.
[0080] Figure 2 shows a method of location update by an MS. The BTS and the MS communicate with the R_EACH messages and the F_CACH messages. Referring to Figures 1 and 2, the location update initiated by an MS will be described.
[0081] The values of Tl and T2 are defined based on the parameters such as the traffic type, the system load, the MS's type and so on. The values of Tl and T2 are determined by the BSC 141 and sent by the BSC 141 (of the sector) to the MSs 121 - 125. [0082] The MS initiates the location update. When the MS (e.g., the MS 121) enters its dormant state, the timer of the MS starts counting. The MS sends a message consisting of a preamble and header (MSGJType = 00) to the BTS1 (e.g., the BTS 111) through the reverse link. The location update header is shown in Table III (MSGJTYPE of two bits). The BTS1 sends back a location update acknowledgement message (MSGJType = 010) through the forward link to the MS. The location update acknowledgement message of three bits is shown in Table VIII (MSGJTYPE of three bits). Before sending the location update acknowledgement message to the MS, the BTS1 notifies the BSC 141 to identify the update of the active set of the MS (Active_set info (MSJD)). This is repeated in a case where the timer does not reach Tl . The location of the dormant MS is updated.
[0083] If the MS 121 moves physically outside the geographic area served by the BTS 111 to another area served by the BTS2 (e.g., the BTS 113), the MS 121 sends a message consisting of a preamble and header (MSGJType = 00) only to the BTS2 through the reverse link. The BTS2 sends back a location update acknowledgement message (MSGJType = 010) through the forward link to the MS. Before responding to the MS, the BTS2 sends the BSC 141 a message identifying the MS (Active_set info (MSJD)). The location of the dormant MS is updated.
[0084] The "location update" message is short in order to increase the throughput and reduce the interference. In this message, only the absolutely necessary information is carried, which is an MSJD, to uniquely identify the MS. This MSJD is sent over a layer 2 message. The MS sends the location update layer 2 message on the reverse link random access channel associated with the sector selected by the MSs. Therefore, when the network receives the layer 2 message, both the MS and the sector are uniquely identified.
[0085] Any radio environment related information (such as pilot strength measurements) will not be attached with each "location update" message and can be sent on a dedicated channel if needed when an MS is brought back to active state. [0086] In the embodiment, the BTS sends back the acknowledgement message to the MS that initiated the location update. For the sake of reliability of location update operation, an acknowledgement to the "location update" message is implemented. However this is optional operation and the network can decide whether such an acknowledgement is required or not through a control bit along with the "release" message which brings the MS to the dormant state.
[0087] The timer is set to count when the MS goes to dormant state and continues counting up to Tl. In today's systems, when the MS is in the dormant state, it continuously monitors the pilot strength of the surrounding sectors. The MS typically selects a sector with the highest pilot strength to monitor any paging information from the network. When a new sector with the highest pilot strength is detected, the MS performs an idle handoff and put this new sector into its active set (1 member).
[0088] In accordance with an embodiment of the present invention, the location update is performed after the occurrence of every idle handoff. The location update procedure is performed as long as the timer does not reach Tl . Therefore, before the timer counts Tl, the network is able to assign resources to the MS immediately on the reported sector and bring the MS back to its active state when needed. This feature is called fast call setup. When the timer reaches Tl, the MS starts the "area level" location update procedure, and the timer starts counting until T2.
[0089] When an MS starts the "area level" location update procedure, the timer starts counting and the MS reports its location through the "location update" message. The trigger for sending the "location update" message is a further criterion such as a timer based, distance based or count of idle handoff based criteria. The frequency of sending the "location update" message in this period should be much lower than that during the "sector level" operation. When the timer reaches T2, the MS starts the "network level" location update procedure. An MS stops sending any location update message and the network has to do the general paging when needed. [0090] If the network needs to page an MS, it can do the paging in a larger area than one sector but much smaller area than the entire network and the specifics of this page is implementation specific. For example, if the further criterion is time based (such as every 15 minutes where the period of T2 is perhaps 3 hours), the paging should be in sectors consistent with the distance an MS could travel during that 15 minute interval. If the further criterion is distance based, then the network page need only cover the area in which the MS could travel without causing a location update message being sent. If the further criterion is based on counting idle handoffs, a predefined number of idle handoffs can be counted or a predetermined number of idle handoffs indicating a move of the MS into a new sector can be counted.
[0091] The network can bring an MS in the dormant state back to active state before the expiration of Tl. Figures 3 A and 3B show the procedure of the dormant to active state transition initiated by the MS. Referring to Figures 1 and 3 A and 3B, the dormant to active state transition by an MS will be described
[0092] The MS (e.g., the MS 121) sends a message consisting of a preamble and header (MSGJType = 01) to the BTS (e.g., the BTS 111) through the reverse link. The reconnect header is shown in Table IV (MSGJTYPE of two bits). The BTS sends back the enhanced channel assignment message (ECAM). The MS returns to its active state and operates on one leg mode (i.e., one member in an active set). Later, the MS sends a pilot report message to the BTS over R_FCH/DCCH. This achieves higher throughput than RJ EACH. Where multi-legs operation is required, the BTS sends ECAM (multiple members of active set) message to the MS over FJFCH/PDCH, because the network requires that the MS to report its radio environment through PSMM/PSMMM or the MS can autonomously sends PSMM/PSMMM once it acquires the traffic channel.
[0093] There are two options to send the ECAM via the BTS to the MS. Option 1 is to send the ECAM over F_CCCH as shown in Figure 3A. Option 2 is to send the ECAM over F_CACH as shown in Figure 3B. Option 2 is more efficient than option 1, but the length of message in over F_CACH is restricted.
[0094] When the network wants to either bring an MS back or has short data to send to an MS when the MS is operation in the "area level" location update period, the network decides the paging range based on the parameters which control the rule of location update operation.
[0095] The network can bring an MS in the dormant state back to active state initiated by the BTS. Figures 4A and 4B show the procedure of the dormant to active state transition initiated by the BTS. Referring to Figures 1 and 4A and 4B, the dormant to active state transition initiated by the BTS will be described.
[0096] The BTS initiates the location update in response to the MS's location update. The MS (e.g., the MS 121) sends a message consisting of a preamble and header (MSGJType = 00) to the BTS (e.g., the BTS 111) through the reverse link (RJEACH). The location update header is shown in Table III (MSGJTYPE of two bits). The BTS sends back a location update acknowledgement message (MSGJType = 010) through the forward link (F_CACH) to the MS. The location update acknowledgement message of three bits is shown in Table VIII (MSGJTYPE of three bits). In this case, the network is now aware of the location of the MS and the BTS sends the enhanced channel assignment message (ECAM) over F_CCCH. The MS backs to its active state and operates on one leg mode (i.e., one member in an active set). Then, the MS sends a pilot report message to the BTS over RJDCCH/FCH, because the network requires that the MS to report its radio environment through PSMM once it acquires the traffic channel. This achieves higher throughput than R_REACH.
[0097] Where multi-legs operation is required, there are two options of sending ECAM by the BTS to the MS. Option 1 is that the BTS sends ECAM of multiple members in active set as shown in Figure 4A. Option 2 is that the BTS sends ECAM of the MS's active set that is necessary to be updated as shown in Figure 4B. In Option 2, during the active state, the active set can be gradually updated.
