WO1988004087A1 - Detector system for optical mouse - Google Patents

Detector system for optical mouse Download PDF

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Publication number
WO1988004087A1
WO1988004087A1 PCT/US1987/003084 US8703084W WO8804087A1 WO 1988004087 A1 WO1988004087 A1 WO 1988004087A1 US 8703084 W US8703084 W US 8703084W WO 8804087 A1 WO8804087 A1 WO 8804087A1
Authority
WO
WIPO (PCT)
Prior art keywords
cells
pairs
mouse
detector
grid
Prior art date
Application number
PCT/US1987/003084
Other languages
French (fr)
Inventor
Kenneth E. Victor
Carl A. Goy
Original Assignee
Mouse Systems Corporation
Priority date (The priority date is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the date listed.)
Filing date
Publication date
Application filed by Mouse Systems Corporation filed Critical Mouse Systems Corporation
Priority to DE3789508T priority Critical patent/DE3789508T2/en
Publication of WO1988004087A1 publication Critical patent/WO1988004087A1/en

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Classifications

    • GPHYSICS
    • G06COMPUTING; CALCULATING OR COUNTING
    • G06FELECTRIC DIGITAL DATA PROCESSING
    • G06F3/00Input arrangements for transferring data to be processed into a form capable of being handled by the computer; Output arrangements for transferring data from processing unit to output unit, e.g. interface arrangements
    • G06F3/01Input arrangements or combined input and output arrangements for interaction between user and computer
    • G06F3/03Arrangements for converting the position or the displacement of a member into a coded form
    • G06F3/0304Detection arrangements using opto-electronic means
    • G06F3/0317Detection arrangements using opto-electronic means in co-operation with a patterned surface, e.g. absolute position or relative movement detection for an optical mouse or pen positioned with respect to a coded surface

Definitions

  • the present invention relates to an optical mouse or cursor position control device in which move ⁇ ment of the device over a passive grid surface controls movement of a cursor on a visual display system, such as a computer screen.
  • the invention relates to optical detector systems of such a mouse for interpre ⁇ ting the position of the mouse with respect to the grid.
  • Kirsch describes an electro-optical mouse having two linear arrays of detector cells at right angles to each other. The mouse moves over a surface marked with a grid of lines with three optical contrast levels, including a separate con ⁇ trast level for line intersections.
  • One linear array images a line and a space in the horizontal direction. while the other array images a line and space in the vertical direction.
  • Each array has four cells, adjacent cells being 90° out-of-phase with each other.
  • irsch describes an electro-optical mouse which moves over a surface marked with a two color grid of lines.
  • the mouse has a dual color light source which rapidly and continuously switches from one color to the other.
  • the mouse also has a four-quadrant light detector positioned for receiving the light reflected from the grid. During illumination by light of one color the detector can distinguish lines only of the opposite color. Hence, as the mouse crosses lines of different color, the detectors sense changes in contrast and generates electrical signals representing the line crossings.
  • the desired output from the detec- tors is taken from three of the four cells, two horizon- tal bits from two horizontal cells and two vertical bits from two vertical cells.
  • a position signal for a cursor may be derived.
  • the mouse components be sufficiently compact so that the mouse fits in the palm of a hand.
  • the system should be able to reliably determine motion of a mouse over a grid surface for every possible relative position between, the detector elements and the grid lines. Further, it is desirable that the system not be strongly dependent on the absolute reflectivity of the particular grid or on the amount of contrast between reflective and non-reflec- tive portions of the grid, so that compensation with a threshold voltage is not required. Accordingly, it is an object of the present invention to produce a cursor position control system which meets these criteria. Disclosure of the Invention
  • an optical mouse movable over a grid surface has a detector which is a three-by- three array of detector cells.
  • the surface has a grid pattern thereon which is made up of two intersecting orthogonal sets of parallel grid lines and spaces defined between the grid lines.
  • the grid lines are of a first color and the spaces are of a second contrasting color.
  • the grid lines are uniformly spaced apart and of a uni ⁇ form line width.
  • the spaces have a width which is equal to the line width.
  • the mouse has a light source which illuminates a portion of the surface and the detector is disposed to receive and detect the light reflected from the surface.
  • the detector cells image areas of the grid pattern which typically have a characteristic dimension which is substantially equal to one-half of the line width. Seven of the nine detec ⁇ tor cells are used. The cells are grouped into pairs of cells which are located so as to image areas on the grid pattern a distance of an odd multiple of line widths apart in a direction which is orthogonal to the direction of motion which they detect. Thus, for example, a pair of cells for detecting vertical motion may be located for imaging areas one line width horizontally apart, thereby ensuring that one of the cells in the pair detects crossings of the mouse through spaces and horizontal grid lines.
  • a pair of cells for detecting vertical motion may be located for imaging areas on the grid which are spaced three, five, seven or some other odd number of line widths horizontal ⁇ ly apart.
  • pairs of cells for detecting hori ⁇ zontal motion may be located for imaging areas one, three or other odd number of line widths vertically apart. There are two pairs of cells for detecting horizontal motion and two pairs of cells for detecting vertical motion.
  • One pair of cells for detecting a particular direction of motion image areas that are located one-half line width, three-halves line widths or other odd mul ⁇ tiple of half line widths apart in that direction of motion from the areas imaged by other related pair of cells, thereby producing a distinguishable lead or lag in 5 the detection by the pairs of cells of crossings over spaces and grid lines.
  • the detector cells produce an electrical output signal corresponding to the amount of light they receive.
  • the signals from each of the four pairs of cells are 0 combined and then converted to four quadrature signals of square waves.
  • the quadrature signals switch to a first state when the combined signals are increasing with time and switch to the opposite state when the combined sig ⁇ nals are decreasing with time, or vice versa, thereby 5 avoiding threshold problems and the need for a reference voltage.
  • Fig. 1 is a perspective plan view of an optical o mouse having a detector in accord with the present inven ⁇ tion.
  • Fig. la is a plan view of an alternate grid pattern for use with the optical mouse of Fig. 1.
  • Fig.- ' 2 is a side view of the apparatus shown in 5 Fig. 1.
  • Fig. 3 is a plan view of the detector array for use in the optical mouse of Figs. 1 and 2.
  • Fig. 4 is a plan view of a portion of a grid pattern for use with the optical mouse of Fig. 1 and 0 indicating the relative size of the area observed by the detector array of Fig. 3 in relation to the grid pattern.
  • Fig. 5 is a schematic electrical diagram of a logic circuit used with the detector in Fig. 3.
  • Fig. 6 is a timing diagram representation of 5 quadrature signal outputs of two pairs of detector cells of Fig. 3, indicative of the amount and direction of movement along a particular orthogonal coordinate axis.
