US20070189325A1 - Method and apparatus for antenna steering for WLAN - Google Patents

Method and apparatus for antenna steering for WLAN Download PDF

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Publication number
US20070189325A1
US20070189325A1 US11/784,651 US78465107A US2007189325A1 US 20070189325 A1 US20070189325 A1 US 20070189325A1 US 78465107 A US78465107 A US 78465107A US 2007189325 A1 US2007189325 A1 US 2007189325A1
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Prior art keywords
antenna
signal
access point
sme
metrics
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US11/784,651
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John Hoffmann
George Nelson
John Regnier
Kevin Johnson
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IPR Licensing Inc
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IPR Licensing Inc
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Priority to US11/784,651 priority Critical patent/US20070189325A1/en
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Abandoned legal-status Critical Current

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    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04BTRANSMISSION
    • H04B7/00Radio transmission systems, i.e. using radiation field
    • H04B7/02Diversity systems; Multi-antenna system, i.e. transmission or reception using multiple antennas
    • H04B7/04Diversity systems; Multi-antenna system, i.e. transmission or reception using multiple antennas using two or more spaced independent antennas
    • H04B7/08Diversity systems; Multi-antenna system, i.e. transmission or reception using multiple antennas using two or more spaced independent antennas at the receiving station
    • H04B7/0868Hybrid systems, i.e. switching and combining
    • H04B7/088Hybrid systems, i.e. switching and combining using beam selection
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04BTRANSMISSION
    • H04B17/00Monitoring; Testing
    • H04B17/30Monitoring; Testing of propagation channels
    • H04B17/309Measuring or estimating channel quality parameters
    • H04B17/318Received signal strength