[0098] The network can transmit the data burst to an MS in the dormant state. Figure 5 shows the procedure of the data burst transmission initiated by a dormant MS. Referring to Figures 1 and 5, the data burst transition initiated by the MS will be described.
[0099] The MS (e.g., the MS 121) sends a message consisting of a preamble and header
(MSGJType = 10) to the BTS (e.g., the BTS 111) through the reverse link (R_EACH). The reservation request header is shown in Table V (MSGJTYPE of two bits). The BTS sends back the early acknowledgement message (MSGJType = 01) to the MS over F_CACH. In the embodiment, the format of the Early Acknowledgement Channel Assignment Message (EACAM) shown in Table VI is modified by the location update acknowledgment message shown in Table VIII. The MS sends the preamble and data to the BTS over R_CCCH and the BTS sends data burst acknowledgement message (MSGJType = 11) to the MS over F_CACH. The format of the data burst acknowledgement message is shown in Table IX.
[00100] The network can transmit the data burst to an MS in the dormant state. Figure 6 shows the procedure of the data burst transmission initiated by the BTS. Referring to Figures 1 and 6, the data burst transition initiated by the BTS will be described.
[00101] The MS (e.g., the MS 121) sends a message consisting of a preamble and header
(MSGJType = 00) to the BTS (e.g., the BTS 111) through the reverse link (R_EACH). The location update message is shown in Table III (MSGJTYPE of two bits). The . BTS sends back the location update acknowledgement message (MSGJType = 010) to the MS over F_CACH. In this case, the network is aware of the location ofthe MS, the network sends a short data burst message to the MS over F_CCCH ofthe sectors in the "sub-packet data zone "where the MS is. The MS sends the data burst acknowledgment message (MSGJType = 11) to the BTS over R_EACH. The format ofthe data burst acknowledgment message is shown in Table IX. [00102] In communication services, zones may be registered to track MSs. Such registration zones are efficient to voice services, but not to packet data services. BTSs need to track MS to a smaller tracking zone to achieve more efficient dormant to active transitions. The present invention may provide a method for tracking zone update to enable a base transceiver station (BTS) to page a mobile station (MS) in a smaller area.
[00103] In order to improve the paging within smaller tracking zones, in accordance with an embodiment ofthe present invention, sub-packet zone ID is broadcasted in the overhead message. The MS that support the feature reports its location on R-CSCH when it detects a tracking zone change. The service provider configures the size ofthe tracking zone and all BTSs in the same tracking zone have same zone value. Based on the report from the MSs, the network with the BSC level control can page the MS within the zone where the MS sends the report.
[00104] Figure 7 shows an example of zones containing user MSs. Referring to Figure 7, zones Zll, Z12 and Z13 belong to the area of one Base Station Controller BSC1. Zones Z21, Z22 and Z23 belong to an adjacent area of another Base Station Controller BSC2. Each zone is divided to a plurality of smaller areas: e.g., Bl, B2, B3, B4 and B5. Zone Z13 is adjacent to zone Z23 and Bl, B2 and B3 belong to zone Z13 and B4 and B5 belong to zone 23, respectively.
[00105] To perform the tracking zone and the paging shown in Figure 7, the following is necessary as CDMA Numeric Information. TKZJDS - Tracking zone identifier.
TKZ_LIST_LENS - Number of tracking zone identifier to be maintained in the tracking zone list.
MAX_NUM_TKZS - The maximum number of Radio Environment Report Messages that the MS is permitted to transmit before disabling tracking zone reporting. TKZ_SUPS - BTS support of tracking zone reporting indicator. TKZJLISTs - Tracking zone list. It is a list of most recent T ZJDs MS have received.
[00106] In the MS in the dormant state, the MS monitors the Paging Channel or the Quick Paging Channel or Forward Common Control Channel/Primary Broadcast Control Channel. The MS can receive messages, receive an incoming call (MS terminated call), initiate a call (MS originated call), cancel a priority access and channel assignment (PACA) call, initiate a registration, or initiate a message transmission.
[00107] The MS may monitor the Quick Paging Channel to determine if it should receive messages from the Paging Channel or Forward Common Control Channel.
[00108] Upon entering the Mobile Station Dormant State from the Mobile Station Initialization State, the MS shall perform the following:
• If SRl_BCCH_NON_TD_TNCLs is equal to '1 ', or if SRI _TDJNCLS is equal to ' 1 ' and the MS supports the transmit diversity mode specified by
SRI _TDJVΪODEs, or if the MS supports Spreading Rate 3 on the common channel and SR3_INCLS is equal to '1', the MS shall perform the following:
- Set its Primary Broadcast Control Channel code channel to BCCHS, Set the Primary Broadcast Control Channel data rate as determined by BRATs,
- Set the Primary Broadcast Control Channel code rate as determined by BCCH CODEJRATEs,
- Set SLOTTEDg to YES if T_SLOTTEDs is equal to '00000000' or if the MS does not support the slotted timer; otherwise, enable the TMS Slotted timer with the duration specified by T SLOTTEDs and set SLOTTEDg to NO, and
- Perform common channel supervision. The initial parameter is set up when the MS enters the dormant state from the MS initialization state.
• Otherwise, the MS shall perform the following: - Set its code channel to PAGECHS,
- Set the Paging Channel data rate as determined by PRATs,
- Set SLOTTEDg to YES if T_SLOTTEDs is equal to '00000000' or if the MS does not support the slotted timer; otherwise, enable the TMS Slotted timer with the duration specified by T SLOTTEDg and set SLOTTEDg to NO, and
- Perform Paging Channel supervision.
[00109] Upon entering the Mobile Station Dormant State from the Mobile Station Control on the Traffic Channel State, the MS shall perform all ofthe following:
• Set SLOTTEDg to YES if T_SLOTTEDs is equal to '00000000' or if the MS does not support the slotted timer; otherwise, enable the T S Slotted timer with the duration specified by T_SLOTTEDs and set SLOTTEDg to NO.
• Perform common channel supervision.
• If TKZ_ENABLED is YES and the tracking zone update timer is not enabled, the MS shall perform the following:
- Initialize the tracking zone list TKZJ ISTg with the length of TKZ JJST J ENg and add TKZJDg to the TKZ_LISTS,
- Set the tracking zone update timer to infinity if TKZ JJPDATE JPRDg is equal to ' 1111 '; otherwise, the MS shall set the tracking zone update timer to 2 TKZ JJPDATE_PRDs + 6 seconds, then
- Enable the tracking zone update timer.
[00110] If REDIRECTIONS, PACAg, and NDSS J3RIGS are equal to disabled, the MS may exit the Mobile Station Dormant State at any time and enter the System Determination Substate ofthe Mobile Station Initialization State with a reselection indication.
[00111] While in the Mobile Station Dormant State, the MS shall perform the following procedures: • The MS shall perform Paging Channel or Forward Common Control Channel monitoring procedures.
• The MS shall perform message acknowledgment procedures with the received forward message from the BTS.
• If the key set-up timer expires or has expired, the MS shall set REG_SECURITY_RESYNC (formerly called REG_ENCRYPT_RESYNC) to YES and the MS shall go to the System Determination Substate with an encryption/message integrity failure indication.
• If TKZ_ENABLED is set to YES, the MS shall perform the following:
- If TKZ JDS is not equal to any entry in TKZ_LISTS, the MS shall send a Radio Environment Report Message by performing the Mobile Station Message Transmission Operation.
- If TKZ timer of any entry in TKZ_LISTS has expired, the MS shall delete that entry.