  • Fig. 7 is a plan view of a portion of a grid pattern for use with the optical mouse of Figs. 1 and 2 illustrating the relative spacing of detector cells in relation to the grid pattern.
  • Fig. 8 is a plan view of a portion of a grid pattern indicating the relative sizes of areas observed by detector cells of an alternate detector in relation to the grid pattern.
  • an optical mouse 11 includes a housing 14, containing a light source 15 and a photodetector 25.
  • the housing is gripped by a human hand and pushed in any direction on a surface 13, corresponding to the direction and extent to which it is desired to move a cursor or similar device on a visual display system, such as a computer screen.
  • Housing 14 fits in the palm of a hand and has thin, low friction feet or spacers 31 and 33 whi ⁇ h contact surface 13 and elevate the body of the housing a slight distance above surface 13.
  • Spacers 31 and 33 may be made, for example, of Teflon or nylon so that the housing slides easily over the surface.
  • Source 15 may be a light emitting diode (LED) , incandescent bulb or other broadband illumination source and may emit ultraviolet and infrared as well as visible light.
  • source 15 may be a laser such as a diode laser.
  • Source 15 is aimed downwardly at a spot 20 on surface 13.
  • Source 15 may be mounted within a light tight supporting tube 17, as shown, or may be directly aimed at the surface.
  • Supporting tube 17 extends angu ⁇ larly downward through a planar support 27 of housing 14 and is held in place therein.
  • source 15 is mounted close to the surface so that light arriving at the surface will be in a relatively narrow spot, with a diameter sufficient to illuminate the area viewed by detector 25.
  • the spot diameter is about 1.0 mm, sufficient to cover a grid line and space with a line width of about 0.5 mm.
  • a detector tube 21 having at its forward end an imaging lens 23.
  • the 5 remainder of the tube 21 is generally light tight.
  • Tube 21 extends angularly downward through shelf 27 so as to receive light reflected from spot 20.
  • Lens 23 directs light reflected from spot 20 onto detector 25.
  • Detector 25 is mounted at the rear of tube 21 and receives a 0 magnified image of a portion of surface 13 via the im ⁇ aging lens 23.
  • lens 23 is spaced_ more than one focal length from the surface.
  • the spacing between detector 25 and lens 23 is about five focal lengths.
  • the magnification that results should be such that the area 5 being looked at by detector 25 images onto the detector. As low a magnification as possible is preferred so as to reduce optical errors.
  • the diameter of lens 23 is approximately 3 to 8 mm, but could be more or less. If the light source 15 is sufficiently close to the surface, o °r is a laser, so that detector 25 does not detect light directly from source 15, tube 21 becomes unnecessary and may be omitted.
  • a partial grid pattern 16 may be seen on surface 13, with dark orthogonal lines and white 5 spaces between lines.
  • Surface 13 has a horizontal and vertical repetitive pattern of passive, position related indicia which extends over at least a portion of the surface.
  • these indicia are marks of high optical contrast, such as an optically absorptive and 0 reflective pattern.
  • Such a pattern could be a shiny metallic, white or other highly reflective surface with a grid of black lines marked on the surface.
  • the lines are printed with ink having pigment particles with the de ⁇ sired optical property.
  • black squares may 5 be marked on the surface, resulting in the pattern 18 seen in Fig. la having reflective grid lines with low reflectivity spaces therebetween.
  • the grid pattern is discussed further below in greater detail with reference to Fig. 4.
  • the cursor position control system of the pre ⁇ sent invention which comprises optical mouse 11 and surface 13 with grid pattern 16, generates electrical signals which instruct a cursor regarding movement up or down, left or right.
  • the mouse on the surface There is no particular starting place for the mouse on the surface and it may be brought down any place on the surface, so long as there is suffi- cient room to move the mouse in a direction wherein cursor motion is desired.
  • alignment should be such that detector 25 is appropriately oriented with respect to the grid pattern on the surface, as shown in Fig. 4.
  • the mouse may be rotated up to 45 degrees in either direction from this nominal orientation without affecting the decoded signal.
  • the typical size for housing 14 of mouse 11 is approximately 6 cm in width and approximately 8 cm in length.
  • a preferred size for the surface would be ap- proximately 22 cm in width and approximately 30 cm in length.
  • Detector 25 is a three-by- three array of detector cells.
  • the cells may be transis ⁇ tors or diodes of a CCD areawise array. Seven of the nine detector cells, designated by the letters A, B, C, D, E, F and G, are active while the two remaining cells 49 and 50 are unused. Cells A, B, F and G are used for determining horizontal motion and cells A, C, D and E are used for determining vertical motion. The manner in which this determination is made is discussed below with reference to Figs. 5 and 6.
  • Fig. 4 shows a portion of the grid pattern 16 on surface 13.
  • Grid pattern 16 is made up of two inter ⁇ secting orthogonal sets of grid lines, including a set of horizontal grid lines, such as lines 37 and 39, and a set of vertical grid lines, such as lines 41 and 43, and is also made up of spaces 45 defined between the grid lines.
  • Grid lines are of a first color, while spaces are of a second color contrasting with a first color.
  • grid lines may be reflective or white and spaces may be ab- 5 sorptive or black, or vice versa.
  • the boundaries 47 between grid lines and spaces need not be sharply de ⁇ fined, although this is preferred, provided a sufficient contrast ratio exists between lines and spaces so as to be detectable.
  • the entire 0 surface 13 may start as a reflective area. " Glossy white paper or mylar may be used. Colored inks or dyes may then be used to print the lines.
  • the vertical grid lines 41 and 43 and the horizontal grid lines 37 and 39 have approximately 5 the same line width W.
  • Each set of grid lines is made up of parallel uniformly spaced grid lines.
  • the spaces 45 are of uniform size with a width approximately equal to the line width.
  • the line width W is about 0.5 mm for both vertical and horizontal grid lines, o forming square spaces 0.5mm on a side. 1.0 mm or other line widths may also be used.
  • the pattern need not form square spaces, although this is easy to handle for compu ⁇ tation purposes.
  • the dashed line 35 indicates the 5 relative area within a grid which forms the field of view and orientation of the array detector 25 illustrated in Fig. 3, relative to the grid of lines and in particular to the line width.
  • the dashed line 35 represents the area imaged by the lens of the detector tube onto the 0 detector array, such that each detector cell is capable of resolving one-half the width of a grid line or space.