Definitions

  • the 802.11 Institute of Electrical and Electronic Engineers (IEEE) standards defines a specification for stations to be moved within a facility and remain connected to a Wireless Local Area Network (WLAN) via Radio Frequency (RF) transmissions to Access Points (AP) connected to a wired network.
  • a physical layer in the stations and access points controls the modulation and signaling format used by the stations and access points to communicate.
  • MAC Medium Access Control
  • MAC Medium Access Control
  • the physical layer in the station and access points first establish wireless communication with each other, followed by the MAC layer establishing access to the network via an access point.
  • the signals are RF signals, transmitted and received by monopole antennas.
  • a monopole antenna provides transmissions in all directions generally in a horizontal plane.
  • Monopole antennas are susceptible to effects that degrade the quality of communication between the station and access points, such as reflection or diffraction of radio wave signals caused by intervening walls, desks, people, etc., multipath, normal fading, Rayleigh fading, and so forth. As a result, efforts have been made to mitigate signal degradation caused by these effects.
  • Antenna diversity counteracts the degradation of RF signals.
  • Antenna diversity uses two antennas that are connected to a transmitter/receiver via an antenna diversity switch.
  • the theory behind using two antennas for antenna diversity is that, at any given time, one of the two antennas is likely receiving a signal that is not affected by the effects of, say, multi-path fading.
  • the system using the two antennas selects the unaffected antenna via the antenna diversity switch.
  • each of the diversity antennas is an omni-directional antenna (e.g., monopole antenna), so the system employing the antenna cannot steer the antenna away from a source of interference or achieve any gain beyond what one omni-directional antenna inherently provides.
  • omni-directional antenna e.g., monopole antenna
  • the principles of the present invention provide a technique for steering a directional/multi-element antenna in an 802.11 protocol system for a station to communicate with the Access Point (AP) in an Extended Service Set (ESS) network or other network structure having wireless access points.
  • This approach has minimal impact on network efficiency as the approach can be accomplished within the current 802.11 protocols.
  • a reference herein to this “802.11 protocol” or “802.11 standard” includes the 802.11, 802.11a, 802.11b, and 802.11g protocols and standards.
  • the technique can come into operation before and after an 802.11 station has authenticated and associated with a network access point connected to a wired network.
  • the wired network is referred to interchangeably herein as a distribution system.
  • the initial antenna scan is accomplished within the Medium Access Control (MAC) layer.
  • MAC Medium Access Control
  • the steering process cycles through the available antenna positions and monitors a signal metric associated with a beacon signal or other predetermined signal to determine a best antenna pointing direction.
  • the process cycles through the antenna positions and monitors a signal metric associated with a probe response signal to determine the best antenna position.
  • additional scans may be performed, optionally based on a determination that the received signal level has dropped below some threshold.
  • a directional antenna in a wireless local area network (WLAN) environment results in improved range and data rates for users and increases network efficiency for the network.
  • WLAN wireless local area network
  • FIG. 1A is a schematic diagram of a wireless local area network (WLAN) employing the principles of the present invention
  • FIG. 1B is a schematic diagram of a station in the WLAN of FIG. 1A performing an antenna scan
  • FIG. 2A is an isometric view of a station of FIG. 1A having an external directive antenna array
  • FIG. 2B is an isometric view of the station of FIG. 2A having the directive antenna array incorporated in an internal PCMIA card;
  • FIG. 3A is an isometric view of the directive antenna array of FIG. 2A ;
  • FIG. 3B is a schematic diagram of a switch used to select a state of an antenna element of the directive antenna of FIG. 3A ;
  • FIG. 4 is a flow diagram of a first process used by a station of FIG. 1 ;
  • FIG. 5 is a flow diagram of a second process used by a station of FIG. 1 ;
  • FIG. 6 is a flow diagram of a passive scan routine used by the processes of FIGS. 4 and 5 ;
  • FIG. 7 is a flow diagram of an active scan routine used by the processes of FIGS. 4 and 5 ;
  • FIG. 8 is a diagram of software and hardware elements executing in the station of FIG. 2A .
  • FIG. 1A is a block diagram of a wireless local area network (WLAN) 100 having a distribution system 105 .
  • Access points 110 a, 110 b, and 110 c are connected to the distribution system 105 via wired connections such as wired Local Area Networks (LANs).
  • LANs Local Area Networks
  • Each of the access points 110 has a respective zone 115 a, 115 b, 115 c in which it is capable of transmitting and receiving RF signals to and from stations 120 a, 120 b, and 120 c, which are supported with Wireless Local Area Network (WLAN) hardware and software to access the distribution system 105 .
  • WLAN Wireless Local Area Network
  • FIG. 1B is a block diagram of a subset of the network 100 in which the second station 120 b, employing the principles of the present invention, is shown in more detail.
  • the second station 120 b generates directive antenna lobes 130 a - 130 i (collectively, lobes 130 ) from a directive antenna array.
  • the directive antenna array is interchangeably referred to herein as a directional antenna.
  • the second station 120 b uses the directive antenna array to scan its environment to determine a direction to a “best” access point 110 a, 110 b.
  • the scan may be performed in a passive mode, in which the second station 120 b listens for beacon signals emitted by the access points 110 a, 110 b.
  • the beacon signals are generally sent every 100 msec. So, for the nine antenna lobes 130 , the process takes about 1 second to cycle through the antenna lobe directions and determine the best angle.
  • the second station 120 b sends a probe signal to the access points 110 a, 110 b and receives responses to the probe signal from the access points 110 a, 110 b. This probe and response process may be repeated for each antenna scan angle.
  • the second station 120 b uses the directive antenna array to scan the RF airways in search of signals from the access points 110 .
  • the second station 120 b measures the received beacon signal or probe response and calculates a respective metric for that scan angle. Examples of the metrics include Received Signal Strength Indication (RSSI), Carrier-to-Interference ratio (C/I), Signal-to-Noise ratio (Eb/No), or other suitable measure of the quality of the received signal or signal environment.
  • RSSI Received Signal Strength Indication
  • C/I Carrier-to-Interference ratio
  • Eb/No Signal-to-Noise ratio
  • the second station 120 b can determine a “best” direction to communicate with one of the access points 110 a, 110 b.
  • the scans may occur before or after the second station 120 b has authenticated and associated with the distribution system 105 .
  • the initial antenna scan may be accomplished within the Medium Access Control (MAC) layer.
  • the initial scan may be accomplished external from the MAC layer.
  • scans occurring after the second station 120 b has authenticated and associated with the distribution system 105 may be accomplished within the MAC layer or by processes occurring external from the MAC layer.
  • MAC Medium Access Control
  • FIG. 2A is a diagram of the first station 120 a that is equipped with a directive antenna array 200 a.
  • the directive antenna array 200 a is external from the chassis of the first station 120 a.
  • the directive antenna array 200 a includes five monopole passive antenna elements 205 a, 205 b, 205 c, 205 d, and 205 e (collectively, passive antenna elements 205 ) and one monopole, active antenna element 206 .
  • the directive antenna element 200 a is connected to the first station 120 a via a Universal System Bus (USB) port 215 .
  • USB Universal System Bus
  • the passive antenna elements 205 in the directive antenna array 200 a are parasitically coupled to the active antenna element 206 to facilitate beam angle direction changes. Changing the beam angle direction may allow for at least one antenna beam to be rotated 360 in increments associated with the number of passive antenna elements 205 . Less than full 360 rotations and sub-incremental direction changes are also possible.
  • the directive antenna array 200 a supports an omni-directional mode defined by an omni-directional or substantially omni-directional antenna pattern (not shown).
  • the stations 120 may use the omni-directional antenna pattern for Carrier Sense prior to transmission or to assess by way of comparison current performance of directional mode versus omni-directional mode.
  • the stations 120 may revert to an omni-only antenna configuration since communicating with other stations 120 can occur in any direction.
  • FIG. 2B is another embodiment of the first station 120 a that includes a directive antenna array 200 b deployed on a Personal Computer Memory Card International Association (PCMCIA) card 220 .
  • the PCMCIA card 220 is disposed in the chassis of the first station 120 a in a typical manner.
  • the PCMCIA card 220 communicates with a processor (not shown) in the first station 120 a via a typical computer bus.
  • the directive antenna array 200 b deployed as the PCMCIA card 220 provides the same functionality as the stand-alone directive antenna array 200 a discussed above in reference to FIG. 2A .
  • the directive antenna arrays 200 b may include one active antenna element electromagnetically coupled to multiple passive antenna elements.
  • the directive antenna arrays 200 may include multiple active and multiple passive antenna elements.
  • the directive antenna arrays 200 may include multiple active antenna elements and a single passive antenna element.
  • the directive antenna arrays 200 may include all active antenna elements.
  • FIG. 3A is a detailed view of the directive antenna array 200 a that includes the multiple passive antenna elements 205 and one active antenna element 206 as discussed above in reference to FIGS. 2A and 2B .
  • the directive antenna array 200 a may also include a ground plane 330 to which the passive antenna elements 206 are electrically connected.
  • one state of the directive antenna array 200 a provides a directive antenna lobe 300 angled away from antenna elements 205 a and 205 e.
  • the mutual coupling between the active antenna element 206 and the passive antenna elements 205 allows the mode settings of the passive antenna elements 205 to control the direction of the directive antenna lobe 300 .
  • different mode combinations result in different antenna lobe 300 patterns and angles.
  • FIG. 3B is a schematic diagram of an example circuit that can be used to set the passive antenna element 205 a in a reflective or transmissive mode.
  • the reflective mode is indicated by a representative “elongated” dashed line 305
  • the transmissive mode is indicated by a “shortened” dashed line 310 .
  • the representative dashed lines 305 and 310 are also representative of the electrical termination associated with the passive antenna element 205 a.
  • electrically connecting the passive antenna element 205 a to a ground plane 330 via an inductive element 320 sets the passive antenna element 205 a in reflective mode
  • electrically connecting the passive antenna element 205 a to the ground plane 330 via a capacitive element 325 sets the passive antenna element 205 a in transmissive mode.
  • the switch 315 may be a mechanical or electrical switch capable of electrically connecting the passive antenna element 205 a to the ground plane 330 or reactive element in a manner suitable for this application.
  • the switch 315 is set via a control signal 335 in a typical switch control manner.
  • both passive antenna elements 205 a and 205 e are connected to the ground plane 330 via respective inductive elements 320 .
  • the other passive antenna elements 205 b, 205 c, and 205 d are electrically connected to the ground plane 330 via respective capacitive elements 325 . Capacitively coupling all of the passive elements 325 causes the directive antenna array 200 a to form an omni-directional antenna beam pattern.
  • a SME 800 , MAC layer 805 , and physical (PHY) layer 810 are shown in a generalized arrangement, sometimes referred to as an 802.11 stack.
  • the SME 800 is in communication with the MAC layer 805 and PHY layer 810 .
  • the SME 800 is a layer-independent entity that may be viewed as a separate management plane or residing “off to the side” from the MAC layer 805 and PHY layer 810 .
  • the SME 800 , MAC layer 805 , and PHY layer 810 may communicate through various media, such as via a system bus, physical cable interconnection, or network connection.
  • the SME 800 may be a standalone software application or applet executing in a personal computer that is being used as a station 120 a, as described above.
  • the MAC layer 805 and PHY layer 810 may be implemented in software or firmware operating in a plug-in PCI or PCMCIA card 220 installed in the station 120 a.
  • the MAC layer 805 and PHY layer 810 use standard protocols in accordance with the 802.11 standards.
  • the SME 800 can be downloaded from a server on the Internet (not shown), for example, and be capable of interacting with the MAC layer 805 and PHY layer 810 in a plug-and-play manner.