- If the tracking zone update timer expires, the MS shall disable the tracking zone update timer and set TKZ_ENABLED to NO.
[00112] Upon expiration of the radio environment report timer, the MS shall disable the timer and set RER_ENABLED (the radio environment report) to NO. If TKZ JNFOJNCLg is equal to ' 1', then the MS shall perform the following:
- Set TKZJENABLED to YES.
- Initialize the tracking zone list TKZJ-JSTS with the length of TKZJJST JLENg and add TKZJDg to the TKZ J-ISTS,
- Set the tracking zone update timer to infinity if TKZ JPDATE 'RDg is equal to ' 1111 ' ; otherwise, the MS shall set the tracking zone update timer to 2 TKZ JJPDATE_PRDS + 6 seConds, then
- Enable the tracking zone update timer.
[00113] Whenever an Extended System Parameters Message is received on the Paging
Channel, the configuration message sequence number, CONFIG_MSG_SEQr, shall be compared to that stored in EXT_SYS_PAR_MSG_SEQS. If the comparison results in a match, the MS may ignore the message. If the comparison results in a mismatch, then the MS shall process the remaining fields in the message as follows.
[00114] The MS shall store MS initiated position location determination supported indicator (MS JNITJPOS J.OC_SUPJNDs = MS_INIT_POS_LOC_SUP_lNDr).
[00115] If the MS supports tracking zone, the MS shall store tracking zone supported indicator (TKZ_SUPS = TKZ SUPr).
[00116] If TKZjSUPg is equal to ' 1 ' , the MS shall store the tracking zone identifier (TKZJDg = TKZJDr).
[00117] If TKZJBNABLED is YES and the tracking zone update timer is not enabled, the MS shall perform the following:
• Initialize the tracking zone list TKZ_LISTS with the length of TKZ_LIST_LENS and add TKZ JDS to the TKZ_LISTS,
• Set the tracking zone update timer to infinity if TKZJJPDATEJPRDg is equal to '1111'; otherwise, the MS shall set the tracking zone update timer to 2
TKZ JJPDATE_PRDs + 6 seconds, then
• Enable the tracking zone update timer.
[00118] Whenever an ANSI-41 System Parameters Message is received, the configuration message sequence number, CONFIG_MSG_SEO , shall be compared to that stored in A41_SYS_PAR_MSG_SEQS. If the comparison results in a match, the MS may ignore the message. If the comparison results in a mismatch, then the MS shall process the remaining fields in the message to store parameters. [00119] The MS shall store the following parameters:
• Configuration message sequence number (CONFIG_MSG_SEQs = CONFIG_MSG_SEQr, A41_SYS_PAR_MSG_SEQS = CONFIG_MSG_SEQr)
• Home registration indicator (HOME_REGs = HOME_REGr)
• If MSG_TNTEGRITY_SUPr is equal to '1' and SIG_INTEGRITY_SUP_INCLr is equal to ' 1 ', the MS shall store the message integrity algorithms that the BTS supports (SIG_INTEGRITY_SUPS = SIG_TNTEGRITY_SUPr); otherwise, the MS shall set SIG_INTEGRITY_SUPS to '00000000'.
[00120] The MS shall also store the following parameters if the MS is not in the Origination Attempt Substate or Page Response Substate:
• System identification (SIDS= SIDr)
• Network identification (NIDS = NIDr)
• Registration zone (REG_ZONEs = REG_ZONEr)
• If DIST_REG_INCL is equal to '0', then the MS shall set REG_DIST equal to '00000000000'.
• If the MS supports tracking zone, the MS shall store tracking zone supported indicator (TKZ_SUPS = TKZ_SUPr). If TKZ_SUPS is equal to '1', the MS shall store the tracking zone identifier (TKZJDg = TKZJDr).
• If TKZ _ENABLED is set to YES and the tracking zone update timer is not enabled, the MS shall perform the following:
- Initialize the tracking zone list TKZJ ISTg with the length of TKZ JTST LENs and add TKZJDg to the TKZJLISTg,
- Set the tracking zone update timer to infinity if TKZ JJPDATEJPRDg is equal to '1111'; otherwise, the MS shall set the tracking zone update timer to 2 TKZ_UPDATE_PRDs + 6 seconds, then
- Enable the tracking zone update timer. [00121] If the MS supports the Mobile Station Message Transmission Operation, the operation will be performed when the user directs the MS to transmit a Data Burst Message, or when the MS detects a change in the hook status since the last time when the MS sent hook status information and the MS supports the Device Information Message on the R-CSCH, or when the MS detects that a Radio Environment Report Message is required to be transmitted on the R-CSCH.
[00122] If the MS supports the Mobile Station Message Transmission Operation, the MS shall set CURR_ACC_MSG_SEQ to NULL.
[00123] If the MS supports the Mobile Station Message Transmission Operation and the operation is performed when the user directs the MS to transmit a Data Burst Message, the MS shall enter the Update Overhead Information Substate ofthe System Access State with a message transmission indication within T33m seconds.
[00124] If the MS supports the Mobile Station Message Transmission Operation and the operation is performed when the MS detects a change in the hook status since the last time when the MS sent hook status information, the MS shall enter the Update Overhead Information Substate of the System Access State with a hook status indication within T33m seconds.
[00125] If the MS supports the Mobile Station Message Transmission Operation and the operation is performed when the MS detects that a Radio Environment Report Message is required to be transmitted on the R-CSCH, the MS shall perform the following:
• If RERJBNABLED is set to YES, the MS shall enter the Update Overhead Information Substate ofthe System Access State with a radio environment report indication within T33m seconds.
• Otherwise, if TKZJBNABLED is set to YES, the MS shall enter the Update Overhead Information Substate of the System Access State with a tracking zone report indication within T33m seconds. [00126] The MS enters different substates dependent upon the entry of the Update Overhead Information Substate as follows:
• If this substate was entered with a message transmission indication, the MS shall enter the Mobile Station Message Transmission Substate with a message transmission indication.
• If this substate was entered with a hook status indication, the MS shall enter the Mobile Station Message Transmission Substate with a hook status indication.
• If this substate was entered with a PACA cancel indication, the MS shall enter the PACA Cancel Substate.
• If this substate was entered with a radio environment report indication, the MS shall enter the Mobile Station Message Transmission Substate with a radio environment report indication.
• If this substate was entered with a tracking zone report indication, the MS shall enter the Mobile Station Message Transmission Substate with a tracking zone report indication.
[00127] In the Mobile Station Message Transmission Substate, the MS sends a Data Burst
Message, a Device Information Message, or a Radio Environment Report Message. If the BTS responds with an authentication request, the MS responds in this substate.
[00128] Upon entering the Mobile Station Message Transmission Substate, the MS shall transmit the message as follows:
• If the MS entered this substate with a message transmission indication, the MS shall transmit the Data Burst Message to the BTS.
• If the MS entered this substate with a hook status indication, the MS shall set the autonomous message timer equal to AUTO_MSG_TNTERVALs and shall start the timer. The MS shall transmit the Device Information Message to the BTS, with the RECORD JTYPE field ofthe message set to 00100000 and the Hook Indicator field set to the current hook status. • If the MS entered this substate with a radio environment report indication, the MS shall transmit the Radio Environment Report Message to the BTS in assured mode, and increment RER_COUNT (the radio environment report count) upon receiving confirmation of delivery. If, after incrementing, RER_COUNT is equal to MAX_NUM_RERS, the MS shall set RERJENABLED to NO. If RER_ENABLED is set to NO and TKZ_INFO_INCLs is equal to ' 1 ', the MS shall perform the following:
- Set TKZ JENABLED to YES .