  • the optical mouse is moved in any direction relative to grid pattern 16. This is represented in Fig. 4 by arrows 52 in which the field of view of the detector 5 within dashed square 35 may move up or down and left or right. Since the grid lines are orthogonal, as indicated in Fig. 4 by the x-y coordinate axes, horizontal motion in this X-direction and vertical in the Y-direction are detected and measured independently. If the mouse is rotated more than 45 degrees, the axes switch (i.e., the horizontal cells sense vertical motion, and vice versa) . For horizontal motion, detector cells A and F are located so as to image areas which are one line width vertically apart.
  • detector cells B and G are located so as to image areas which are one line width vertically apart.
  • the pair of cells A and F is located so as to image areas one-half of a line width horizontally apart from areas imaged by a related pair of cells B and G. This separa- tion produces a lead or lag in the detection of line crossings by one pair relative to the other related pair so that direction of.motion may be determined.
  • detector cells A and C are located so as to image areas o,ne line width horizontally apart.
  • Detector cells D and E are also located so as to image areas one line width horizontally apart.
  • the pair of cells A and C is located so as to image areas one-half of a line width vertically apart from areas imaged by the pair of cells D and E. The result is that for each pair, while one cell follows a vertical grid line, the other cell of the pair detects crossings through horizontal grid lines and spaces. One pair leads the other related pair in the detection of line crossings relative to the other pair.
  • detector cells of a pair of cells for detecting motion of the mouse in a particular direc ⁇ tion image areas of the grid pattern which are separated in a direction orthogonal to that particular direction by a distance of one line width W, thereby ensuring that one cell in the pair detects crossings through grid lines and spaces.
  • a pair of detector cells A and F are located so as to detect hori- zontal motion, and, as in Fig. 4, image areas one line width apart.
  • Cells A and Al image areas two line widths apart.
  • cells A and Al either both detect crossings through vertical grid lines and spaces or both .follow horizontal grid lines. In the later case, neither cell A nor cell Al detects horizontal motion.
  • cells A and Al and other pairs of cells which image areas separated by an even number line widths W are not suited for detecting mouse movement.
  • Cells A and Fl image areas which are three line widths apart. As with cells A and F, one cell in the pair A and Fl is always located for detecting crossings through grid lines and spaces. This is also true for any cell pairs which image areas separated by other odd multiples of line widths W.
  • pairs of cells B and G, B and Gl, and B2 and G2 also image areas an odd number of vertical line widths apart, and can detect horizontal mouse motion over the grid. The case for vertical motion detection is analogous. Also in Fig.
  • each pair of cells for de ⁇ tecting motion of the mouse in a particular direction image areas of the grid pattern which are separated in that particular direction from areas imaged by a related pair for detecting motion in the same direction by one- half of a line width, thereby producing a recognizable lead or lag in the detection of line crossings by one pair relative to the other related pair.
  • Pair of cells A and F image areas one-half line width apart from pairs of cells B and G.
  • pair B and G leads pair A and F by a 90° phase separation in the detection of line crossings.
  • pair B and G lags pair A and F by 90°.
  • Pair of cells A and F image areas three-halves line widths apart from pair of cells B2 and G2.
  • pair B2 and G2 lags pair A and F by a 90° phase shift in the detection of line crossings.
  • pair B2 and G2 leads pair A and F by 90°. Accordingly, pairs of cells that image areas separated by three-halves of a line width produce a recognizable lead or lag that enables leftward or rightward motion of a mouse to be determined. Pairs of cells for detecting motion in a particular direction which image areas sepa- rated in that particular direction by other odd multiples of half line widths also produce this lead or lag.
  • Detector cells in the detector array 35 seen in Fig. 3 are substantially square and image square areas on the grid pattern in Fig. 4 which are approximately one- half of a line width on a side. However, compared to the separations between detector cells, the size and shape of detector cells are not particularly critical.
  • An alter ⁇ nate detector 113, seen in Fig. 8, illustrates this point by way of example. Detector ells A, B, F and G detect horizontal motion of a mouse, the same as in Fig. 4.
  • Cells F and G illustrate that detector cells can have any shape in which a width in the particular direction that the cells detect is at most one-half of a line width and in which a length orthogonal to the par- ti ⁇ ular direction that the cells detect is in a range from one-half of a line width to one line width.
  • Detec ⁇ tor cell F for example, has a narrow width, measured in the horizontal direction, of about one-quarter of a line width and a length, measured in the vertical direction, of about one line width.
  • Detector cells A, C, D and E detect vertical motion of a mouse. The length and width of cells C and E are analogous to that of cells F and G.
  • Cell A for detecting both vertical and horizontal motion is constrained by the limit set forth above to be sub- stantially a square with one-half line width sides.
  • optical signals rep ⁇ resenting differences in reflectivity are picked up by the detector cells and converted into corresponding elec- trical voltage signals.
  • the electrical outputs from the detector cells are labeled A, B, C, D, E, F and G match ⁇ ing the corresponding cells in Fig. 3 from which they originate, and are transmitted along corresponding lines to circuits where electrical voltage addition or subtrac ⁇ tion occurs.
  • cells A and F transmit elec ⁇ trical signals along lines 71 and 72 to adding or sub ⁇ tracting circuit 81.
  • Cells B and G transmit electrical signals along lines 73 and 74 to adding or subtracting circuit 83.
  • Cells A and C transmit electrical signals along lines 75 and 76 to adding or subtracting circuit 85.
  • Cells D and E transmit electrical signals along lines 77 and 78 to adding or subtracting circuit 87. These circuits generate combined output signals along output lines 91, 93, 95 and 97 which represent the sums, denoted by A + F, B + G, A + C and D + E, or differences of each circuit's corresponding input signal.
  • a differentiating circuit 100 has individual differentiators 101, 103, 105,,-and 107 connected to res- pective lines 91, 93, 95 and 97.
  • the output of a differ ⁇ entiator is set to a value of one wherever the voltage of the combined electrical signal A + F, B + G, A + C or D + E being input into the differentiator is decreasing with time, i.e. has a negative time derivative.
  • the output is reset to a value of zero wherever the voltage of the combined electrical signal being input is increasing with time, i.e. has a positive time derivative.
  • the output value remains unchanged when there is no increase or decrease, i.e. whenever the combined signal has a zero time derivative.
  • a constant voltage for hysteresis may be included in the combined signal to prevent random switching of output signal in the case when the combined signal being input has a zero or near zero time deriva ⁇ tive.
  • the differentiating circuit 100 converts the combined electrical signals A + F, B + G, A + C and D + C being input from analog signals approximating sine waves to digital square wave signals.
  • Differentiating circuits eliminate the need for a threshold voltage to compensate for the absolute reflectivities of the grid pattern, since it is the change in reflectivity which is repre ⁇ sented by the resulting quadrature signal.