  • the SME 800 may be partially or fully updated on occasion to facilitate updating or exchanging the directive antenna array 205 a with an antenna array having a different configuration.
  • the SME 800 may include an interface driver (not shown).
  • the interface driver is sometimes included as part of the SME 800 while other times provided as a separate module.
  • the interface module can send commands to an antenna controller 815 and receive feedback from the antenna controller 815 .
  • the commands cause the directive antenna array 205 a to steer an antenna beam during a scan when searching for a “best” access point 110 .
  • the MAC layer 805 can determine signal metrics, such as signal-to-noise ratio, associated with RF signals communicated via the directive antenna 205 a or other form of antenna.
  • the MAC layer 805 employs the PHY layer 810 to convert and RF signal to a baseband signal, and vice-versa.
  • the MAC layer 805 can use the PHY layer 810 to provide signal-related parameters, such as Received Signal Strength Indication (RSSI), Signal Quality (SQ), and indicated data rate.
  • RSSI Received Signal Strength Indication
  • SQ Signal Quality
  • the MAC layer 805 may then provide the metrics to the SME 800 in the form of a datum associated with one antenna beam direction or a table of data associated with multiple antenna beam directions.
  • the SME 800 may cause the MAC layer 805 to provide the metrics through use of commands or requests.
  • the SME 800 may cause the MAC layer 805 to provide metrics associated with respective beam angles of the directive antenna array 205 a. Based on the metrics and predetermined criteria, the SME 800 may steer the directive antenna array 205 a to a selected direction associated with an access point 110 .
  • the MAC layer 805 may be caused to determine the metrics as a function of received RF energy by the directive antenna array 205 a in the respective beam angles. For example, the metrics may be higher for signal strength of a beacon signal received from a first access point 110 a as compared to signal strength of a beacon signal received from a second access point 110 b.
  • the SME 800 may cause the MAC layer 805 (i) to transmit a signal via the physical layer 810 to at least one access point 110 a, 110 b, or 110 c and (ii) to measure a response from the access point(s) 110 .
  • the MAC layer 805 may also provide the metrics or table of metrics to the SME 800 based on previously calculated or measured metrics. For example, a periodic or event-driven event may cause the MAC layer 805 to determine the metrics and provide the metrics to the SME 800 on an “as needed,” “as requested,” or predefined basis.
  • the station 120 a may associate with the distribution system via the access point 110 , and the MAC layer 805 may provide the metrics to the SME 800 before or after the associating with the distribution system, optionally in a pre-selected manner.
  • the SME 800 may issue commands to the antenna controller 815 , which sends control signals 820 to the directive antenna array 205 a.
  • the control signals 820 may change the state of connection to reactances 320 , 325 associated with the antenna elements 205 in the directive antenna array 200 a, which, in turn, causes the antenna beam angle to change.
  • the SME 800 may coordinate this action with causing the MAC layer 805 to provide the metrics associated with the antenna beam angles.
  • the SME 800 may command the directive antenna array 200 to steer its antenna beam from angle to angle in a step-and-hold manner while concurrently commanding the MAC layer 805 to measure the signal strength in a corresponding wait-and-measure manner until a metric is associated with each access point 110 at each antenna beam angle.
  • the SME 800 may issue further commands to the antenna controller 815 to steer the antenna beam in a direction associated with an access point 110 .
  • the antenna beam may be steered to point directly toward an access point 110 a or in the direction of a stronger multi-path that is associated with the same access point 110 a. In this way, the SME 800 can use the best path for associating the station 120 a with the selected access point 110 a.
  • the SME 800 may invoke an omni-directional beam angle by the directive antenna array 205 a on a predetermined, event-driven, or random basis to determine whether the selected antenna beam direction is still the most suitable direction for communicating with the access point 110 a.
  • the metrics may correspond to beam angles relative to one access point 110 a or multiple access points 110 a, 110 b.
  • the SME 800 may command or request the MAC layer 805 to return metrics for multiple beam angles and multiple beacon signals.
  • the SME 800 may perform a re-scan.
  • the re-scan may be performed during an idle period (i.e., no data transmission or reception is occurring), or the re-scan may be “woven-in” during non-idle periods, in which case unused or predefined overhead bits or bytes may be used for transmitting/receiving signals to be measured or transmitting probe requests.
  • the SME 800 can scan for (i) a best beam direction to a predetermined access point or (ii) a best beam direction to a non-predetermined access point. In either case, the SME 800 may cause (i.e., command or request) the MAC layer 805 to return metrics or a table of metrics for multiple beam angles and at least one beacon signal. After selecting the best beam direction based on the metrics or table of metrics, the SME 800 steers the antenna beam of the directive antenna array 205 a in the selected direction through techniques discussed above in reference to FIGS. 3A and 3B .
  • FIG. 4 is a flow diagram of a process 400 executed by the stations 120 according to the principles of the present invention for use in the WLAN 100 ( FIG. 1B ).
  • the process 400 may be an embodiment of a subset of SME 800 commands executed by a processor in the station 120 .
  • the process 400 begins in step 405 in which the station 120 is powered up.
  • step 410 the station 120 goes through an initialization process.
  • the process 400 enters into a routine 411 that executes commands that communicate with the MAC and physical layers of the 802.11 protocol.
  • the routine 411 communicates first (step 413 ) with the physical layer and second (step 417 ) with the MAC layer 417 .
  • the physical layer communications includes a set-up 415 , where initialization and communication processes occur at the physical layer of the 802.11 protocol. Other processes occurring at the physical layer may also occur at this stage of the process 400 .
  • the process 400 continues with first determining whether passive or active scanning is to be used (Step 420 ) by the station 120 to determine a “best” antenna pointing angle. If passive scanning is to be used, the process 400 continues in a passive scan routine 425 ( FIG. 6 ). If an active scanning is to be used, the process 400 continues at an active scan routine 430 ( FIG. 7 ). Following the passive or active scan routines, the process 400 continues (step 435 ) by determining whether an access point 110 has been located by the selected scan routines 425 or 435 .
  • the process 400 continues to scan (steps 420 - 430 ) for an access point 110 until reaching a predetermined timeout, in which case omni-directional mode is used as a default. If an access point 110 has been located, the process 400 continues at a set-up process (step 440 ), which again employs the MAC layer 417 .
  • the set-up process (step 440 ) may include performing authentication, privacy, association, and so forth as defined by the 802.11 protocol. Following set-up (step 440 ), the process 400 continues with a station/distribution system operation process 445 ( FIG. 5 ).
  • FIG. 5 is a flow diagram of the station/distribution system operation process 445 , which is executed in the stations 120 at the SME 800 level.
  • the process 445 includes typical operations occurring within the station 120 a and supports interfacing between the station 120 a and the distribution system 105 via an access point 110 .
  • the process 445 may also reassess the antenna beam direction to determine a “best” direction. Reassessing the antenna beam direction may be performed on (i) a periodic basis, (ii) when the level of a received signal or other signal quality metric falls below a predetermined threshold, or (iii) based on other event driven or non-event driven criteria.
  • the example discussed herein is based on a count-down timing model executed on the first station 120 a.
  • the process 445 begins in step 505 .
  • the process 445 determines whether the station 120 is still connected to the distribution system 105 . If the station 120 a is connected, then, in step 515 , the process 445 calculates a received signal level.
  • the process 445 determines whether the signal level is below a predetermined threshold. If the signal is not below the predetermined threshold, the process 445 continues in step 525 in which the station and distribution system operations continue.
  • step 530 the process 445 determines whether a signal level count-down timer is equal to zero. If the signal level count-down timer equals zero, the process 445 loops back to step 510 to determine whether the station 120 a is still connected to the distribution system 105 via respective access point 110 a. If the signal level count-down timer does not equal zero, the process 445 continues at step 525 .
  • the count-down timer may be re-initialized in a typical manner at an appropriate stage of the process 445 , such as step 510 .
  • step 535 to execute the passive scan routine 425 ( FIG. 6 ) or active scan routine 435 ( FIG. 7 ).
  • the process 445 continues in step 540 , in which a determination is made as to whether the station 120 has selected to access the distribution system 105 through a new access point 110 . If no change is made to the access point 110 a, the process 445 continues at step 525 . If a new access point has been selected, the process 445 continues at step 440 in which authentication, privacy, and association steps are performed at the MAC level of the 802.11 protocol, as discussed above.
  • the process 445 continues at step 545 to determine whether the station 120 a has been powered down by a user. If the station 120 a has not been powered down, the process 445 continues at step 555 , which returns to the physical layer set-up (step 415 ) of FIG. 4 . Returning to the physical layer set-up (step 415 ) occurs in this embodiment based on an assumption that a communication error or out-of-range error has interrupted communications between the station 120 a and selected access point 110 . If the station 120 a has been powered down, the operation 445 continues at step 550 to power down the station 120 a in a typical manner.
  • an access point 110 e.g., user directed station power down, out-of-range, etc.
  • FIG. 6 is a flow diagram of the passive scan routine 425 introduced in FIG. 4 .
  • the passive scan routine 425 starts in step 605 in which a counter i is set to zero.
  • the routine 425 determines whether all antenna angles have been tested. If not all antenna angles have been tested, the routine 425 continues in step 615 in which the station 120 a receives access point beacon signal(s) at angle i. In other words, the antenna angle is set to angle i to listen for the beacon signal(s).
  • the beacon signal(s) is/are measured.
  • the passive scan routine 425 calculates beacon signal(s) metric(s).
  • the counter i is incremented to select the next angle supported by the directive antenna array 200 a ( FIG. 2 ).
  • the routine 425 continues in step 610 and repeats until all antenna beam angles have been tested.
  • the routine 425 continues in step 635 , in which the routine 425 selects an antenna angle that is a “best” angle at which to communicate with an access point 110 . Selection of the angle can be made according to any number of criteria, including RSSI, C/I, Eb/No, or other signal quality measure commonly known in the art.
  • the passive scan routine 425 returns to the calling routine ( FIG. 4 or 5 ) in step 640 for continued processing.
  • FIG. 7 is a flow diagram of the active scan routine 430 introduced in FIG. 4 .
  • the active scan routine 430 begins in step 705 , in which a counter i is set equal to zero.
  • the routine 430 determines whether all antenna angles have been tested. If no, then the routine 430 continues in step 715 .
  • the routine 430 sends a probe via RF signal using the directive antenna array 200 a to the access point(s) 110 .
  • the routine 430 receives probe response(s) in step 720 from the access point(s) 110 .
  • the active scan routine 430 measures the probe response(s).
  • the active scan routine 430 calculates metric(s) of the probe response(s).
  • the counter i is incremented to test the next antenna angle.
  • the active scan routine 430 selects the antenna angle that provides the best or most suitable signal quality between the station 120 a and access point 110 .
  • the active scan routine 430 returns to the calling process of FIG. 4 or 5 .
  • the methods and apparatus used to practice the embodiments discussed above may be used in 802.11 networks or other wireless networks, such as a Bluetooth network.
  • FIGS. 4-8 may be implemented in software, firmware, or hardware.
  • the software may be stored on any type of computer-readable medium, such as ROM, RAM, CD-ROM, or magnetic disc. Storage may be local to the station 120 or downloadable via a wired or wireless network, such as the distribution system 105 via access points 110 .
  • the software may be loaded and executed by a general purpose processor or application-specific processor.