- Initialize the tracking zone list TKZ_LISTS with the length of TKZ JJST JLENs and add TKZJDg to the TKZJLISTg,
- Set the tracking zone update timer to infinity if TKZ JUPDATE JPRDS is equal to '1111'; otherwise, the MS shall set the tracking zone update timer to 2 TKZ_UPDATE_PRDg + 6 seConds, then
- Enabled the tracking zone update timer.
• If the MS entered this substate with a tracking zone report indication, the MS shall perform the following:
- The MS shall transmit the Radio Environment Report Message to the BTS.
- If the MS receives confirmation of delivery of Radio Environment Report Message, the MS shall add TKZJDg to TKZJLISTg and start the TKZ timer for this TKZJDg. If TKZJLISTS is full, the entry with active TKZ timer with smallest remaining TKZ timer value shall be removed from the list before adding the new entry.
- The MS shall increment TKZ_COUNT upon receiving confirmation of delivery. If, after incrementing, TKZ_COUNT is equal to MAXJSrUMJTKZs, the MS shall disable the tracking zone update timer and set TKZ_ENABLED to NO.
While in the Mobile Station Message Transmission Substate, the MS shall monitor the Paging Channel or the Forward Common Control Channel. The MS determines and declares in a case of a loss ofthe Paging Channel or the Forward Common Control Channel.
[00130] In the Traffic Channel Substate, the MS may exchange Traffic Channel frames with the BTS in accordance with the current service configuration. The MS may perform the gating operation of Reverse Pilot Channel.
[00131] While in the Traffic Channel Substate, the MS shall perform the following:
• The MS shall perform Forward Traffic Chaimel supervision. If a loss of the Forward Traffic Channel is declared, the layer 3 shall terminate all Call Control instances, and shall enter the System Determhiation Substate ofthe Mobile Station Initialization State with a system lost indication.
• The MS may send a Pilot Strength Measurement Mini Message to report pilot strength order change information, periodic pilot strength information, or threshold based pilot strength information, as specified in the Mobile Assisted Burst Operation Parameters Message.
• The MS shall set TKZ JENABLED to NO, set TKZ_LISTS to NULL, and disable the tracking zone update timer.
• The MS shall adjust its transmit power.
[00132] In the Release Substate, the MS confirms the disconnect of all calls and physical channels. Upon entering the Release Substate, the MS shall perform the following:
• The MS shall set the substate timer for T55m seconds.
• The MS shall set RERJENABLED to its default value of NO.
[00133] In response to an Extended Release Message, procedures for exiting the Release Substate are made. If the MS received an Extended Release Message with the RERJNFO JNCL (the radio environment report information included indicator) field set to ' 1 ', then the MS shall set RER_ENABLED to YES, RER_COUNT to 0, and shall perform the following:
• The MS shall store the following: - maximum allowed number of radio environment reports (MAX NUMJ-ERg = infinity, if MAX_NUM_RERJDXr is equal to
'111'; otherwise, MAX_NUM_RERS = 2MAX_NUM_RERJDXr).
- maximum number of pilots to maintain in RERJPILOTJLIST (MAX_RER_PILOT_LIST_SIZEs = MAX_RERJILOT_LIST_SIZEr). system identification for radio environment reporting (RER_SIDS = SIDg).
- network identification for radio envhOirment reporting (RERJS-TDg = NIDg).
• The MS shall initialize the radio environment report pilot list (RER_PILOT_LIST). The initial RER_PILOT_LIST is defined as the set of pilots that made up the Active Set on the Traffic Channel.
• The MS shall enable the radio environment report timer with an initial value of infinity if RER_TIMEr is equal to '111'; otherwise, the MS shall enable the radio environment report timer with an initial value of 2^R, TMEr seconds if
RER_TIME_UNITr is equal to '00', or 2RER- TMEr minutes if >
RERjriMEJUNITr is equal to '01 ', or 2RER IMEr h0Urs if
RER_TIME_UNITr is equal to '10'.
If the MS received an Extended Release Message with the field of the tracking zone reporting information included indicator set to ' 1 ' and the BTS support of tracking zone reporting indicator is equal to '1', then the MS shall set TKZ_COUNT to 0, and shall perform the following:
• The MS shall store the following:
- Tracking zone list length (TKZJLISTJLENS = TKZ_LIST_LENr).
- TKZ timer (TKZjTIMERg = T-KZJTIMER-r). - Maximum allowed number of tracking zone reports (MAX_NUMjTKZg = = infinity, if MAXJNUM JTKZ JDXr is equal to '111'; otherwise, MAXJS-UMJTKZs = 2MAX_NUM_TKZJDXr).
- Tracking zone update period (TKZ_UPDATE_PRDS = TKZ_UPDATE_PRDr).
• If RERJNFOJNCL is equal to '0', the MS shall set TKZ_ENABLED to YES.
• If RERJNFOJNCL is equal to '1', the MS shall set (TKZ_INFO_INCLs= TKZ_INFO_INCLr).
[00135] The MS shall perform the procedures to determine whether to enter the Mobile Station Dormant State or System Determination Substate of the Mobile Station Initialization State.
[00136] If the MS received a Release Order with ORDQ equal to '00000011 ' (Enhanced Release Order), the MS shall perform the procedures to exit the Release Substate.
[00137] The followings describe the messages and their PDU formats sent by the MS on the R- CSCH. The messages sent on the R-CSCH are summarized in Table X.
Table X
Figure imgf000041_0001
[00138] In Table X, PJREVJN JJSE (*) equal to "AU" implies all values applicable to the Band Class.
[00139] MSGJTAG: RERM - The RERM is shown in Table XL
Table XI
Figure imgf000041_0002
[00140] In Table XI,
LAST_REPORT - Last radio environment report indicator.
The MS shall set this field to '1' if RER_COUNT is equal to (MAX_NUM_RERS - 1) or TKZ_COUNT is equal to (MAX_NUMJTKZg - 1); otherwise, the MS shall set this field to '0'.
TKZ REPORT - Tracking zone report indicator.
The MS shall set this field to '1' if the Radio Environment Report Message is sent for tracking zone report; otherwise, the MS shall set this field to '0'.
[00141] The Capability Information record identifies whether the following optional or MOBJJREV dependent features are supported by the MS. The format ofthe indicator message is shown in Table XII.
Table XII
Figure imgf000042_0001
[00142] In Table XII,
RER SUPPORTED - Radio enviromnent reporting supported indicator. The MS shall set this field to ' 1' if it supports radio environment reporting on the R-CSCH; otherwise, the MS shall set this field to '0'.
TKZ_SUPPORTED - Tracking zone supported indicator. T e MS shall set this field to '1 ' if it supports tracking zone reporting on the R-CSCH; otherwise, the MS shall set this field to '0'.
[00143] MSGJTAG: ESPM - The fonnat of the Extended System Parameters Message (ESPM)is shown in Table XIII.
Table XIII
Figure imgf000043_0001
[00144] In Table XIII,
TKZ_SUPPORTED - Tracking zone supported indicator.
The BTS shall set this field to ' 1 ' if the tracking zone is supported; otherwise, the BTS shall set this field to '0'.
TKZ JD - Tracking zone identifier.