  • the digital square wave signals output by the differentiating circuit 100 are quadrature signals desig ⁇ nated XA, XB, YA and YB indicative of line crossings.
  • the quadrature signals are transmitted to the counters 111 which are commercially available and are exemplified by a computer manufactured by LISP Machine, Inc. of Cambridge, Massachusetts, or computers manufactured by Xerox Corporation and BBN of Cambridge, from many mech ⁇ anical mice and the present code is identical to that produced by such mice.
  • the output from the counter 111 is then fed to a cursor which is displayed on a video display or video terminal.
  • the signal will be between the maximum and minimum voltage while one of the detectors crosses over a boundary be ⁇ tween space and grid line. If, on the other hand, the grid lines have low reflectivity and the spaces have high reflectivity the role of the maximum and minimum voltages will be reversed as will the zero and one states for signals XA and XB. However, the interpretation of sig ⁇ nals XA and XB will be unaffected since the order in which signals XA and XB switch states at a line crossing will remain unchanged.
  • Quadrature signal XA corresponds to combined signal A + F and assumes a one state whenever combined signal A + F is decreasing in voltage with time, i.e. whenever the mouse moves horizontally from a grid line to a space, and assumes a zero state whenever the combined signal is increasing in voltage with time, i.e. whenever the mouse moves horizontally from a space to a grid line.
  • quadrature signal XB corresponds to combined signal B +-G.
  • Quadrature signal YA corresponds to com ⁇ bined signal A + C.
  • Quadrature signal YB corresponds to combined signal D + E.
  • the mouse In Fig. 6, the mouse is moving to the right, as far as its horizontal motion is concerned, up until time t2.
  • the mouse has no horizontal motion between time t2 and time t3.
  • the mouse has a leftward horizontal motion after time t3. Since the pair of detector cells A and F, seen in Fig. 3, image areas lopated one-half of a line width horizontally from the areas imaged by related pair of detector cells B and G, the combined signals A + F and B + G and consequently the corresponding quadrature sig ⁇ nals XA and XB do not switch states simultaneously.
  • signal XB switches to a one state.
  • signal XA switches to the one state.
  • the signal XB leads the signal XA, thereby indicating rightward horizontal motion of the mouse relative to the surface.
  • signal XA switches to the one state.
  • signal XB switched to the one state.
  • signal XB lags the signal XA, thereby indicating leftward horizontal motion of the mouse.
  • signal XB switches to a zero state.
  • signal XB switches back to a one state without any inter- vening switch in signal XA.
  • Fig. 6 was described in terms of quadrature signals XA and XB and left and right horizontal motions. It will be easily recognized that quadrature signals YA and YB are interpreted in a similar manner to determine up and down vertical motions. Further, it will be recog ⁇ nized that where pairs of detectors are separated from related pairs by three-halves of a line width instead of one-half line width or in other situations the motion convention may be reversed. That is, signal XB leading signal XA will indicate leftward horizontal motion of the mouse, and signal XB lagging signal XA will indicate rightward horizontal motion. Similarly, the vertical motion convention may be reversed.
  • the present invention provides a compact opti ⁇ cal mouse due to the use of a three-by-three detector array. Since one detector cell in each pair of cells crosses grid lines during motion of the mouse over the grid, the system reliably determines relative motion between the mouse and the grid regardless of their rela ⁇ tive positions. Further, because the quadrature signals derived by the system are based on differentiation with respect to time of the combined detector signals instead °f the values of the detector signals themselves, the system is more strongly independent of the actual reflec ⁇ tivity of the grid lines and spaces than prior systems.

Abstract

A cursor position control system in which an optical mouse (11) having a light source (15) and three-by-three detector array (25) moves over a surface (13) having a grid pattern (16, 18) of intersecting orthogonal grid lines (37, 39) of a first color and spaces defined between the grid lines (41, 43) of a second contrasting color. The grid lines are characterized by a line width (W). Detector cells (A-G, 49, 50) are grouped into pairs of cells for detecting motion in a particular direction. Cells in a pair are separated so as to image areas an odd multiple of line widths apart in a direction orthogonal to that particular direction. Pairs of cells image areas separated in the particular direction from areas imaged by related pairs of cells by an odd multiple of half line widths. Pairs of electrical signals from pairs of cells are combined then differentiate with respect to time to produce related quadrature signals indicative of the amount and direction of movement of the mouse relative to the surface.

Description

/
Description
Detector System for Optical Mouse
Technical Field
The present invention relates to an optical mouse or cursor position control device in which move¬ ment of the device over a passive grid surface controls movement of a cursor on a visual display system, such as a computer screen. In particular, the invention relates to optical detector systems of such a mouse for interpre¬ ting the position of the mouse with respect to the grid.
Background Art
In U.S. patent 4,409,479, Sprague et al. des¬ cribe an optical mouse which moves over a grid of hori¬ zontal and vertical lines of one color with spaces be¬ tween the grid lines of another color. The mouse gene- rates four quadrature signals indicative of the amount and direction of movement of the mouse. The signals are generated by four sensors, two sensors in each of the horizontal and vertical directions. The sensors have a radiation collection area with a width which is not more than one-half of a grid period and a length which is at least as great as the grid period. The two sensors used in each direction are separated by one-quarter of the grid period, and each pair of sensors generates a pair of related quadrature signals. The phase relationship of the signal pairs indicates the direction of movement of the mouse.
In U.S. patent No. 4,546,347, Kirsch describes an electro-optical mouse having two linear arrays of detector cells at right angles to each other. The mouse moves over a surface marked with a grid of lines with three optical contrast levels, including a separate con¬ trast level for line intersections. One linear array images a line and a space in the horizontal direction. while the other array images a line and space in the vertical direction. Each array has four cells, adjacent cells being 90° out-of-phase with each other. By pairing first and third cells and second and fourth cells of each array, then subtracting the output of these, line cross¬ ings may be observed with improved ability without the need for a compensating threshold voltage.