Abstract

A Station Management Entity (SME) steers a directional antenna for a station to communicate with an Access Point (AP) in an 802.11 protocol system. The SME can steer the antenna before or after an 802.11 station has authenticated and associated with the Access Point. During a passive scan, the steering process cycles through the available antenna positions and monitors an AP beacon signal to determine a best position based on, for example, a Received Signal Strength Indication (RSSI). During an active scan where access probing is used, the steering process cycles through the antenna positions and monitors a probe response to determine the best antenna position. Additional scans may be performed based on a decision that the received signal level of the currently selected antenna position has dropped below a predetermined threshold.

Description

    CROSS REFERENCE TO RELATED APPLICATIONS
  • This application is a continuation of U.S. patent application Ser. No. 10/675,563 filed on Sep. 30, 2003 which claims the benefit of U.S. Provisional Application No. 60/414,946 filed on Sep. 30, 2002. The entire teachings of the above applications are incorporated herein by reference.
  • BACKGROUND
  • The 802.11 Institute of Electrical and Electronic Engineers (IEEE) standards defines a specification for stations to be moved within a facility and remain connected to a Wireless Local Area Network (WLAN) via Radio Frequency (RF) transmissions to Access Points (AP) connected to a wired network. A physical layer in the stations and access points controls the modulation and signaling format used by the stations and access points to communicate. Above the physical layer is a Medium Access Control (MAC) layer that provides services such as authentication, deauthentication, privacy, association, disassociation, etc.
  • In operation, when a station comes on-line, the physical layer in the station and access points first establish wireless communication with each other, followed by the MAC layer establishing access to the network via an access point.
  • Typically, in 802.11 stations or access points, the signals are RF signals, transmitted and received by monopole antennas. A monopole antenna provides transmissions in all directions generally in a horizontal plane. Monopole antennas are susceptible to effects that degrade the quality of communication between the station and access points, such as reflection or diffraction of radio wave signals caused by intervening walls, desks, people, etc., multipath, normal fading, Rayleigh fading, and so forth. As a result, efforts have been made to mitigate signal degradation caused by these effects.
  • A technique known as “antenna diversity” counteracts the degradation of RF signals. Antenna diversity uses two antennas that are connected to a transmitter/receiver via an antenna diversity switch. The theory behind using two antennas for antenna diversity is that, at any given time, one of the two antennas is likely receiving a signal that is not affected by the effects of, say, multi-path fading. The system using the two antennas selects the unaffected antenna via the antenna diversity switch.
  • SUMMARY
  • Using antenna diversity techniques, signal degradation caused by multi-path fading or other effects that reduce RF signal quality can be improved by selecting the diversity antenna that is receiving the RF signal at a higher strength. However, each of the diversity antennas is an omni-directional antenna (e.g., monopole antenna), so the system employing the antenna cannot steer the antenna away from a source of interference or achieve any gain beyond what one omni-directional antenna inherently provides.
  • It would be better if a station or access point using an 802.11 protocol were to use a directional antenna to improve system performance.
  • Accordingly, the principles of the present invention provide a technique for steering a directional/multi-element antenna in an 802.11 protocol system for a station to communicate with the Access Point (AP) in an Extended Service Set (ESS) network or other network structure having wireless access points. This approach has minimal impact on network efficiency as the approach can be accomplished within the current 802.11 protocols. Unless otherwise specified, a reference herein to this “802.11 protocol” or “802.11 standard” includes the 802.11, 802.11a, 802.11b, and 802.11g protocols and standards.
  • In one embodiment, the technique can come into operation before and after an 802.11 station has authenticated and associated with a network access point connected to a wired network. The wired network is referred to interchangeably herein as a distribution system. It is assumed that the initial antenna scan is accomplished within the Medium Access Control (MAC) layer. During a passive scan, the steering process cycles through the available antenna positions and monitors a signal metric associated with a beacon signal or other predetermined signal to determine a best antenna pointing direction. During an active scan where access probing is used, the process cycles through the antenna positions and monitors a signal metric associated with a probe response signal to determine the best antenna position.
  • Once the station has authenticated and associated with the network, additional scans may be performed, optionally based on a determination that the received signal level has dropped below some threshold.
  • A directional antenna in a wireless local area network (WLAN) environment results in improved range and data rates for users and increases network efficiency for the network.
  • BRIEF DESCRIPTION OF THE DRAWING(S)
  • The foregoing and other objects, features and advantages of the invention will be apparent from the following more particular description of preferred embodiments of the invention, as illustrated in the accompanying drawings in which like reference characters refer to the same parts throughout the different views. The drawings are not necessarily to scale, emphasis instead being placed upon illustrating the principles of the invention.
  • FIG. 1A is a schematic diagram of a wireless local area network (WLAN) employing the principles of the present invention;
  • FIG. 1B is a schematic diagram of a station in the WLAN of FIG. 1A performing an antenna scan;
  • FIG. 2A is an isometric view of a station of FIG. 1A having an external directive antenna array;
  • FIG. 2B is an isometric view of the station of FIG. 2A having the directive antenna array incorporated in an internal PCMIA card;
  • FIG. 3A is an isometric view of the directive antenna array of FIG. 2A;
  • FIG. 3B is a schematic diagram of a switch used to select a state of an antenna element of the directive antenna of FIG. 3A;
  • FIG. 4 is a flow diagram of a first process used by a station of FIG. 1;
  • FIG. 5 is a flow diagram of a second process used by a station of FIG. 1;
  • FIG. 6 is a flow diagram of a passive scan routine used by the processes of FIGS. 4 and 5;
  • FIG. 7 is a flow diagram of an active scan routine used by the processes of FIGS. 4 and 5; and
  • FIG. 8 is a diagram of software and hardware elements executing in the station of FIG. 2A.
  • DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENT(S)
  • A description of preferred embodiments of the invention follows.
  • FIG. 1A is a block diagram of a wireless local area network (WLAN) 100 having a distribution system 105. Access points 110 a, 110 b, and 110 c are connected to the distribution system 105 via wired connections such as wired Local Area Networks (LANs). Each of the access points 110 has a respective zone 115 a, 115 b, 115 c in which it is capable of transmitting and receiving RF signals to and from stations 120 a, 120 b, and 120 c, which are supported with Wireless Local Area Network (WLAN) hardware and software to access the distribution system 105.
  • FIG. 1B is a block diagram of a subset of the network 100 in which the second station 120 b, employing the principles of the present invention, is shown in more detail. The second station 120 b generates directive antenna lobes 130 a-130 i (collectively, lobes 130) from a directive antenna array. The directive antenna array is interchangeably referred to herein as a directional antenna. As discussed in detail beginning in reference to FIG. 2A, the second station 120 b uses the directive antenna array to scan its environment to determine a direction to a “best” access point 110 a, 110 b.
  • The scan may be performed in a passive mode, in which the second station 120 b listens for beacon signals emitted by the access points 110 a, 110 b. In 802.11 systems, the beacon signals are generally sent every 100 msec. So, for the nine antenna lobes 130, the process takes about 1 second to cycle through the antenna lobe directions and determine the best angle.
  • In an active scan mode, the second station 120 b sends a probe signal to the access points 110 a, 110 b and receives responses to the probe signal from the access points 110 a, 110 b. This probe and response process may be repeated for each antenna scan angle.
  • Continuing to refer to FIG. 1B, during either a passive or an active scan, the second station 120 b uses the directive antenna array to scan the RF airways in search of signals from the access points 110. At each scan direction, the second station 120 b measures the received beacon signal or probe response and calculates a respective metric for that scan angle. Examples of the metrics include Received Signal Strength Indication (RSSI), Carrier-to-Interference ratio (C/I), Signal-to-Noise ratio (Eb/No), or other suitable measure of the quality of the received signal or signal environment. Based on the metrics, the second station 120 b can determine a “best” direction to communicate with one of the access points 110 a, 110 b.
  • The scans may occur before or after the second station 120 b has authenticated and associated with the distribution system 105. Thus, the initial antenna scan may be accomplished within the Medium Access Control (MAC) layer. Alternatively, the initial scan may be accomplished external from the MAC layer. Similarly, scans occurring after the second station 120 b has authenticated and associated with the distribution system 105 may be accomplished within the MAC layer or by processes occurring external from the MAC layer.
  • FIG. 2A is a diagram of the first station 120 a that is equipped with a directive antenna array 200 a. In this embodiment, the directive antenna array 200 a is external from the chassis of the first station 120 a.
  • The directive antenna array 200 a includes five monopole passive antenna elements 205 a, 205 b, 205 c, 205 d, and 205 e (collectively, passive antenna elements 205) and one monopole, active antenna element 206. The directive antenna element 200 a is connected to the first station 120 a via a Universal System Bus (USB) port 215.
  • The passive antenna elements 205 in the directive antenna array 200 a are parasitically coupled to the active antenna element 206 to facilitate beam angle direction changes. Changing the beam angle direction may allow for at least one antenna beam to be rotated 360 in increments associated with the number of passive antenna elements 205. Less than full 360 rotations and sub-incremental direction changes are also possible.
  • In some embodiments, the directive antenna array 200 a supports an omni-directional mode defined by an omni-directional or substantially omni-directional antenna pattern (not shown). The stations 120 may use the omni-directional antenna pattern for Carrier Sense prior to transmission or to assess by way of comparison current performance of directional mode versus omni-directional mode. In an ‘ad hoc’ network, the stations 120 may revert to an omni-only antenna configuration since communicating with other stations 120 can occur in any direction.
  • FIG. 2B is another embodiment of the first station 120 a that includes a directive antenna array 200 b deployed on a Personal Computer Memory Card International Association (PCMCIA) card 220. The PCMCIA card 220 is disposed in the chassis of the first station 120 a in a typical manner. The PCMCIA card 220 communicates with a processor (not shown) in the first station 120 a via a typical computer bus. The directive antenna array 200 b deployed as the PCMCIA card 220 provides the same functionality as the stand-alone directive antenna array 200 a discussed above in reference to FIG. 2A.
  • It should be understood that various other forms of directional antennas can be used. For example, the directive antenna arrays 200 b may include one active antenna element electromagnetically coupled to multiple passive antenna elements. In another embodiment, the directive antenna arrays 200 may include multiple active and multiple passive antenna elements. In yet another embodiment, the directive antenna arrays 200 may include multiple active antenna elements and a single passive antenna element. In still a further embodiment, the directive antenna arrays 200 may include all active antenna elements.
  • FIG. 3A is a detailed view of the directive antenna array 200 a that includes the multiple passive antenna elements 205 and one active antenna element 206 as discussed above in reference to FIGS. 2A and 2B. As shown in this detailed view, the directive antenna array 200 a may also include a ground plane 330 to which the passive antenna elements 206 are electrically connected.
  • In operation, one state of the directive antenna array 200 a provides a directive antenna lobe 300 angled away from antenna elements 205 a and 205 e. This is an indication that the antenna elements 205 a and 205 e are in a “reflective” mode, and the antenna elements 205 b, 205 c, and 205 d are in a “transmissive” mode. In other words, the mutual coupling between the active antenna element 206 and the passive antenna elements 205 allows the mode settings of the passive antenna elements 205 to control the direction of the directive antenna lobe 300. As should be understood, different mode combinations result in different antenna lobe 300 patterns and angles.
  • FIG. 3B is a schematic diagram of an example circuit that can be used to set the passive antenna element 205 a in a reflective or transmissive mode. The reflective mode is indicated by a representative “elongated” dashed line 305, and the transmissive mode is indicated by a “shortened” dashed line 310. The representative dashed lines 305 and 310 are also representative of the electrical termination associated with the passive antenna element 205 a. For example, electrically connecting the passive antenna element 205 a to a ground plane 330 via an inductive element 320 sets the passive antenna element 205 a in reflective mode, and electrically connecting the passive antenna element 205 a to the ground plane 330 via a capacitive element 325 sets the passive antenna element 205 a in transmissive mode.
  • Electrically connecting the passive antenna element 205 a through the inductive element 320 or capacitive element 325, or, more generally, a reactive element, may be done via a switch 315. The switch 315 may be a mechanical or electrical switch capable of electrically connecting the passive antenna element 205 a to the ground plane 330 or reactive element in a manner suitable for this application. The switch 315 is set via a control signal 335 in a typical switch control manner.
  • In the case of the directive antenna array 205 a of FIG. 3A, both passive antenna elements 205 a and 205 e are connected to the ground plane 330 via respective inductive elements 320. At the same time, in the example of FIG. 3A, the other passive antenna elements 205 b, 205 c, and 205 d are electrically connected to the ground plane 330 via respective capacitive elements 325. Capacitively coupling all of the passive elements 325 causes the directive antenna array 200 a to form an omni-directional antenna beam pattern.
  • It should be understood that other electrical terminating devices may also be used between the passive antenna elements 205 and ground plane 330, such as delay lines and lumped impedances.