If TKZ_SUP is set to ' 1 ', the BTS shall set this field to its tracking zone identifier; otherwise, the BTS shall omit this field.
[00145] MSGJTAG: A41SPM - The format of the ANSI-41 System Parameters Message (A41SPM) is shown in Table XIV. Table XIV
Figure imgf000044_0001
able XIV,
SIG_TNTEGRITY_SUP - Signaling integrity algorithm supported by the BTS.
If MSG_TNTEGRITY_SUP is set to '1', the BTS shall set this field as follows; otherwise, the BTS shall omit this field.
The BTS shall set this field to indicate the supported message integrity algorithms in addition to the default integrity algorithm. The BTS shall set each subfield to '1' if the corresponding message integrity algorithm is supported by the BTS; otherwise, the BTS shall set the subfield to '0'.
The BTS shall set the RESERVED subfield to '00000000'.
TKZ_SUPPORTED - Tracking zone supported indicator. The BTS shall set this field to ' 1 ' if the tracking zone is supported; otherwise, the BTS shall set this field to '0'. TKZ JD - Tracking zone identifier.
If TKZ_SUP is set to '1', the BTS shall set this field to its tracking zone identifier; otherwise, the BTS shall omit this field.
[00147] MSGJTAG: ERM - The fonnat of the Extended Release Message (ERM) is shown in Table XV.
Table XV
[00148] In Table XV,
MAX_RER_LIST_SIZE - Maximum number of pilots to maintain in
RERJPILOT LIST.
If RERJNFOJNCL is set to '0', the BTS shall omit this field; otherwise, the BTS shall include this field and set it as follows: The BTS shall set this field to the maximum number of pilots other than the Active Set pilot that the MS is to maintain in RERJPILOT JJST. The BTS shall set this field to a value in the range 0 to 5 inclusive. TKZ JNFO JNCL - Tracking zone reporting information included indicator. If USE_EXT_CHJND is equal to '0' and CHJND is equal to ' 111 ', or the physical channels indicated by the two least significant bits of CHJND includes all the physical channels (FCH, DCCH, or both) currently being processed by the MS, the BTS shall set this field as follows:
• If the tracking zone reporting related fields are included in this message, the BTS shall set this field to '1'; otherwise, the BTS shall set this field to '0'. Otherwise, the BTS shall set this field to '0. MAXJSrUMJTKZ JDX - Maximum number of tracking zone reporting index. If the tracking zone reporting information included indicator is set to '0', the BTS shall omit this field; otherwise, the BTS shall include this field and set it as follows:
The BTS shall set this field to the maximum number of tracking zone reports that the MS is allowed to transmit, expressed as 2MAX_NUM_TKZJDX where 0 < MAX_NUM_TKZJDX < 6. If the MS is allowed to transmit an unlimited number of tracking zone reports, then the BTS shall set this field to '111'. TKZJUPDATE JPRD - Tracking zone update period.
If the tracking zone reporting information included indicator is set to '0', the BTS shall omit this field; otherwise, the BTS shall include this field and set it as follows:
The BTS shall set this field such that the desired hacking zone update timer value is 2TKZJJPDATEJPRD+6 sec0nds. If the value of the timer is infinite, then the BTS shall set this field to '1111'. TKZ_LIST_LEN - Tracking zone list length.
If the tracking zone reporting information included indicator is set to '0', the BTS shall omit this field; otherwise, the BTS shall include this field and set it as follows:
The BTS shall set this field to the length of the tracking zone list minus one. TKZ JTIMER - tracking zone timer.
If the tracking zone reporting information included indicator is set to '0', the BTS shall omit this field; otherwise, the BTS shall include this field and set it as follows:
The BTS shall set this field to the value of the tracking zone timer (in units of seconds) minus one.
[00149] The radio environment report fields are required for being set to support tracking zone reporting by the MS while in the dormant state. If P_REV_IN_USE^ is greater than or equal to four, the MS shall include the radio environment report fields; otherwise, the MS shall omit the radio environment report fields. When the MS includes time- sensitive radio environment report fields in the PDU being transmitted, the MS shall set the time-sensitive radio environment report fields.
[00150] The MS shall select the NUM_ADD_PILOTS and NUM_AUX_PILOTS pilots to be reported from among the pilots monitored in the ACCESS_HO_LIST and OTHERJREPORTED JJST, and shall include the respective records in the PDU, as a list with NUM_ADD JPILOTS and NUM_AUX_PILOTS entries, according to the following procedure (or equivalent):
• The list shall be empty initially and new records shall be added consecutively from the start ofthe list, without duplicates, until the list contains NUM_ADD_PILOTS plus NUM_AUX_PILOTS records.
• No record corresponding to the pilot in the Active Set shall be part of the list.
• If FIRST JS ACTIVE is equal to '0', a record corresponding to the common pilot shall be added to the list.
• If PREVIOUS_ACTIVE_PILOTs is not NULL, a record corresponding to the pilot identified by PREVIOUS_ACTIVE_PILOTs shall be added to the list, unless already present in the list.
• Records corresponding to pilots in the ACCESS JHOJLIST shall be added to the list without the encapsulated PDU exceeding max_msg_size for the channel on which the PDU will be sent.
• After including records corresponding to the pilots in the ACCESS JϊOJ.1ST, records conesponding to the pilots having the highest pilot strength relative to other pilots in the OTHER -EPORTED JJST shall be added to the list. As many pilots as possible from the OTHERJ EPORTEDJLIST shall be included in the list without the encapsulated PDU exceeding max_msg_size for the channel on which the PDU will be sent.
[00151] If the PDU corresponds to a Radio Environment Report Message, and
RER_ENABLED is set to YES, the MS shall generate a new RERJPILOT JJST, which is the set of pilots that includes the Active Set pilot and the min(MAX_RER_PILOT_LIST_SIZEs, NUM_ADD JPILOTS + NUM_AUX_PILOTS) additional pilots with records included in the PDU that have the strongest pilot strength.
[00152] It should be understood that the present invention is applicable to significantly enhance third generation wireless systems such as, but not limited to, lxEV-DO, lxEV-DV, MC-DV and UMTS/HSDPA. lxEV-DO has been standardized by the Telecommunication Industry Association as TIA/EIA/IS-856, " CDMA2000, High Rate Packet Data Air Interface Specification". lxEV-DV provides integrated voice and simultaneous high-speed packet data multimedia services within CDMA2000 at speeds of up to 3.09 Mbps. Relatedly, MC-DV provides integrated multi-carrier voice and simultaneous high-speed packet data multimedia services within CDMA2000. . UMTS/HSDPA is High Speed Downlink Packet Access (HSDPA) within the Universal Mobile Telephone System (UMTS). The present invention can easily update the location of a dormant MS and setup fast call, while reduce paging resource utilization in wireless access networks.
Although particular embodiments of the present invention have been described in detail, it should be appreciated that numerous variations, modifications, and adaptations may be made without departing from the scope ofthe present invention as defined in the claims.

Claims

HAT IS CLAIMED IS:
1. A method for determining when a location update message is sent from a mobile station (MS) to a base transceiver station (BTS) when the MS is in a dormant state, the method comprising the steps of: starting a first timer when the MS enters a dormant state; starting a second timer when the first timer reaches a predefined value Tl ; while the first timer is counting and prior to its reaching said predefined value Tl, sending a layer 2 location update message whenever the MS performs an idle handoff indicating that the strongest pilot signal strength has changed from one sector to another sector; while the second timer is counting and prior to its reaching a predefined value T2, sending a layer 2 location update message whenever a further criterion is met; and after the second timer has reached said predefined value T2, sending no further layer 2 location update messages.