In U.S. patent No. 4,364,035, irsch describes an electro-optical mouse which moves over a surface marked with a two color grid of lines. The mouse has a dual color light source which rapidly and continuously switches from one color to the other. The mouse also has a four-quadrant light detector positioned for receiving the light reflected from the grid. During illumination by light of one color the detector can distinguish lines only of the opposite color. Hence, as the mouse crosses lines of different color, the detectors sense changes in contrast and generates electrical signals representing the line crossings. The desired output from the detec- tors is taken from three of the four cells, two horizon- tal bits from two horizontal cells and two vertical bits from two vertical cells. By clocking emission of the two colors and the detector output signal, a position signal for a cursor may be derived. In cursor position control systems using an optical mouse moving over a grid, it is desirable that the mouse components be sufficiently compact so that the mouse fits in the palm of a hand. The system should be able to reliably determine motion of a mouse over a grid surface for every possible relative position between, the detector elements and the grid lines. Further, it is desirable that the system not be strongly dependent on the absolute reflectivity of the particular grid or on the amount of contrast between reflective and non-reflec- tive portions of the grid, so that compensation with a threshold voltage is not required. Accordingly, it is an object of the present invention to produce a cursor position control system which meets these criteria. Disclosure of the Invention
The above object has been met with a cursor position control system in which an optical mouse movable over a grid surface has a detector which is a three-by- three array of detector cells. The surface has a grid pattern thereon which is made up of two intersecting orthogonal sets of parallel grid lines and spaces defined between the grid lines. The grid lines are of a first color and the spaces are of a second contrasting color. The grid lines are uniformly spaced apart and of a uni¬ form line width. The spaces have a width which is equal to the line width. The mouse has a light source which illuminates a portion of the surface and the detector is disposed to receive and detect the light reflected from the surface.
The detector cells image areas of the grid pattern which typically have a characteristic dimension which is substantially equal to one-half of the line width. Seven of the nine detec ≠tor cells are used. The cells are grouped into pairs of cells which are located so as to image areas on the grid pattern a distance of an odd multiple of line widths apart in a direction which is orthogonal to the direction of motion which they detect. Thus, for example, a pair of cells for detecting vertical motion may be located for imaging areas one line width horizontally apart, thereby ensuring that one of the cells in the pair detects crossings of the mouse through spaces and horizontal grid lines. Alternatively, a pair of cells for detecting vertical motion may be located for imaging areas on the grid which are spaced three, five, seven or some other odd number of line widths horizontal¬ ly apart. Similarly, pairs of cells for detecting hori¬ zontal motion may be located for imaging areas one, three or other odd number of line widths vertically apart. There are two pairs of cells for detecting horizontal motion and two pairs of cells for detecting vertical motion. One pair of cells for detecting a particular direction of motion image areas that are located one-half line width, three-halves line widths or other odd mul¬ tiple of half line widths apart in that direction of motion from the areas imaged by other related pair of cells, thereby producing a distinguishable lead or lag in 5 the detection by the pairs of cells of crossings over spaces and grid lines.
The detector cells produce an electrical output signal corresponding to the amount of light they receive. The signals from each of the four pairs of cells are 0 combined and then converted to four quadrature signals of square waves. The quadrature signals switch to a first state when the combined signals are increasing with time and switch to the opposite state when the combined sig¬ nals are decreasing with time, or vice versa, thereby 5 avoiding threshold problems and the need for a reference voltage.
Brief Description of the Drawings
Fig. 1 is a perspective plan view of an optical o mouse having a detector in accord with the present inven¬ tion.
Fig. la is a plan view of an alternate grid pattern for use with the optical mouse of Fig. 1.
Fig.-'2 is a side view of the apparatus shown in 5 Fig. 1.
Fig. 3 is a plan view of the detector array for use in the optical mouse of Figs. 1 and 2.
Fig. 4 is a plan view of a portion of a grid pattern for use with the optical mouse of Fig. 1 and 0 indicating the relative size of the area observed by the detector array of Fig. 3 in relation to the grid pattern.
. Fig. 5 is a schematic electrical diagram of a logic circuit used with the detector in Fig. 3.
Fig. 6 is a timing diagram representation of 5 quadrature signal outputs of two pairs of detector cells of Fig. 3, indicative of the amount and direction of movement along a particular orthogonal coordinate axis. Fig. 7 is a plan view of a portion of a grid pattern for use with the optical mouse of Figs. 1 and 2 illustrating the relative spacing of detector cells in relation to the grid pattern. Fig. 8 is a plan view of a portion of a grid pattern indicating the relative sizes of areas observed by detector cells of an alternate detector in relation to the grid pattern.
Best Mode of Carrying Out the Invention
With reference to Figs. 1 and 2, an optical mouse 11 includes a housing 14, containing a light source 15 and a photodetector 25. The housing is gripped by a human hand and pushed in any direction on a surface 13, corresponding to the direction and extent to which it is desired to move a cursor or similar device on a visual display system, such as a computer screen. Housing 14 fits in the palm of a hand and has thin, low friction feet or spacers 31 and 33 whiςh contact surface 13 and elevate the body of the housing a slight distance above surface 13. Spacers 31 and 33 may be made, for example, of Teflon or nylon so that the housing slides easily over the surface.
Source 15 may be a light emitting diode (LED) , incandescent bulb or other broadband illumination source and may emit ultraviolet and infrared as well as visible light. Alternatively, source 15 may be a laser such as a diode laser. Source 15 is aimed downwardly at a spot 20 on surface 13. Source 15 may be mounted within a light tight supporting tube 17, as shown, or may be directly aimed at the surface. Supporting tube 17 extends angu¬ larly downward through a planar support 27 of housing 14 and is held in place therein. Preferably, source 15 is mounted close to the surface so that light arriving at the surface will be in a relatively narrow spot, with a diameter sufficient to illuminate the area viewed by detector 25. Typically, as for example with the detector in Fig. 3, the spot diameter is about 1.0 mm, sufficient to cover a grid line and space with a line width of about 0.5 mm.
Also mounted in housing 14 is a detector tube 21 having at its forward end an imaging lens 23. The 5 remainder of the tube 21 is generally light tight. Tube 21 extends angularly downward through shelf 27 so as to receive light reflected from spot 20. Lens 23 directs light reflected from spot 20 onto detector 25. Detector 25 is mounted at the rear of tube 21 and receives a 0 magnified image of a portion of surface 13 via the im¬ aging lens 23. Typically, lens 23 is spaced_ more than one focal length from the surface. The spacing between detector 25 and lens 23 is about five focal lengths. The magnification that results should be such that the area 5 being looked at by detector 25 images onto the detector. As low a magnification as possible is preferred so as to reduce optical errors. The diameter of lens 23 is approximately 3 to 8 mm, but could be more or less. If the light source 15 is sufficiently close to the surface, o °r is a laser, so that detector 25 does not detect light directly from source 15, tube 21 becomes unnecessary and may be omitted.
In Fig. 1, a partial grid pattern 16 may be seen on surface 13, with dark orthogonal lines and white 5 spaces between lines. Surface 13 has a horizontal and vertical repetitive pattern of passive, position related indicia which extends over at least a portion of the surface. Preferably, these indicia are marks of high optical contrast, such as an optically absorptive and 0 reflective pattern. Such a pattern could be a shiny metallic, white or other highly reflective surface with a grid of black lines marked on the surface. The lines are printed with ink having pigment particles with the de¬ sired optical property. Alternatively, black squares may 5 be marked on the surface, resulting in the pattern 18 seen in Fig. la having reflective grid lines with low reflectivity spaces therebetween. The grid pattern is discussed further below in greater detail with reference to Fig. 4.