  • Now that a brief introduction of the 802.11 protocol and directional antenna operation has been discussed, a detailed discussion of steering a directional antenna through use of a Station Management Entity (SME) and the 802.11 protocol is presented below.
  • Referring now to FIG. 8, a SME 800, MAC layer 805, and physical (PHY) layer 810 are shown in a generalized arrangement, sometimes referred to as an 802.11 stack. In this arrangement, the SME 800 is in communication with the MAC layer 805 and PHY layer 810. The SME 800 is a layer-independent entity that may be viewed as a separate management plane or residing “off to the side” from the MAC layer 805 and PHY layer 810. The SME 800, MAC layer 805, and PHY layer 810 may communicate through various media, such as via a system bus, physical cable interconnection, or network connection. For example, the SME 800 may be a standalone software application or applet executing in a personal computer that is being used as a station 120 a, as described above. The MAC layer 805 and PHY layer 810 may be implemented in software or firmware operating in a plug-in PCI or PCMCIA card 220 installed in the station 120 a. In this embodiment, the MAC layer 805 and PHY layer 810 use standard protocols in accordance with the 802.11 standards. In this way, the SME 800 can be downloaded from a server on the Internet (not shown), for example, and be capable of interacting with the MAC layer 805 and PHY layer 810 in a plug-and-play manner.
  • The SME 800 may be partially or fully updated on occasion to facilitate updating or exchanging the directive antenna array 205 a with an antenna array having a different configuration. The SME 800 may include an interface driver (not shown). The interface driver is sometimes included as part of the SME 800 while other times provided as a separate module. The interface module can send commands to an antenna controller 815 and receive feedback from the antenna controller 815. The commands cause the directive antenna array 205 a to steer an antenna beam during a scan when searching for a “best” access point 110.
  • In accordance with the 802.11 standard, the MAC layer 805 can determine signal metrics, such as signal-to-noise ratio, associated with RF signals communicated via the directive antenna 205 a or other form of antenna. The MAC layer 805 employs the PHY layer 810 to convert and RF signal to a baseband signal, and vice-versa. The MAC layer 805 can use the PHY layer 810 to provide signal-related parameters, such as Received Signal Strength Indication (RSSI), Signal Quality (SQ), and indicated data rate. The MAC layer 805 may then provide the metrics to the SME 800 in the form of a datum associated with one antenna beam direction or a table of data associated with multiple antenna beam directions. The SME 800 may cause the MAC layer 805 to provide the metrics through use of commands or requests.
  • In operation, the SME 800 may cause the MAC layer 805 to provide metrics associated with respective beam angles of the directive antenna array 205 a. Based on the metrics and predetermined criteria, the SME 800 may steer the directive antenna array 205 a to a selected direction associated with an access point 110.
  • In a passive scan embodiment, the MAC layer 805 may be caused to determine the metrics as a function of received RF energy by the directive antenna array 205 a in the respective beam angles. For example, the metrics may be higher for signal strength of a beacon signal received from a first access point 110 a as compared to signal strength of a beacon signal received from a second access point 110 b. In an active scan embodiment, the SME 800 may cause the MAC layer 805 (i) to transmit a signal via the physical layer 810 to at least one access point 110 a, 110 b, or 110 c and (ii) to measure a response from the access point(s) 110.
  • The MAC layer 805 may also provide the metrics or table of metrics to the SME 800 based on previously calculated or measured metrics. For example, a periodic or event-driven event may cause the MAC layer 805 to determine the metrics and provide the metrics to the SME 800 on an “as needed,” “as requested,” or predefined basis. The station 120 a may associate with the distribution system via the access point 110, and the MAC layer 805 may provide the metrics to the SME 800 before or after the associating with the distribution system, optionally in a pre-selected manner.
  • The SME 800 may issue commands to the antenna controller 815, which sends control signals 820 to the directive antenna array 205 a. The control signals 820 may change the state of connection to reactances 320, 325 associated with the antenna elements 205 in the directive antenna array 200 a, which, in turn, causes the antenna beam angle to change. The SME 800 may coordinate this action with causing the MAC layer 805 to provide the metrics associated with the antenna beam angles. For example, the SME 800 may command the directive antenna array 200 to steer its antenna beam from angle to angle in a step-and-hold manner while concurrently commanding the MAC layer 805 to measure the signal strength in a corresponding wait-and-measure manner until a metric is associated with each access point 110 at each antenna beam angle.
  • Based on the metrics, the SME 800 may issue further commands to the antenna controller 815 to steer the antenna beam in a direction associated with an access point 110. For example, the antenna beam may be steered to point directly toward an access point 110 a or in the direction of a stronger multi-path that is associated with the same access point 110 a. In this way, the SME 800 can use the best path for associating the station 120 a with the selected access point 110 a.
  • The SME 800 may invoke an omni-directional beam angle by the directive antenna array 205 a on a predetermined, event-driven, or random basis to determine whether the selected antenna beam direction is still the most suitable direction for communicating with the access point 110 a. The metrics may correspond to beam angles relative to one access point 110 a or multiple access points 110 a, 110 b.
  • When scanning (i.e., searching) for a best access point 110 with which to associate, the SME 800 may command or request the MAC layer 805 to return metrics for multiple beam angles and multiple beacon signals. When determining whether a different antenna beam direction would provide an improved communications path, the SME 800 may perform a re-scan. The re-scan may be performed during an idle period (i.e., no data transmission or reception is occurring), or the re-scan may be “woven-in” during non-idle periods, in which case unused or predefined overhead bits or bytes may be used for transmitting/receiving signals to be measured or transmitting probe requests.
  • In one embodiment, the SME 800 can scan for (i) a best beam direction to a predetermined access point or (ii) a best beam direction to a non-predetermined access point. In either case, the SME 800 may cause (i.e., command or request) the MAC layer 805 to return metrics or a table of metrics for multiple beam angles and at least one beacon signal. After selecting the best beam direction based on the metrics or table of metrics, the SME 800 steers the antenna beam of the directive antenna array 205 a in the selected direction through techniques discussed above in reference to FIGS. 3A and 3B.
  • FIG. 4 is a flow diagram of a process 400 executed by the stations 120 according to the principles of the present invention for use in the WLAN 100 (FIG. 1B). The process 400 may be an embodiment of a subset of SME 800 commands executed by a processor in the station 120.
  • The process 400 begins in step 405 in which the station 120 is powered up. In step 410, the station 120 goes through an initialization process. At some point following station initialization 410, the process 400 enters into a routine 411 that executes commands that communicate with the MAC and physical layers of the 802.11 protocol. The routine 411 communicates first (step 413) with the physical layer and second (step 417) with the MAC layer 417.
  • The physical layer communications (step 413) includes a set-up 415, where initialization and communication processes occur at the physical layer of the 802.11 protocol. Other processes occurring at the physical layer may also occur at this stage of the process 400.
  • In the MAC layer communications (step 417), the process 400 continues with first determining whether passive or active scanning is to be used (Step 420) by the station 120 to determine a “best” antenna pointing angle. If passive scanning is to be used, the process 400 continues in a passive scan routine 425 (FIG. 6). If an active scanning is to be used, the process 400 continues at an active scan routine 430 (FIG. 7). Following the passive or active scan routines, the process 400 continues (step 435) by determining whether an access point 110 has been located by the selected scan routines 425 or 435.
  • If an access point 110 has not been located, the process 400 continues to scan (steps 420-430) for an access point 110 until reaching a predetermined timeout, in which case omni-directional mode is used as a default. If an access point 110 has been located, the process 400 continues at a set-up process (step 440), which again employs the MAC layer 417. The set-up process (step 440) may include performing authentication, privacy, association, and so forth as defined by the 802.11 protocol. Following set-up (step 440), the process 400 continues with a station/distribution system operation process 445 (FIG. 5).
  • FIG. 5 is a flow diagram of the station/distribution system operation process 445, which is executed in the stations 120 at the SME 800 level. The process 445 includes typical operations occurring within the station 120 a and supports interfacing between the station 120 a and the distribution system 105 via an access point 110. The process 445 may also reassess the antenna beam direction to determine a “best” direction. Reassessing the antenna beam direction may be performed on (i) a periodic basis, (ii) when the level of a received signal or other signal quality metric falls below a predetermined threshold, or (iii) based on other event driven or non-event driven criteria. The example discussed herein is based on a count-down timing model executed on the first station 120 a.
  • Continuing to refer to FIG. 5, the process 445 begins in step 505. In step 510, the process 445 determines whether the station 120 is still connected to the distribution system 105. If the station 120 a is connected, then, in step 515, the process 445 calculates a received signal level. In step 520, the process 445 determines whether the signal level is below a predetermined threshold. If the signal is not below the predetermined threshold, the process 445 continues in step 525 in which the station and distribution system operations continue.
  • In step 530, the process 445 determines whether a signal level count-down timer is equal to zero. If the signal level count-down timer equals zero, the process 445 loops back to step 510 to determine whether the station 120 a is still connected to the distribution system 105 via respective access point 110 a. If the signal level count-down timer does not equal zero, the process 445 continues at step 525. The count-down timer may be re-initialized in a typical manner at an appropriate stage of the process 445, such as step 510.
  • If the signal level is determined to be below the predetermined threshold in step 520, the process 445 continues in step 535 to execute the passive scan routine 425 (FIG. 6) or active scan routine 435 (FIG. 7). Following execution of one of the routines, the process 445 continues in step 540, in which a determination is made as to whether the station 120 has selected to access the distribution system 105 through a new access point 110. If no change is made to the access point 110 a, the process 445 continues at step 525. If a new access point has been selected, the process 445 continues at step 440 in which authentication, privacy, and association steps are performed at the MAC level of the 802.11 protocol, as discussed above.
  • If the station 120 a is no longer connected to the distribution system 105 via an access point 110 (e.g., user directed station power down, out-of-range, etc.), the process 445 continues at step 545 to determine whether the station 120 a has been powered down by a user. If the station 120 a has not been powered down, the process 445 continues at step 555, which returns to the physical layer set-up (step 415) of FIG. 4. Returning to the physical layer set-up (step 415) occurs in this embodiment based on an assumption that a communication error or out-of-range error has interrupted communications between the station 120 a and selected access point 110. If the station 120 a has been powered down, the operation 445 continues at step 550 to power down the station 120 a in a typical manner.
  • FIG. 6 is a flow diagram of the passive scan routine 425 introduced in FIG. 4. The passive scan routine 425 starts in step 605 in which a counter i is set to zero. In step 610, the routine 425 determines whether all antenna angles have been tested. If not all antenna angles have been tested, the routine 425 continues in step 615 in which the station 120 a receives access point beacon signal(s) at angle i. In other words, the antenna angle is set to angle i to listen for the beacon signal(s). In step 620, the beacon signal(s) is/are measured. In step 625, the passive scan routine 425 calculates beacon signal(s) metric(s). In step 630, the counter i is incremented to select the next angle supported by the directive antenna array 200 a (FIG. 2). The routine 425 continues in step 610 and repeats until all antenna beam angles have been tested.
  • Following testing of all antenna beam angles, the routine 425 continues in step 635, in which the routine 425 selects an antenna angle that is a “best” angle at which to communicate with an access point 110. Selection of the angle can be made according to any number of criteria, including RSSI, C/I, Eb/No, or other signal quality measure commonly known in the art. The passive scan routine 425 returns to the calling routine (FIG. 4 or 5) in step 640 for continued processing.
  • FIG. 7 is a flow diagram of the active scan routine 430 introduced in FIG. 4. The active scan routine 430 begins in step 705, in which a counter i is set equal to zero. In step 710, the routine 430 determines whether all antenna angles have been tested. If no, then the routine 430 continues in step 715.
  • In step 715, the routine 430 sends a probe via RF signal using the directive antenna array 200 a to the access point(s) 110. The routine 430 receives probe response(s) in step 720 from the access point(s) 110. In step 725, the active scan routine 430 measures the probe response(s). In step 730, the active scan routine 430 calculates metric(s) of the probe response(s). In step 735, the counter i is incremented to test the next antenna angle.
  • After repeating the process for all antenna angles, in step 740, the active scan routine 430 selects the antenna angle that provides the best or most suitable signal quality between the station 120 a and access point 110. In step 745, the active scan routine 430 returns to the calling process of FIG. 4 or 5.
  • The methods and apparatus used to practice the embodiments discussed above may be used in 802.11 networks or other wireless networks, such as a Bluetooth network.
  • The processes of FIGS. 4-8 may be implemented in software, firmware, or hardware. In the case of software, the software may be stored on any type of computer-readable medium, such as ROM, RAM, CD-ROM, or magnetic disc. Storage may be local to the station 120 or downloadable via a wired or wireless network, such as the distribution system 105 via access points 110. The software may be loaded and executed by a general purpose processor or application-specific processor.
  • While this invention has been particularly shown and described with references to preferred embodiments thereof, it will be understood by those skilled in the art that various changes in form and details may be made therein without departing from the scope of the invention encompassed by the appended claims.