2. The method of claim 1, wherein said further criterion includes a time period.
3 The method of claim 1, wherein said further criterion includes the MS having traveled a predetermined distance since the previous location update message was sent.
4 The method of claim 1, wherein said further criterion includes counting a predefined number of idle handoffs.
5 The method of claim 1, further comprising predefining the starting value for the first timer to said predefined value Tl .
6. The method of claim 1, further comprising predefining the starting value ofthe second timer to said predefined value T2.
7. The method of claim 4, further comprising predefining the starting value of the second timer to said predefined value T2.
8. A method for defining the region of a wireless network in which to page a dormant mobile station (MS) when the network determines that data is to be sent to that dormant MS, the method comprising the steps of: starting a first timer when the MS enters a dormant state; starting a second timer when the first timer reaches a predefined value Tl; while the first timer is counting and prior to its reaching said predefined -value Tl, sending an MS page to the sector indicated by the most recent layer 2 location update message received from the MS; while the second timer is counting and prior to its reaching a predefined value T2, sending an MS page to the sectors surrounding the sector indicated in the most recently received layer 2 location update message consistent with the further criterion being used to trigger a location update messages being sent from the MS; and after the second timer has reached said predefined value T2, sending an MS page to all network sectors.
9. The method of claim 8, wherein said further criterion includes a time period.
10 The method of claim 8, wherein said further criterion includes the MS having traveled a predetermined distance since the previous location update message was sent.
11 The method of claim 8, further comprising predefining the starting value for the first timer to said predefined value Tl .
12. The method of claim 8, further comprising predefining the starting value ofthe second timer to said predefined value T2.
13. The method of claim 11, further comprising predefining the starting value ofthe second timer to said predefined value T2.
14 The method of claim 8, wherein said further criterion includes counting a predefined number of idle handoffs
15. The method of claim 1, wherein said layer 2 location update message includes identification ofthe two strongest pilot signals being received by the MS.
16. A method for determining when a location update message needs to be sent from an MS to a base transceiver station (BTS) when the MS is in a donnant state, the method comprising the steps of: detennining if the MS has moved physically from one geographic region to another region served by a cell sector; and sending a location update message to the network servicing the MS indicating that the two strongest pilot signals are received by the MS.
17. The method of claim 16, wherein the step of determining includes the step of: determining if the MS has moved physically outside the geographic region served by a plurality of cell sectors defined in a sub-packet zone received previously from the network servicing the MS.
18. The method of claim 16, wherein the step of determining includes the step of: determining if the MS has moved physically into the geographic region served by a cell sector not identified in a list of cell sectors in a sub-packet zone received previously from the network servicing the MS.
19. The method of claim 16, further comprising providing a delay between the determining step and the sending step whereby ping-ponging between sub-packet zones in prevented.
20. The method of claim 16, wherein the location update message is transmitted as a layer 2 message.
21. The method of claim 1, wherein the step of sending a layer 2 location update message while the first timer is counting includes the step of: sending by the MS to the BTS a layer 2 location update message containing a message type and an MS identifier, whereby the network updating the location ofthe MS.
22. The method of claim 21, further comprising the step of: in response to the layer 2 location update message from the MS, sending by the BTS to the MS a location update acknowledgement message containing a message type and an MS identifier.
23. The method of claim 1, further comprising the steps of: sending by the MS in the dormant state to the BTS a reconnect message containing a message type and an MS identifier; and sending by the BTS to the MS a channel assignment message, whereby the MS initiates an MS's dormant to active state transition.
24. The method of claim 1, further comprising the steps of: sending by the MS to the BTS a layer 2 location update message containing a message type and an MS identifier; sending by the BTS to the MS a location update acknowledgement message containing a message type and an MS identifier; and sending by the BTS to the MS a message informing MS's active set, wherein the BTS initiates an MS's dormant to active state transition.
25. The method of claim 1, further comprising the steps of: sending by the MS to the BTS a layer 2 location update message containing a message type and an MS identifier; sending by the BTS to the MS a location update acknowledgement message containing a message type and an MS identifier; sending by the BTS to the MS a message informing MS's active set; sending by the BTS to the MS a data burst message; and sending by the MS to the BTS a data burst acknowledgement message containing a message type and an MS identifier.
26. A method for tracking zone update to enable a communication network to page a mobile station (MS) in a smaller area, zones relating to base station controllers (BSCs) that control communications among the BTSs and the MSs, the zones being further defined as smaller zones that are registered for zone hacking, the metliod comprising the steps of: defining the size of the tracking zones; defining the zones of the BTSs; broadcasting tracking zone identifiers; and paging MSs in the tracking zones.
27. The method of claim 26, wherein the step of defining the zones ofthe BTSs includes the step of assigning the same value to the BTSs in the same tracking zone;
28. The method of claim 26, further comprising the step of reporting by the MS on change of location in the hacking zone.
29. The method of claim 28, wherein the step of reporting includes the step of reporting the location change on R-CSCH.
30. The method of claim 26, wherein the information on the performing ofthe tracking zone update are defined by values.
31. The method of claim 30, wherein the values are defined for: the tracking zone identifier; the tracking zone list which is a list of most recent tracking zone identifier received by the MS; the number of tracking zone identifier to be maintained in the tracking zone list; the maximum number of Radio Environment Report Messages that the MS is permitted to transmit before disabling tracking zone reporting; and the BTS's support of hacking zone reporting indicator.
32. The method of claim 26, wherein the tracking zone update is performed in the MS's dormant state, the method further comprising the step of: performing paging channel supervision when the MS enters the dormant state from the MS initialization state.
33. The method of claim 26, further comprising the steps of: upon entering the MS dormant state from the MS control on the Traffic Channel state, performing by the MS, if the hacking zone update is enabled and the hacking zone timer is not enabled, initializing the tracking zone list with the length of the number of the tracking zone identifier and adding the tracking zone identifier to the tracking zone list; setting the tracking zone update timer at a certain value; and enabling the tracking zone update timer.
34. The method of claim 26, further comprising the steps of performing by the MS, if the tracking zone update is enabled, if the hacking identifier is not equal to any entry in the tracking zone list, sending a Radio Environment Report Message by performing the Mobile Station Message Transmission Operation in an update overhead information substate; if the hacking zone, update timer of any entry in the tracking zone list has expired, deleting that entry; and if the hacking zone update timer expires, disabling the hacking zone update timer to disable the tracking zone update.
35. The method of claim 26, further comprising the step of: enabling the tracking zone update at a different time than the radio environment report.
36. The method of claim 35, wherein the step of enabling includes the steps of performing by the MS, upon expiration ofthe radio environment report timer, if the tracking zone reporting information included indicator is equal to "1": enabling the tracking zone update; initializing the hacking zone list with the length ofthe number of hacking zone identifier and adding the hacking zone identifier to the hacking zone list; setting the tracking zone update timer at a certain value; and enabling the tracking zone update timer.
37. The method of claim 32, further comprising the steps of performing by the MS, in response to an Extended System Parameters Message received on the Paging Channel, storing the MS initiated position location dete-n-nination supported indicator, if the MS supports hacking zone, storing the tracking zone supported indicator; if the hacking zone update is enabled and the hacking zone update timer is not enabled, initializing the hacking zone list with the length ofthe number of hacking zone identifier and adding the hacking zone identifier to the hacking zone list; setting the tracking zone update timer to a certain value; and enabling the tracking zone update timer.