The cursor position control system of the pre¬ sent invention, which comprises optical mouse 11 and surface 13 with grid pattern 16, generates electrical signals which instruct a cursor regarding movement up or down, left or right. There is no particular starting place for the mouse on the surface and it may be brought down any place on the surface, so long as there is suffi- cient room to move the mouse in a direction wherein cursor motion is desired. When placing the mouse on the surface, alignment should be such that detector 25 is appropriately oriented with respect to the grid pattern on the surface, as shown in Fig. 4. However, the mouse may be rotated up to 45 degrees in either direction from this nominal orientation without affecting the decoded signal. The typical size for housing 14 of mouse 11 is approximately 6 cm in width and approximately 8 cm in length. A preferred size for the surface would be ap- proximately 22 cm in width and approximately 30 cm in length. These dimensions are not critical and the hous¬ ing or surface may be larger or smaller as needed.
In Fig. 3, the active area of detector 25 is represented by the square 35. Detector 25 is a three-by- three array of detector cells. The cells may be transis¬ tors or diodes of a CCD areawise array. Seven of the nine detector cells, designated by the letters A, B, C, D, E, F and G, are active while the two remaining cells 49 and 50 are unused. Cells A, B, F and G are used for determining horizontal motion and cells A, C, D and E are used for determining vertical motion. The manner in which this determination is made is discussed below with reference to Figs. 5 and 6.
Fig. 4 shows a portion of the grid pattern 16 on surface 13. Grid pattern 16 is made up of two inter¬ secting orthogonal sets of grid lines, including a set of horizontal grid lines, such as lines 37 and 39, and a set of vertical grid lines, such as lines 41 and 43, and is also made up of spaces 45 defined between the grid lines. Grid lines are of a first color, while spaces are of a second color contrasting with a first color. Thus, grid lines may be reflective or white and spaces may be ab- 5 sorptive or black, or vice versa. The boundaries 47 between grid lines and spaces need not be sharply de¬ fined, although this is preferred, provided a sufficient contrast ratio exists between lines and spaces so as to be detectable. In producing the grid pattern, the entire 0 surface 13 may start as a reflective area. " Glossy white paper or mylar may be used. Colored inks or dyes may then be used to print the lines.
Typically the vertical grid lines 41 and 43 and the horizontal grid lines 37 and 39 have approximately 5 the same line width W. Each set of grid lines is made up of parallel uniformly spaced grid lines. The spaces 45 are of uniform size with a width approximately equal to the line width. Typically, the line width W is about 0.5 mm for both vertical and horizontal grid lines, o forming square spaces 0.5mm on a side. 1.0 mm or other line widths may also be used. The pattern need not form square spaces, although this is easy to handle for compu¬ tation purposes.
In Fig. 4, the dashed line 35 indicates the 5 relative area within a grid which forms the field of view and orientation of the array detector 25 illustrated in Fig. 3, relative to the grid of lines and in particular to the line width. The dashed line 35 represents the area imaged by the lens of the detector tube onto the 0 detector array, such that each detector cell is capable of resolving one-half the width of a grid line or space.
The optical mouse is moved in any direction relative to grid pattern 16. This is represented in Fig. 4 by arrows 52 in which the field of view of the detector 5 within dashed square 35 may move up or down and left or right. Since the grid lines are orthogonal, as indicated in Fig. 4 by the x-y coordinate axes, horizontal motion in this X-direction and vertical in the Y-direction are detected and measured independently. If the mouse is rotated more than 45 degrees, the axes switch (i.e., the horizontal cells sense vertical motion, and vice versa) . For horizontal motion, detector cells A and F are located so as to image areas which are one line width vertically apart. This ensures that while one cell fol¬ lows a horizontal grid line, such as line 39, the other cell is away from a horizontal grid line and detects crossings through vertical grid lines and spaces. Like- wise, detector cells B and G are located so as to image areas which are one line width vertically apart. 'The pair of cells A and F is located so as to image areas one-half of a line width horizontally apart from areas imaged by a related pair of cells B and G. This separa- tion produces a lead or lag in the detection of line crossings by one pair relative to the other related pair so that direction of.motion may be determined.
For vertical motion, detector cells A and C are located so as to image areas o,ne line width horizontally apart. Detector cells D and E are also located so as to image areas one line width horizontally apart. The pair of cells A and C is located so as to image areas one-half of a line width vertically apart from areas imaged by the pair of cells D and E. The result is that for each pair, while one cell follows a vertical grid line, the other cell of the pair detects crossings through horizontal grid lines and spaces. One pair leads the other related pair in the detection of line crossings relative to the other pair. In Fig. 4, detector cells of a pair of cells for detecting motion of the mouse in a particular direc¬ tion image areas of the grid pattern which are separated in a direction orthogonal to that particular direction by a distance of one line width W, thereby ensuring that one cell in the pair detects crossings through grid lines and spaces. However, as seen in Fig. 7, there are also other cell separations which obtain this result. A pair of detector cells A and F are located so as to detect hori- zontal motion, and, as in Fig. 4, image areas one line width apart. Cells A and Al image areas two line widths apart. During horizontal motion, cells A and Al either both detect crossings through vertical grid lines and spaces or both .follow horizontal grid lines. In the later case, neither cell A nor cell Al detects horizontal motion. Accordingly, cells A and Al and other pairs of cells which image areas separated by an even number line widths W are not suited for detecting mouse movement. Cells A and Fl image areas which are three line widths apart. As with cells A and F, one cell in the pair A and Fl is always located for detecting crossings through grid lines and spaces. This is also true for any cell pairs which image areas separated by other odd multiples of line widths W. In Fig. 7, pairs of cells B and G, B and Gl, and B2 and G2 also image areas an odd number of vertical line widths apart, and can detect horizontal mouse motion over the grid. The case for vertical motion detection is analogous. Also in Fig. 4, each pair of cells for de¬ tecting motion of the mouse in a particular direction image areas of the grid pattern which are separated in that particular direction from areas imaged by a related pair for detecting motion in the same direction by one- half of a line width, thereby producing a recognizable lead or lag in the detection of line crossings by one pair relative to the other related pair. However, as seen in Fig. 7, there are also other pair separations which obtain this lead or lag. Pair of cells A and F image areas one-half line width apart from pairs of cells B and G. During rightward motion of the mouse, pair B and G leads pair A and F by a 90° phase separation in the detection of line crossings. During leftward motion, pair B and G lags pair A and F by 90°. Accordingly, there is a recognizable difference between leftward and rightward motion, enabling the detector system to deter¬ mine the direction of motion of the mouse. Pair of cells A and F image areas three-halves line widths apart from pair of cells B2 and G2. During, rightward motion of the mouse, pair B2 and G2 lags pair A and F by a 90° phase shift in the detection of line crossings. During left¬ ward motion, pair B2 and G2 leads pair A and F by 90°. Accordingly, pairs of cells that image areas separated by three-halves of a line width produce a recognizable lead or lag that enables leftward or rightward motion of a mouse to be determined. Pairs of cells for detecting motion in a particular direction which image areas sepa- rated in that particular direction by other odd multiples of half line widths also produce this lead or lag.