Claims (19)

1. A method for operating a directional antenna in a wireless communication system comprising:
causing metrics for each of a plurality of antenna angles to be calculated in a medium access control (MAC) layer;
providing said metrics to a Station Management Entity (SME) separate from said MAC layer; and
directing the antenna to a best antenna angle based on input from said SME.
2. The method of claim 1, further comprising receiving in the MAC layer an access point signal for each antenna angle;
said access point signal used to calculate each of said metrics.
3. The method of claim 2, wherein each of said access point signals is received from a respective access point.
4. The method of claim 3, further comprising accessing the access point associated with said best antenna angle in said MAC layer.
5. The method of claim 2, wherein said access point signal is a beacon signal.
6. The method of claim 5, further comprising measuring said beacon signal.
7. The method of claim 6, wherein said best antenna angle is based on a signal quality measurement of said beacon signal.
8. The method of claim 7, wherein the signal quality measurement includes at least one of the following: signal-to-noise ratio (SNR), energy-per-bit per total noise (Eb\No), received signal strength indicator (RSSI), and a carrier to interference ratio (C\I).
9. The method of claim 1, wherein said MAC Layer determines the metrics as a function of received energy by the directional antenna in the antenna angles.
10. A mobile station in a wireless communication system comprising:
a Station Management Entity (SME) for directing a directional antenna to a best antenna angle; said best antenna angle determined using metrics calculated in a Medium Access Control (MAC) layer, external to said SME, for each of a plurality of antenna angles.
11. The mobile station of claim 10, further comprising an antenna control unit coupled to the directional antenna that receives input from said SME based on said metrics.
12. The mobile station of claim 11, wherein an access point signal is received by the MAC layer for each of said antenna angles, said access point signal used by said MAC layer to calculate each of said metrics.
13. The mobile station of claim 11, wherein the SME causes said MAC layer to calculate said metrics.
14. The mobile station of claim 13, wherein the SME causes the MAC layer to determine the metrics, for each of the antenna angles, as a function of energy received by the directional antenna.
15. The mobile station of claim 13, wherein the SME causes the MAC layer to transmit a signal to the access point and to measure a response from the access point.
16. The mobile station of claim 12, wherein said access point signal is a beacon signal.
17. The mobile station of claim 16, further comprising measuring said beacon signal.
18. The mobile station of claim 17, wherein said best antenna angle is based on a signal quality measurement of said beacon signal.
19. The mobile station of claim 18, wherein the signal quality measurement includes at least one of the following: signal-to-noise ratio (SNR), energy-per-bit per total noise (Eb\No), received signal strength indicator (RSSI), and a carrier to interference ratio (C\I).
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Cited By (4)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US20050200524A1 (en) * 2004-02-06 2005-09-15 Interdigital Technology Corporation Method and apparatus for reducing transient impacts of beam switching in a switched beam antenna system
GB2483700A (en) * 2010-09-17 2012-03-21 Deltenna Ltd Siting an access point employing a plurality of antenna beam directions
US20120155385A1 (en) * 2010-12-20 2012-06-21 Ahmed Bencheikh System and method for optimizing scanning from a multi-band communications device
US9219307B2 (en) 2010-09-30 2015-12-22 Panasonic Intellectual Property Management Co., Ltd. Wireless communication device and method for displaying estimated direction and position of a target for wireless communication

Families Citing this family (107)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
JP3760908B2 (en) * 2002-10-30 2006-03-29 株式会社日立製作所 Narrow directional electromagnetic antenna probe and electromagnetic field measuring device, current distribution exploration device or electrical wiring diagnostic device using the same
JP2004180115A (en) * 2002-11-28 2004-06-24 Nec Infrontia Corp Radio lan system
JP3913696B2 (en) * 2003-03-19 2007-05-09 三洋電機株式会社 Base station equipment
US7697448B2 (en) * 2003-04-03 2010-04-13 Broadcom Corporation Providing link quality intelligence from physical layer to higher protocol layers
US7643794B2 (en) * 2003-04-07 2010-01-05 Yoram Ofek Multi-sector antenna apparatus
US20040214539A1 (en) * 2003-04-24 2004-10-28 Krishnan Rajamani Wireless communication device supporting multiple regulatory domains
JP4666890B2 (en) * 2003-04-28 2011-04-06 ソニー株式会社 COMMUNICATION SYSTEM, COMMUNICATION METHOD, AND COMMUNICATION DEVICE
JP4397929B2 (en) * 2003-04-29 2010-01-13 株式会社エヌ・ティ・ティ・ドコモ Apparatus and method for high-speed active search of wireless network
US7609648B2 (en) * 2003-06-19 2009-10-27 Ipr Licensing, Inc. Antenna steering for an access point based upon control frames
US7103386B2 (en) * 2003-06-19 2006-09-05 Ipr Licensing, Inc. Antenna steering and hidden node recognition for an access point
CA2529788A1 (en) * 2003-06-19 2004-12-29 Ipr Licensing, Inc. Antenna steering for an 802.11 station
US7047046B2 (en) * 2003-06-19 2006-05-16 Ipr Licensing, Inc. Antenna steering for an access point based upon probe signals
US7587173B2 (en) * 2003-06-19 2009-09-08 Interdigital Technology Corporation Antenna steering for an access point based upon spatial diversity
US6958982B2 (en) 2003-07-16 2005-10-25 Interdigital Technology Corporation Method and apparatus for storing mobile station physical measurements and MAC performance statistics in a management information base of an access point
WO2005011312A2 (en) * 2003-07-16 2005-02-03 Interdigital Technology Corporation Method and system for transferring information between network management entities of a wireless communication system
US20050128977A1 (en) * 2003-07-23 2005-06-16 Interdigital Technology Corporation Method and apparatus for determining and managing congestion in a wireless communications system
US8005055B2 (en) 2003-07-23 2011-08-23 Interdigital Technology Corporation Method and apparatus for determining and managing congestion in a wireless communications system
US7236759B2 (en) * 2004-03-17 2007-06-26 Interdigital Technology Corporation Method for steering smart antenna beams for a WLAN using signal and link quality metrics
US7200376B2 (en) * 2004-03-17 2007-04-03 Interdigital Technology Corporation Method for steering smart antenna beams for a WLAN using MAC layer functions
US7289828B2 (en) * 2004-03-17 2007-10-30 Interdigital Technology Corporation Method for steering a smart antenna for a WLAN using a periodic re-scan
US7181182B2 (en) * 2004-03-17 2007-02-20 Interdigital Technology Corporation Method for steering a smart antenna for a WLAN using a self-monitored re-scan
WO2005099288A2 (en) * 2004-03-31 2005-10-20 Searete Llc Using mote-associated indexes
JP4501522B2 (en) * 2004-04-28 2010-07-14 船井電機株式会社 Digital television broadcast signal receiver
US7428428B2 (en) * 2004-04-28 2008-09-23 Hong Kong Applied Science And Technology Research Institute Co., Ltd. Systems and methods for wireless network range extension
US7292198B2 (en) 2004-08-18 2007-11-06 Ruckus Wireless, Inc. System and method for an omnidirectional planar antenna apparatus with selectable elements
US7652632B2 (en) * 2004-08-18 2010-01-26 Ruckus Wireless, Inc. Multiband omnidirectional planar antenna apparatus with selectable elements
US7362280B2 (en) * 2004-08-18 2008-04-22 Ruckus Wireless, Inc. System and method for a minimized antenna apparatus with selectable elements
US7899497B2 (en) * 2004-08-18 2011-03-01 Ruckus Wireless, Inc. System and method for transmission parameter control for an antenna apparatus with selectable elements
US7880683B2 (en) 2004-08-18 2011-02-01 Ruckus Wireless, Inc. Antennas with polarization diversity
US7696946B2 (en) 2004-08-18 2010-04-13 Ruckus Wireless, Inc. Reducing stray capacitance in antenna element switching
US7498996B2 (en) * 2004-08-18 2009-03-03 Ruckus Wireless, Inc. Antennas with polarization diversity
US7965252B2 (en) * 2004-08-18 2011-06-21 Ruckus Wireless, Inc. Dual polarization antenna array with increased wireless coverage
US8031129B2 (en) 2004-08-18 2011-10-04 Ruckus Wireless, Inc. Dual band dual polarization antenna array
US7193562B2 (en) * 2004-11-22 2007-03-20 Ruckus Wireless, Inc. Circuit board having a peripheral antenna apparatus with selectable antenna elements
US7933628B2 (en) 2004-08-18 2011-04-26 Ruckus Wireless, Inc. Transmission and reception parameter control
US7378953B2 (en) * 2004-08-30 2008-05-27 International Business Machines Corporation Transmission between a sensor and a controller in a wireless sensor network
US20060052059A1 (en) * 2004-09-09 2006-03-09 Nextel Communications, Inc. System and method for automatically adjustable directional antenna
US20060056345A1 (en) * 2004-09-10 2006-03-16 Interdigital Technology Corporation Method and system for supporting use of a smart antenna in a wireless local area network
US8504110B2 (en) * 2004-09-10 2013-08-06 Interdigital Technology Corporation Method and apparatus for transferring smart antenna capability information
TWI366356B (en) * 2004-09-10 2012-06-11 Interdigital Tech Corp Station for exchanging antenna capability in wireless communications and method thereof
US7428408B2 (en) * 2004-09-20 2008-09-23 Interdigital Technology Corporation Method for operating a smart antenna in a WLAN using medium access control information
TWI391018B (en) 2004-11-05 2013-03-21 Ruckus Wireless Inc Throughput enhancement by acknowledgment suppression
US8638708B2 (en) 2004-11-05 2014-01-28 Ruckus Wireless, Inc. MAC based mapping in IP based communications
US8619662B2 (en) 2004-11-05 2013-12-31 Ruckus Wireless, Inc. Unicast to multicast conversion
US7505447B2 (en) 2004-11-05 2009-03-17 Ruckus Wireless, Inc. Systems and methods for improved data throughput in communications networks
CN1934750B (en) * 2004-11-22 2012-07-18 鲁库斯无线公司 Circuit board having a peripheral antenna apparatus with selectable antenna elements
US8792414B2 (en) * 2005-07-26 2014-07-29 Ruckus Wireless, Inc. Coverage enhancement using dynamic antennas
US7358912B1 (en) 2005-06-24 2008-04-15 Ruckus Wireless, Inc. Coverage antenna apparatus with selectable horizontal and vertical polarization elements
US7917092B2 (en) * 2004-12-14 2011-03-29 Interdigital Technology Corporation Beam selection apparatus and method in voice over internet protocol over switched beam wireless local area network
US7397425B2 (en) 2004-12-30 2008-07-08 Microsoft Corporation Electronically steerable sector antenna
KR100664566B1 (en) * 2005-01-17 2007-01-04 삼성전자주식회사 Apparatus and method for using efficiency of antenna in mobile communication terminal with blue tooth and wireless lan
US7893882B2 (en) 2007-01-08 2011-02-22 Ruckus Wireless, Inc. Pattern shaping of RF emission patterns
US7646343B2 (en) 2005-06-24 2010-01-12 Ruckus Wireless, Inc. Multiple-input multiple-output wireless antennas
US7359362B2 (en) * 2005-01-28 2008-04-15 Microsoft Corporation Control of a multi-sectored antenna system to improve channel efficiency
US7359679B2 (en) 2005-01-28 2008-04-15 Microsoft Corporation Multi-access system and method using multi-sectored antenna
JP2006217011A (en) * 2005-02-01 2006-08-17 Fujitsu Ltd Mobile station, base station, and wireless communication system
US20060209876A1 (en) * 2005-02-10 2006-09-21 Interdigital Technology Corporation Access point using directional antennas for uplink transmission in a WLAN
EP1958369B1 (en) 2005-12-01 2015-04-08 Ruckus Wireless, Inc. On-demand services by wireless base station virtualization
US7567651B2 (en) * 2006-03-30 2009-07-28 Zeljko John Serceki Directional antenna system for wireless X-ray devices
US9071583B2 (en) * 2006-04-24 2015-06-30 Ruckus Wireless, Inc. Provisioned configuration for automatic wireless connection
US9769655B2 (en) 2006-04-24 2017-09-19 Ruckus Wireless, Inc. Sharing security keys with headless devices
WO2007127120A2 (en) 2006-04-24 2007-11-08 Ruckus Wireless, Inc. Dynamic authentication in secured wireless networks
US7639106B2 (en) * 2006-04-28 2009-12-29 Ruckus Wireless, Inc. PIN diode network for multiband RF coupling
EP2022187B1 (en) 2006-05-23 2011-03-16 Intel Corporation Millimeter-wave communication system for an indoor area
US20070293178A1 (en) * 2006-05-23 2007-12-20 Darin Milton Antenna Control
US8675617B2 (en) * 2006-06-02 2014-03-18 Interdigital Technology Corporation Methods for improving wireless communications when interference or signal loss is directional in nature
US7899396B2 (en) * 2006-06-02 2011-03-01 Qulacomm Incorporated Efficient operation for co-located WLAN and Bluetooth
KR100735397B1 (en) * 2006-06-08 2007-07-04 삼성전자주식회사 Method for performing bluetooth in wireless terminal
US8670725B2 (en) 2006-08-18 2014-03-11 Ruckus Wireless, Inc. Closed-loop automatic channel selection
GB2444538C (en) * 2006-12-06 2009-03-11 Deltenna Ltd Wireless communication system
EP2475195B1 (en) * 2006-12-18 2018-04-25 Koninklijke Philips N.V. Beacon reception using directional antennas
SE531657C2 (en) * 2007-01-31 2009-06-23 Nanoradio Ab Background scan method for WLAN client devices
JP2008278219A (en) * 2007-04-27 2008-11-13 Toshiba Corp Antenna device
US8041333B2 (en) * 2007-06-14 2011-10-18 Broadcom Corporation Method and system for 60 GHz antenna adaptation and user coordination based on base station beacons
US8547899B2 (en) 2007-07-28 2013-10-01 Ruckus Wireless, Inc. Wireless network throughput enhancement through channel aware scheduling
US8355343B2 (en) 2008-01-11 2013-01-15 Ruckus Wireless, Inc. Determining associations in a mesh network
AU2008349583B2 (en) * 2008-01-31 2012-08-23 Telefonaktiebolaget Lm Ericsson (Publ) Method and arrangement for assisting in direction adjustment of a directional antenna
US8694274B2 (en) * 2008-03-18 2014-04-08 Koninklijke Philips N.V. Distributed spectrum sensing
US8290440B2 (en) * 2008-07-02 2012-10-16 Belair Networks Inc. High performance mobility network with autoconfiguration
KR101407682B1 (en) * 2008-09-11 2014-06-13 삼성전자주식회사 Method and apparatus for supporting multiple mac version in wideband wireless communication system
KR20100044038A (en) * 2008-10-21 2010-04-29 주식회사 에이스테크놀로지 Antenna diversity system using active antenna
WO2010052519A1 (en) * 2008-11-04 2010-05-14 Nokia Corporation Asymmetric beam steering protocol
US8217843B2 (en) 2009-03-13 2012-07-10 Ruckus Wireless, Inc. Adjustment of radiation patterns utilizing a position sensor
US8698675B2 (en) 2009-05-12 2014-04-15 Ruckus Wireless, Inc. Mountable antenna elements for dual band antenna
US20110028852A1 (en) * 2009-07-30 2011-02-03 Alfoqaha Arshad A Implantable Pressure Sensor with Membrane Bridge
US9979626B2 (en) 2009-11-16 2018-05-22 Ruckus Wireless, Inc. Establishing a mesh network with wired and wireless links
CN102763378B (en) 2009-11-16 2015-09-23 鲁库斯无线公司 Set up and there is wired and mesh network that is wireless link
US20120062432A1 (en) * 2010-09-15 2012-03-15 Min-Chung Wu Directional Antenna and Smart Antenna System Using the Same
US9407012B2 (en) 2010-09-21 2016-08-02 Ruckus Wireless, Inc. Antenna with dual polarization and mountable antenna elements
WO2012114141A1 (en) 2011-02-22 2012-08-30 Nokia Corporation Network coding by beam forming
JP6066997B2 (en) 2011-05-01 2017-01-25 ラッカス ワイヤレス, インコーポレイテッド Remote cable access point reset
US9645222B2 (en) 2011-08-08 2017-05-09 Trimble Navigation Limited Apparatus for direction finding of wireless signals
US8756668B2 (en) 2012-02-09 2014-06-17 Ruckus Wireless, Inc. Dynamic PSK for hotspots
US10186750B2 (en) 2012-02-14 2019-01-22 Arris Enterprises Llc Radio frequency antenna array with spacing element
US9634403B2 (en) 2012-02-14 2017-04-25 Ruckus Wireless, Inc. Radio frequency emission pattern shaping
US20150018035A1 (en) * 2012-03-15 2015-01-15 Kyocera Corporation Wireless terminal and wireless communication method
US9092610B2 (en) 2012-04-04 2015-07-28 Ruckus Wireless, Inc. Key assignment for a brand
US9100974B2 (en) 2012-04-12 2015-08-04 Fidelity Comtech, Inc. System for continuously improving the performance of wireless networks with mobile users
US9648502B2 (en) 2012-08-15 2017-05-09 Trimble Navigation Limited System for tailoring wireless coverage to a geographic area
US9570799B2 (en) 2012-09-07 2017-02-14 Ruckus Wireless, Inc. Multiband monopole antenna apparatus with ground plane aperture
EP2733502A1 (en) * 2012-11-15 2014-05-21 James Buchheim Locator beacon and radar application for mobile device
EP2974045A4 (en) 2013-03-15 2016-11-09 Ruckus Wireless Inc Low-band reflector for dual band directional antenna
US20160345188A1 (en) * 2015-05-21 2016-11-24 Qualcomm Incorporated Low-cost randomness in wlan chipsets for internet of everything
US10374685B2 (en) * 2017-02-14 2019-08-06 Arris Enterprises Llc Dynamic Selection of a receive antenna pattern
US11463140B2 (en) * 2020-05-01 2022-10-04 Fujikura Ltd. Wireless communication device
US11018718B1 (en) * 2020-05-01 2021-05-25 Fujikura Ltd. Wireless communication device and wireless communication method
US11450957B2 (en) 2020-05-01 2022-09-20 Fujikura Ltd. Wireless communication device