38. The method of claim 26, further comprising the steps of performing by the MS: if the MS supports hacking zone, storing the hacking zone supported indicator, if the indicator is equal to ' 1 ', storing the hacking zone identifier; if the hacking zone update is enabled and the hacking zone update timer is not enabled, performing: initializing the hacking zone list with the length ofthe number of the hacking zone identifier and adding the hacking zone identifier to the tracking zone list; setting the hacking zone update timer to a certain value; and enabling the tracking zone update timer.
39. The method of claim 26, wherein: the MS supports the Mobile Station Message Transmission Operation, the operation being performed when the user directs the MS to transmit a Data Burst Message, or when the MS detects a change in the hook status since the last time whenthe MS sent hook status information; and the MS supports the Device Information Message on the R-CSCH, or when the MS detects that a Radio Envhonment Report Message is required to be hansmitted on the R-CSCH, wherein when the MS detects that a Radio Environment Report Message is required to be hansmitted on the R-CSCH, the method includes the steps of performing by the MS: if RER ENABLED is set to YES, entering the Update Overhead Infonnation Substate ofthe System Access State with a radio environment report indication within a certain period of time; otherwise, if the hacking zone update is enabled, entering the Update Overhead Information Substate of the System Access State with a hacking zone report indication within a certain period of time.
40. The method of claim 26, further comprising the step of updating the information wherein if the Updated Overhead Information Substate is entered with a hacking zone report indication, the MS enters the Mobile Station Message Transmission Substate with a hacking zone report indication.
41. The method of claim 26, wherein in the Mobile Station Message Transmission Substate, the MS sends a Data Burst Message, a Device Information Message, or a Radio Envhonment Report Message, wherein the method includes the steps of performing by the MS; upon entering the Mobile Station Message Transmission Substate with a radio environment report indication, hansmitting the Radio Envhonment Report Message to the BTS; if RER_ENABLED is set to NO and the tracking zone reporting information included indicator is equal to ' 1 ', enabling the hacking zone update; initializing the hacking zone list with the length ofthe number of hacking zone identifier and adding the hacking zone identifier to the hacking zone list; setting the tracking zone update timer to a certain value; and enabling the hacking zone update timer, if the MS enters the Mobile Station Message Transmission Substate with a tracking zone report indication, hansmitting the Radio Environment Report Message to the BTS; if the MS receives confirmation of delivery of Radio Envhonment Report Message, adding the hacking zone update identifier to the hacking zone list and starting the hacking zone update timer for the hacking zone update identifier, wherein the hacking zone list is full, the entry with active hacking zone update timer with smallest remaining tracking zone update timer value is removed from the list before adding the new enhy; incrementing the tracking zone update count upon receiving confirmation of delivery, wherein if, after incrementing, the count is equal to the maximum number of Radio Envhonment Report Messages, the MS disables the tracking zone update timer.
42. The method of claim 26, wherein in the Traffic Channel Substate, the MS exchanges Traffic Channel frames with the BTS, the method includes the steps of performing by the MS: while in the Traffic Channel Substate, disabling the tracking zone update, setting the hacking zone list to null, and disabling the hacking zone update timer.
43. The method of claim 26, wherein in the procedure for the exiting the Release Substate, if the MS receives an Extended Release Message with the field ofthe tracking zone reporting information included indicator set to T and the BTS support of tracking zone reporting indicator is equal to ' 1 ', the method includes the steps of performing by the MS: setting the hacking zone count to 0; and storing the values of: the number ofthe hacking zone identifier to be maintained in the hacking zone list; the hacking zone update timer; the maximum allowed number of hacking zone reports; and the tracking zone update period; if RERJNFOJNCL is equal to '0', enabling the tracking zone update; if RERJNFOJNCL is equal to ' 1 ', setting the hacking zone reporting information included indicator.
44. The method of claim 39, wherein the Mobile Station Message Transmission Operation supported by the MS, the method further comprising the step of: providing on the R-CSCH messages containing the Radio Envhonment Report Message.
45. The method of claim 44, wherein the step of providing includes the step of: providing the Radio Envhonment Report Message containing the field ofthe hacking zone report indicator and its length.
46. The method of claim 45, wherein the step of providing includes the step of: providing the Radio Envhonment Report Message containing the field ofthe hacking zone report indicator of one bit.
47. The method of claim 46, further comprising the steps of: setting the field to ' 1 ' if the Radio Envhonment Report Message is sent for hacking zone report; and otherwise, setting the field to '0'.
48. The method of claim 44, further comprising the step of: providing a message field containing: a radio environment reporting supported indicator; and a hacking zone supported indicator.
49. The method of claim 48, wherein the step of providing includes the step of: setting the field of the hacking zone supported indicator to T if it supports hacking zone reporting on the R-CSCH; and otherwise, setting the filed to '0'.
50. The method of claim 44, further comprising the step of: providing an Extended System Parameters Message containing fields of a hacking zone supported indicator and a hacking zone identifier.
51. The method of claim 50, wherein the step of providing includes the step of: providing an Extended System Parameters Message containing fields of a hacking zone supported indicator of one bit and a hacking zone identifier of zero or eight bits
52. The method of claim 51, wherein the BTS sets the field ofthe tacking zone supported indicator to '1' if the hacking zone is supported and otherwise to '0'.
53. The method of claim 50, wherein the BTS sets the field ofthe tacking zone identifier to ' 1 ' if the field of the tacking zone supported indicator is set to ' 1 ' and otherwise, the BTS omits the field of the hacking zone identifier.
54. The method of claim 44, further comprising the step of: providing an ANSI-41 System Parameters Message containing fields of a hacking zone supported indicator and a hacking zone identifier.
55. The method of claim 54, wherein the step of providing includes the step of: providing an ANSI-41 System Parameter Message containing fields of a hacking zone supported indicator of one bit and a hacking zone identifier of zero or eight bits.
56. The method of claim 54, wherein the BTS sets the field ofthe hacking zone supported indicator to '1' if the hacking zone is supported and otherwise, the BTS sets the field of the hacking zone supported indicator to '0'.
57. The method of claim 54, wherein if the field ofthe hacking zone supported indicator is set to ' 1 ' the BTS sets the field of the tracking zone identifier to its hacking zone identifier and otherwise, the BTS omits the field ofthe hacking zone identifier.
58. The method of claim 44, further comprising the step of: providing an Extended Release Message containing fields of a hacking zone reporting information included indicator, a maximum number of hacking zone reporting index, a hacking zone update period, a hacking zone list length and a hacking zone timer.
59. The method of claim 58, wherein the step of providing includes the step of: providing an Extended Release Message containing fields of a hacking zone reporting infonnation included indicator of one bit, a maximum number of hacking zone reporting index of zero or three bits, a hacking zone update period of zero or four bits, a hacking zone list length of zero or four bits and a tracking zone timer of zero or eight bits.
60. The method of claim 58, further comprising the steps of performing by the BTS based on the channel indication bits of channels processed by the MS: setting the field of the racking zone reporting information included indicator to ' 1 ' if the hacking zone reporting related fields are included in the extended release message and otherwise to '0'.