Detector cells in the detector array 35 seen in Fig. 3 are substantially square and image square areas on the grid pattern in Fig. 4 which are approximately one- half of a line width on a side. However, compared to the separations between detector cells, the size and shape of detector cells are not particularly critical. An alter¬ nate detector 113, seen in Fig. 8, illustrates this point by way of example. Detector ells A, B, F and G detect horizontal motion of a mouse, the same as in Fig. 4.
Cells F and G, however, illustrate that detector cells can have any shape in which a width in the particular direction that the cells detect is at most one-half of a line width and in which a length orthogonal to the par- tiσular direction that the cells detect is in a range from one-half of a line width to one line width. Detec¬ tor cell F, for example, has a narrow width, measured in the horizontal direction, of about one-quarter of a line width and a length, measured in the vertical direction, of about one line width. Detector cells A, C, D and E detect vertical motion of a mouse. The length and width of cells C and E are analogous to that of cells F and G. Cell A for detecting both vertical and horizontal motion is constrained by the limit set forth above to be sub- stantially a square with one-half line width sides.
With reference to Fig. 5, optical signals rep¬ resenting differences in reflectivity are picked up by the detector cells and converted into corresponding elec- trical voltage signals. The electrical outputs from the detector cells are labeled A, B, C, D, E, F and G match¬ ing the corresponding cells in Fig. 3 from which they originate, and are transmitted along corresponding lines to circuits where electrical voltage addition or subtrac¬ tion occurs. For example, cells A and F transmit elec¬ trical signals along lines 71 and 72 to adding or sub¬ tracting circuit 81. Cells B and G transmit electrical signals along lines 73 and 74 to adding or subtracting circuit 83. Cells A and C transmit electrical signals along lines 75 and 76 to adding or subtracting circuit 85. Cells D and E transmit electrical signals along lines 77 and 78 to adding or subtracting circuit 87. These circuits generate combined output signals along output lines 91, 93, 95 and 97 which represent the sums, denoted by A + F, B + G, A + C and D + E, or differences of each circuit's corresponding input signal.
A differentiating circuit 100 has individual differentiators 101, 103, 105,,-and 107 connected to res- pective lines 91, 93, 95 and 97. The output of a differ¬ entiator is set to a value of one wherever the voltage of the combined electrical signal A + F, B + G, A + C or D + E being input into the differentiator is decreasing with time, i.e. has a negative time derivative. The output is reset to a value of zero wherever the voltage of the combined electrical signal being input is increasing with time, i.e. has a positive time derivative. The output value remains unchanged when there is no increase or decrease, i.e. whenever the combined signal has a zero time derivative. A constant voltage for hysteresis may be included in the combined signal to prevent random switching of output signal in the case when the combined signal being input has a zero or near zero time deriva¬ tive. Thus, the differentiating circuit 100 converts the combined electrical signals A + F, B + G, A + C and D + C being input from analog signals approximating sine waves to digital square wave signals. Differentiating circuits eliminate the need for a threshold voltage to compensate for the absolute reflectivities of the grid pattern, since it is the change in reflectivity which is repre¬ sented by the resulting quadrature signal.
The digital square wave signals output by the differentiating circuit 100 are quadrature signals desig¬ nated XA, XB, YA and YB indicative of line crossings. The quadrature signals are transmitted to the counters 111 which are commercially available and are exemplified by a computer manufactured by LISP Machine, Inc. of Cambridge, Massachusetts, or computers manufactured by Xerox Corporation and BBN of Cambridge, from many mech¬ anical mice and the present code is identical to that produced by such mice. The output from the counter 111 is then fed to a cursor which is displayed on a video display or video terminal.
In Fig. 6, combined signal A + F varies with time in voltage between a minimum voltage Vmin and a maximum voltage Vmax as a mouse moves over a surface with the grid pattern in Fig. 4. TJhe actual values of Vmin and Vmax depend on the absolute reflectivities of the lines and spaces, but are not critical since the detector system relies on the change in these voltage values rather than their actual values to determine the amount and direction of mouse movement. Combined signal B + G is similarly varied. In the present embodiment, the signal A + F is at a maximum voltage whenever both detec¬ tors A and F, seen in Fig. 3, are in position to receive reflected light from a grid line, and is at a minimum voltage whenever one of the two detectors is in position to receive light from a low reflectivity space. The signal will be between the maximum and minimum voltage while one of the detectors crosses over a boundary be¬ tween space and grid line. If, on the other hand, the grid lines have low reflectivity and the spaces have high reflectivity the role of the maximum and minimum voltages will be reversed as will the zero and one states for signals XA and XB. However, the interpretation of sig¬ nals XA and XB will be unaffected since the order in which signals XA and XB switch states at a line crossing will remain unchanged.
Quadrature signal XA corresponds to combined signal A + F and assumes a one state whenever combined signal A + F is decreasing in voltage with time, i.e. whenever the mouse moves horizontally from a grid line to a space, and assumes a zero state whenever the combined signal is increasing in voltage with time, i.e. whenever the mouse moves horizontally from a space to a grid line. Likewise quadrature signal XB corresponds to combined signal B +-G. Quadrature signal YA corresponds to com¬ bined signal A + C. Quadrature signal YB corresponds to combined signal D + E.
In Fig. 6, the mouse is moving to the right, as far as its horizontal motion is concerned, up until time t2. The mouse has no horizontal motion between time t2 and time t3. The mouse has a leftward horizontal motion after time t3. Since the pair of detector cells A and F, seen in Fig. 3, image areas lopated one-half of a line width horizontally from the areas imaged by related pair of detector cells B and G, the combined signals A + F and B + G and consequently the corresponding quadrature sig¬ nals XA and XB do not switch states simultaneously. At time to, prior to time t2 signal XB switches to a one state. At a later time tl also prior to time t2, signal XA switches to the one state. Thus, the signal XB leads the signal XA, thereby indicating rightward horizontal motion of the mouse relative to the surface. At time t4 after time t3, signal XA switches to the one state. At later time t5, signal XB switched to the one state.