Citations (42)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US4021813A (en) * 1974-07-01 1977-05-03 The United States Of America As Represented By The Secretary Of The Navy Geometrically derived beam circular antenna array
US5027125A (en) * 1989-08-16 1991-06-25 Hughes Aircraft Company Semi-active phased array antenna
US5293172A (en) * 1992-09-28 1994-03-08 The Boeing Company Reconfiguration of passive elements in an array antenna for controlling antenna performance
US5767807A (en) * 1996-06-05 1998-06-16 International Business Machines Corporation Communication system and methods utilizing a reactively controlled directive array
US5905473A (en) * 1997-03-31 1999-05-18 Resound Corporation Adjustable array antenna
US6100843A (en) * 1998-09-21 2000-08-08 Tantivy Communications Inc. Adaptive antenna for use in same frequency networks
US6195045B1 (en) * 1999-01-29 2001-02-27 Cwill Telecommunication, Inc. Adaptive antenna array system calibration
US6239756B1 (en) * 1999-11-19 2001-05-29 Tantivy Communications Antenna array with housing
US6239045B1 (en) * 1998-07-07 2001-05-29 Shin-Etsu Handotai Co., Ltd. Semiconductor producing apparatus and producing method for epitaxial wafer using same
US6239757B1 (en) * 1994-04-07 2001-05-29 Murata Manufacturing Co., Ltd. Communication module for a means of transportation
US20010020915A1 (en) * 1998-09-21 2001-09-13 Proctor James Arthur Method and apparatus for adapting antenna array to reduce adaptation time while increasing array performance
US20010028639A1 (en) * 2000-03-28 2001-10-11 Albert Eikelenboom Wireless LAN with carrier sense threshold adaption
US20010031648A1 (en) * 1998-09-21 2001-10-18 Proctor James Arthur Method and apparatus for performing directional re-scan of an adaptive antenna
US6330433B1 (en) * 1996-03-29 2001-12-11 Nokia Mobile Phones Limited Antenna selection control circuitry
US20020036586A1 (en) * 2000-09-22 2002-03-28 Tantivy Communications, Inc. Adaptive antenna for use in wireless communication systems
US6445688B1 (en) * 2000-08-31 2002-09-03 Ricochet Networks, Inc. Method and apparatus for selecting a directional antenna in a wireless communication system
US20020187813A1 (en) * 2001-06-12 2002-12-12 Mobisphere Limited Smart antenna arrays
US6515635B2 (en) * 2000-09-22 2003-02-04 Tantivy Communications, Inc. Adaptive antenna for use in wireless communication systems
US20030048770A1 (en) * 2001-09-13 2003-03-13 Tantivy Communications, Inc. Method of detection of signals using an adaptive antenna in a peer-to-peer network
US6600456B2 (en) * 1998-09-21 2003-07-29 Tantivy Communications, Inc. Adaptive antenna for use in wireless communication systems
US20030146876A1 (en) * 2001-12-07 2003-08-07 Greer Kerry L. Multiple antenna diversity for wireless LAN applications
US20040017793A1 (en) * 2002-07-26 2004-01-29 Thermond Jeffrey L. Wireless access point service coverage area management
US6732176B1 (en) * 1999-11-03 2004-05-04 Wayport, Inc. Distributed network communication system which enables multiple network providers to use a common distributed network infrastructure
US6753826B2 (en) * 2001-11-09 2004-06-22 Tantivy Communications, Inc. Dual band phased array employing spatial second harmonics
US20040145530A1 (en) * 2002-06-17 2004-07-29 Tantivy Communications, Inc. Antenna steering scheduler for mobile station in wireless local area network
US6907229B2 (en) * 2002-05-06 2005-06-14 Extricom Ltd. Enhancing wireless LAN capacity using transmission power control
US6911984B2 (en) * 2003-03-12 2005-06-28 Nvidia Corporation Desktop compositor using copy-on-write semantics
US6937591B2 (en) * 2003-02-27 2005-08-30 Microsoft Corporation Quality of service differentiation in wireless networks
US6937229B2 (en) * 2001-08-28 2005-08-30 Kevin Murphy Keycap for displaying a plurality of indicia
US6970927B1 (en) * 2000-04-18 2005-11-29 Wayport, Inc. Distributed network communication system which provides different network access features
US6985465B2 (en) * 2000-07-07 2006-01-10 Koninklijke Philips Electronics N.V. Dynamic channel selection scheme for IEEE 802.11 WLANs
US7020439B2 (en) * 2003-01-09 2006-03-28 Nokia Corporation Selection of access point in a wireless communication system
US7031336B2 (en) * 2002-08-26 2006-04-18 Colubris Networks, Inc. Space-time-power scheduling for wireless networks
US7092374B1 (en) * 2000-09-27 2006-08-15 Cirrus Logic, Inc. Architecture for a wireless area network node
US7146433B2 (en) * 2002-02-01 2006-12-05 Lenovo Singapore Pte. Ltd Extending an allowable transmission distance between a wireless device and an access point by communication with intermediate wireless devices
US7151945B2 (en) * 2002-03-29 2006-12-19 Cisco Systems Wireless Networking (Australia) Pty Limited Method and apparatus for clock synchronization in a wireless network
US7171505B2 (en) * 2002-05-02 2007-01-30 International Business Machines Corporation Universal network interface connection
US7194502B1 (en) * 2000-11-15 2007-03-20 National Semiconductor Corporation Network interface card using physical layer microcontroller and method of operation
US7453844B1 (en) * 2002-10-22 2008-11-18 Hong Kong Applied Science and Technology Research Institute, Co., Ltd. Dynamic allocation of channels in a wireless network
US7461164B2 (en) * 2002-02-08 2008-12-02 Dsp Group Inc. Medium access control with software -and hardware- based components in a wireless network
US7492787B2 (en) * 2002-03-29 2009-02-17 Fujitsu Limited Method, apparatus, and medium for migration across link technologies
US7580674B2 (en) * 2002-03-01 2009-08-25 Ipr Licensing, Inc. Intelligent interface for controlling an adaptive antenna array