61. The method of claim 58, wherein if the hacking zone reporting information included indicator is set to '0', the BTS omits the field ofthe maximum number of hacking zone reporting index and otherwise, the BTS includes the field ofthe maximum number of hacking zone reporting index and set it as follows: the BTS sets the field ofthe maximum number of hacking zone reporting index to the maximum number of hacking zone reports that the MS is allowed to transmit, expressed as 2MAX_NUM_TKZ JDX where 0 < MAX_NUM_TKZ JDX < 6, wherein if the MS is allowed to transmit an unlimited number of hacking zone reports, then the BTS sets the field of the maximum number of hacking zone reporting index to ' 111 ' .
62. The method of claim 58, wherein if the hacking zone reporting information included indicator is set to '0', the BTS omits the field ofthe racking zone update period; and otherwise, the BTS includes the field ofthe racking zone update period and set it as follows: the BTS sets the field ofthe racking zone update period such that the desired hacking zone update timer value is 2TKZ_UPDATE_PRD+6 seconds, wherein the value ofthe timer is infinite, then the BTS sets the field of he racking zone update period to '1111'.
63. The method of claim 58, wherein if the hacking zone reporting information included indicator is set to '0', the BTS omits the filed ofthe tracking zone list length; and otherwise, the BTS includes the filed of the tracking zone list length and set it as follows: the BTS sets the filed ofthe hacking zone list length to the length ofthe hacking zone list minus one.
64. The method of claim 58, wherein if the hacking zone reporting information included indicator is set to '0', the BTS omits the filed ofthe tracking zone timer, and otherwise, the BTS includes the filed ofthe hacking zone timer and sets it as follows: the BTS sets the filed ofthe hacking zone timer to the value ofthe hacking zone timer (in units of seconds) minus one.
65. The method of claim 44, wherein if the PDU on the R-CSCH conesponds to a Radio Envhonment Report Message and RER_ENABLED is set to YES, the MS generates a new set of pilots that includes the Active Set pilot and additional pilots with records included in the PDU that have the shongest pilot strength.
66. A system for hacking zone updates to a communication network to page a mobile station (MS) in a smaller area including zones relating to base station conhoUers (BSCs) that control communications among the BTSs and the MSs, the zones being further defined as smaller zones that are registered for zone hacking, the system comprising: means for defining the size of the hacking zones; means for defining the zones of the BTSs; means for broadcasting hacking zone identifiers; and means for paging MSs in the hacking zones.
67. The system of claim 66, wherein the means for defining the zones of the BTSs includes means for assigning the same value to the BTSs in the same hacking zone.
68. The system of claim 66, further including means for reporting by the MS on change of location in the hacking zone.
69. The system of claim 66, wherein the information on the performing of the hacking zone update are defined by values, said values being defined for: the hacking zone identifier; the hacking zone list which is a list of most recent hacking zone identifier received by the MS; the number of hacking zone identifier to be maintained in the hacking zone list; the maximum number of Radio Envhonment Report Messages that the MS is permitted to transmit before disabling hacking zone reporting; and the BTS's support of hacking zone reporting indicator.
70. A mobile station (MS) for communicating with a base hansceiver station (BTS) and a base station conhoUer (BSC) in wireless communication system, the MS in a dormant state sending a location update message, the MS comprising: means for starting a first timer when the MS enters a dormant state; means for starting a second timer when the first timer reaches a predefined value Tl; means for sending, while the first timer is counting and prior to its reaching said predefined value Tl, a layer 2 location update message whenever the MS performs an idle handoff indicating that the strongest pilot signal strength has changed from one sector to another sector; means for sending, while the second timer is counting and prior to its reaching a predefined value T2, a layer 2 location update message whenever a further criterion is met; and means for sending, after the second timer has reached said predefined value T2, no further layer 2 location update messages.
71. The MS of claim 70, further including means for predefining the starting value for the first timer to said predefined value Tl .
72. The metliod of claim 70, further including means for predefining the starting value ofthe second timer to said predefined value T2.
73. The MS of claim 70, further including means for sending the BTS a layer 2 location update message containing a message type and an MS identifier, whereby the network updating the location of the MS.
74. A communication network comprising base station conhoUers (BSCs) and base hansceiver stations (BTSs) that communicate with mobile stations (MSs) in wheless communication system, the network paging a dormant MS when the network determines that data is to be sent to that dormant MS, the MS comprising: means for starting a first timer when the MS enters a dormant state; means for starting a second timer when the first timer reaches a predefined value Tl; means for sending, while the first timer is counting and prior to its reaching said predefined value Tl, a layer 2 location update message whenever the MS performs an idle handoff indicating that the shongest pilot signal strength has changed from one sector to another sector; means for sending, while the second timer is counting and prior to its reaching a predefined value T2, a layer 2 location update message whenever a further criterion is met; and means for sending, after the second timer has reached said predefined value T2, no further layer 2 location update messages, wherein the BTS includes: means for receiving the layer 2 location update message; means for sending a location update acknowledgement message to the MS.
75. The communication network of claim 74, wherein: the MS further includes means for sending the BTS a layer 2 location update message containing a message type and an MS identifier, whereby the network updating the location ofthe MS; and the BTS -further include means for sending the MS a location update acknowledgment message containing a message type and an MS identifier.
76. The communication network of claim 74, wherein: the MS in the dormant state includes means for sending the BTS a reconnect message containing a message type and an MS identifier; and the BTS includes the MS a channel assignment message, whereby the MS initiates an MS's dormant to active state transition.
77. The communication network of claim 74, wherein: the MS includes means for sending the BTS a layer 2 location update message containing a message type and an MS identifier; and the BTS includes: means for sending the MS a location update acknowledgement message containing a message type and an MS identifier; and means for sending the MS a message informing MS's active set, wherein the BTS initiates an MS's dormant to active state transition.
78. The communication network of claim 74, wherein: the MS includes means for sending the BTS a layer 2 location update message containing a message type and an MS identifier; and the BTS includes: means for sending the MS a location update acknowledgement message containing a message type and an MS identifier; and means for sending the MS a message informing MS's active set; and means for sending the MS a data burst message, wherein the MS further includes means for sending the BTS a data burst acknowledgement message containing a message type and an MS identifier.
79. A method for updating locations of mobile stations (MSs) in a dormant state in a wireless communication network wherein a Base Station ConhoUer controls various operating aspects ofthe network and a Base Transceiver Station provides communication links between MSs and between the MSs and a wireline telephone network, the method comprising the steps of: starting a timer when the MS enters a dormant state; while the timer is counting and prior to its reaching a predefined value Tl, sending by the MS to the BTS, whenever the MS performs an idle handoff, a message containing information on the location ofthe MS, the information being associated with the sector ofthe MS, thereby the network updating the location ofthe dormant MS at the sector level; when the timer's count reaches the value Tl, restarting the timer to count until it reaches a predetermined value T2; while the timer is counting and prior to its reaching the predefined value T2, sending by the MS to the BTS a message containing information on the location of the MS, the information being associated with the area of the MS, the area being greater than the sector, thereby the network updating the location of the dormant MS at the area level; when the timer's count reaches the value T2, sending no further message of location to the BTS.
80. The method of claim 79, further including the step of: after the timer's count reaches the value T2, sending an MS page to all network sectors.
81. The method of claim 79, wherein: the step of sending a message prior to Tl includes the step of sending a layer 2 message containing a message type and an MS identifier; and the step of sending a message prior to T2 includes the step of sending a layer 2 message containing a message type and an MS identifier.
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