Family Cites Families (1)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
GB2376568B (en) * 2001-06-12 2005-06-01 Mobisphere Ltd Improvements in or relating to smart antenna arrays

Patent Citations (47)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US4021813A (en) * 1974-07-01 1977-05-03 The United States Of America As Represented By The Secretary Of The Navy Geometrically derived beam circular antenna array
US5027125A (en) * 1989-08-16 1991-06-25 Hughes Aircraft Company Semi-active phased array antenna
US5293172A (en) * 1992-09-28 1994-03-08 The Boeing Company Reconfiguration of passive elements in an array antenna for controlling antenna performance
US6239757B1 (en) * 1994-04-07 2001-05-29 Murata Manufacturing Co., Ltd. Communication module for a means of transportation
US6330433B1 (en) * 1996-03-29 2001-12-11 Nokia Mobile Phones Limited Antenna selection control circuitry
US5767807A (en) * 1996-06-05 1998-06-16 International Business Machines Corporation Communication system and methods utilizing a reactively controlled directive array
US5905473A (en) * 1997-03-31 1999-05-18 Resound Corporation Adjustable array antenna
US6239045B1 (en) * 1998-07-07 2001-05-29 Shin-Etsu Handotai Co., Ltd. Semiconductor producing apparatus and producing method for epitaxial wafer using same
US6600456B2 (en) * 1998-09-21 2003-07-29 Tantivy Communications, Inc. Adaptive antenna for use in wireless communication systems
US6100843A (en) * 1998-09-21 2000-08-08 Tantivy Communications Inc. Adaptive antenna for use in same frequency networks
US20010020915A1 (en) * 1998-09-21 2001-09-13 Proctor James Arthur Method and apparatus for adapting antenna array to reduce adaptation time while increasing array performance
US6304215B1 (en) * 1998-09-21 2001-10-16 Tantivy Communications, Inc. Method of use for an adaptive antenna in same frequency networks
US20010031648A1 (en) * 1998-09-21 2001-10-18 Proctor James Arthur Method and apparatus for performing directional re-scan of an adaptive antenna
US6195045B1 (en) * 1999-01-29 2001-02-27 Cwill Telecommunication, Inc. Adaptive antenna array system calibration
US6732176B1 (en) * 1999-11-03 2004-05-04 Wayport, Inc. Distributed network communication system which enables multiple network providers to use a common distributed network infrastructure
US6239756B1 (en) * 1999-11-19 2001-05-29 Tantivy Communications Antenna array with housing
US20010028639A1 (en) * 2000-03-28 2001-10-11 Albert Eikelenboom Wireless LAN with carrier sense threshold adaption
US6970927B1 (en) * 2000-04-18 2005-11-29 Wayport, Inc. Distributed network communication system which provides different network access features
US6985465B2 (en) * 2000-07-07 2006-01-10 Koninklijke Philips Electronics N.V. Dynamic channel selection scheme for IEEE 802.11 WLANs
US6445688B1 (en) * 2000-08-31 2002-09-03 Ricochet Networks, Inc. Method and apparatus for selecting a directional antenna in a wireless communication system
US6515635B2 (en) * 2000-09-22 2003-02-04 Tantivy Communications, Inc. Adaptive antenna for use in wireless communication systems
US20020036586A1 (en) * 2000-09-22 2002-03-28 Tantivy Communications, Inc. Adaptive antenna for use in wireless communication systems
US7092374B1 (en) * 2000-09-27 2006-08-15 Cirrus Logic, Inc. Architecture for a wireless area network node
US7194502B1 (en) * 2000-11-15 2007-03-20 National Semiconductor Corporation Network interface card using physical layer microcontroller and method of operation
US20020187813A1 (en) * 2001-06-12 2002-12-12 Mobisphere Limited Smart antenna arrays
US6937229B2 (en) * 2001-08-28 2005-08-30 Kevin Murphy Keycap for displaying a plurality of indicia
US20030048770A1 (en) * 2001-09-13 2003-03-13 Tantivy Communications, Inc. Method of detection of signals using an adaptive antenna in a peer-to-peer network
US7224685B2 (en) * 2001-09-13 2007-05-29 Ipr Licensing, Inc. Method of detection of signals using an adaptive antenna in a peer-to-peer network
US7586880B2 (en) * 2001-09-13 2009-09-08 Ipr Licensing, Inc. Method of detection of signals using an adaptive antenna in a peer-to-peer network
US6753826B2 (en) * 2001-11-09 2004-06-22 Tantivy Communications, Inc. Dual band phased array employing spatial second harmonics
US20030146876A1 (en) * 2001-12-07 2003-08-07 Greer Kerry L. Multiple antenna diversity for wireless LAN applications
US7253779B2 (en) * 2001-12-07 2007-08-07 Skycross, Inc. Multiple antenna diversity for wireless LAN applications
US7146433B2 (en) * 2002-02-01 2006-12-05 Lenovo Singapore Pte. Ltd Extending an allowable transmission distance between a wireless device and an access point by communication with intermediate wireless devices
US7461164B2 (en) * 2002-02-08 2008-12-02 Dsp Group Inc. Medium access control with software -and hardware- based components in a wireless network
US7580674B2 (en) * 2002-03-01 2009-08-25 Ipr Licensing, Inc. Intelligent interface for controlling an adaptive antenna array
US7492787B2 (en) * 2002-03-29 2009-02-17 Fujitsu Limited Method, apparatus, and medium for migration across link technologies
US7151945B2 (en) * 2002-03-29 2006-12-19 Cisco Systems Wireless Networking (Australia) Pty Limited Method and apparatus for clock synchronization in a wireless network
US7171505B2 (en) * 2002-05-02 2007-01-30 International Business Machines Corporation Universal network interface connection
US6907229B2 (en) * 2002-05-06 2005-06-14 Extricom Ltd. Enhancing wireless LAN capacity using transmission power control
US20040145530A1 (en) * 2002-06-17 2004-07-29 Tantivy Communications, Inc. Antenna steering scheduler for mobile station in wireless local area network
US20040017793A1 (en) * 2002-07-26 2004-01-29 Thermond Jeffrey L. Wireless access point service coverage area management
US7394796B2 (en) * 2002-07-26 2008-07-01 Broadcom Corporation Wireless access point service coverage area management
US7031336B2 (en) * 2002-08-26 2006-04-18 Colubris Networks, Inc. Space-time-power scheduling for wireless networks
US7453844B1 (en) * 2002-10-22 2008-11-18 Hong Kong Applied Science and Technology Research Institute, Co., Ltd. Dynamic allocation of channels in a wireless network
US7020439B2 (en) * 2003-01-09 2006-03-28 Nokia Corporation Selection of access point in a wireless communication system
US6937591B2 (en) * 2003-02-27 2005-08-30 Microsoft Corporation Quality of service differentiation in wireless networks
US6911984B2 (en) * 2003-03-12 2005-06-28 Nvidia Corporation Desktop compositor using copy-on-write semantics

Cited By (8)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US20050200524A1 (en) * 2004-02-06 2005-09-15 Interdigital Technology Corporation Method and apparatus for reducing transient impacts of beam switching in a switched beam antenna system
US7430440B2 (en) * 2004-02-06 2008-09-30 Interdigital Technology Corporation Method and apparatus for reducing transient impacts of beam switching in a switched beam antenna system
US20090023401A1 (en) * 2004-02-06 2009-01-22 Interdigital Technology Corporation Method and apparatus for reducing transient impacts of beam switching in a switched beam antenna system
GB2483700A (en) * 2010-09-17 2012-03-21 Deltenna Ltd Siting an access point employing a plurality of antenna beam directions
GB2483700B (en) * 2010-09-17 2014-05-07 Deltenna Ltd Access point siting
US9219307B2 (en) 2010-09-30 2015-12-22 Panasonic Intellectual Property Management Co., Ltd. Wireless communication device and method for displaying estimated direction and position of a target for wireless communication
US20120155385A1 (en) * 2010-12-20 2012-06-21 Ahmed Bencheikh System and method for optimizing scanning from a multi-band communications device
US10045282B2 (en) * 2010-12-20 2018-08-07 Time Warner Cable Enterprises Llc System and method for optimizing scanning from a multi-band communications device

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