Thus, signal XB lags the signal XA, thereby indicating leftward horizontal motion of the mouse. Just prior to time t2, signal XB switches to a zero state. At time t3 signal XB switches back to a one state without any inter- vening switch in signal XA.
Fig. 6 was described in terms of quadrature signals XA and XB and left and right horizontal motions. It will be easily recognized that quadrature signals YA and YB are interpreted in a similar manner to determine up and down vertical motions. Further, it will be recog¬ nized that where pairs of detectors are separated from related pairs by three-halves of a line width instead of one-half line width or in other situations the motion convention may be reversed. That is, signal XB leading signal XA will indicate leftward horizontal motion of the mouse, and signal XB lagging signal XA will indicate rightward horizontal motion. Similarly, the vertical motion convention may be reversed.
The present invention provides a compact opti¬ cal mouse due to the use of a three-by-three detector array. Since one detector cell in each pair of cells crosses grid lines during motion of the mouse over the grid, the system reliably determines relative motion between the mouse and the grid regardless of their rela¬ tive positions. Further, because the quadrature signals derived by the system are based on differentiation with respect to time of the combined detector signals instead °f the values of the detector signals themselves, the system is more strongly independent of the actual reflec¬ tivity of the grid lines and spaces than prior systems.

Claims

Claims
1. An optical position control system comprising, a surface having a grid pattern thereon with two intersecting orthogonal sets.of grid lines, said grid lines being of a first color and defining spaces there¬ between of a second contrasting color, said grid lines characterized by a line width, an optical mouse movable over said surface, said mouse having means for illuminating a portion of said grid pattern on said surface and a three-by-three detector array of detector cells disposed for imaging areas of said illuminated portion of said grid pattern, at least some of said cells being grouped into pairs of cells, each of said pairs detecting motion of said mouse in a particular direction relative to said surface, each of said cells generating an electrical signal corre¬ sponding to light reflected from said illuminated portion of said grid pattern, and means communicating with said electrical signal from each of said cells for determining an amount and direction of movement of said mouse relative to said surface.
2. The system of claim 1 wherein said means for deter¬ mining an amount and direction of movement comprises, means communicating with said cells for com¬ bining pairs of electrical signals from said pairs of cells, means communicating with said combining means for differentiating said combined signals with respect to time producing corresponding quadrature signals, each of said quadrature signals being in a first state when said corresponding combined signal has a positive time deriva¬ tive, each of said quadrature signals being in a second state when said corresponding combined signal has a nega¬ tive time derivative, each of said quadrature signals being maintained in a current state when said corre¬ sponding combined signal has a substantially zero time derivative, and means for determining a lead in each of said r quadrature signals relative to a related quadrature sig¬ nal.
3. The system of claim 1 wherein cells in each of said pairs detecting motion in a particular direction image areas of said grid pattern which are separated in a direction orthogonal to said particular direction by a distance of an odd multiple of line widths.
4. The system of claim 1 wherein each pair detecting motion in a particular direction image areas of said grid pattern which are separated in said particular direction by a distance of an odd multiple of half line widths from areas imaged by a related pair detecting motion in a same said particular direction.
5. The system of claim 1 wherein said grid lines are
6. The system of claim 1 wherein said grid lines are highly absorptive and spaces are highly reflective.
7. The system of claim 1 wherein each orthogonal set of grid lines is uniformly spaced one line width apart.
8. The system of claim 1 wherein said spaces have a characteristic dimension which is substantially equal to said line width.
9. The system of claims 1 wherein seven of said cells are grouped into pairs of cells, one of said seven cells being common to two of said pairs.
10. The system of claim 1 wherein said illuminating means is selected from the group consisting of an LED, an incandescent bulb, an infrared light source, an ultravio¬ let light source and a laser.
11. The system of claim 1 wherein each of said detector cells in a pair of detector cells for detecting motion of said mouse in a particular direction images an area on said surface with a width in said particular direction of at most one-half of a line width and with a length orthogonal to said particular direction in a range from one-half of a line width to one line width.
12. An optical position control system comprising, a surface with a grid pattern thereon, said grid pattern being made up of two intersecting orthogonal sets of uniformly spaced apart parallel grid lines of a first color and spaces defined between said grid lines, said spaces being of a second color contrasting with said first color, said grid lines and said spaces being of uniform and equal width,
an optical mouse movable over said surface, said mouse having (a) light source means for illuminating a portion of said grid pattern and (b) detector means, disposed in said mouse to receive and detect light re¬ flected from said grid pattern, for generating an elec¬ trical output signal indicative of the amount and direc¬ tion of movement of said mouse relative to said surface, wherein said detector means includes a three-by-three array of detector cells, each of said detector cells imaging areas of said grid pattern, said cells being grouped into pairs of cells for determining motion in one of two particular .directions, cells in each of said pairs imaging areas separated by a distance of an odd multiple of line widths in a direction orthogonal to said one particular direction, each pair determining motion in a particular direction imaging areas separated an odd mul¬ tiple of half line widths in said particular direction from areas imaged by another pair determining motion in said particular direction, means for combining electrical output signals from pairs of cells, combined signals being output from said combining means. means for differentiating said combined signals with respect to time, quadrature signals corresponding to said combined signals being output from said differen¬ tiating means having a zero state and a one state, said quadrature signals being in a first state when said corresponding combined signal has a positive time deriva¬ tive and being in an opposite state when said corre¬ sponding combined signal has a negative time derivative, and means for determining an amount and direction of movement from said quadrature signals.
PCT/US1987/003084 1986-11-25 1987-11-24 Detector system for optical mouse WO1988004087A1 (en)

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Cited By (2)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
EP1524590A2 (en) 2003-10-16 2005-04-20 Agilent Technologies, Inc. Tracking motion using an interference pattern
CN112051930A (en) * 2019-06-05 2020-12-08 原相科技股份有限公司 Optical detection device

Families Citing this family (45)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US4799055A (en) * 1984-04-26 1989-01-17 Symbolics Inc. Optical Mouse
GB2214635B (en) * 1988-01-14 1992-06-10 Kwang Chien Fong Optical input device
US4922236A (en) * 1988-04-25 1990-05-01 Richard Heady Fiber optical mouse
US4920260A (en) * 1988-08-30 1990-04-24 Msc Technologies, Inc. Detector system for optical mouse
US4942621A (en) * 1988-11-15 1990-07-17 Msc Technologies, Inc. Method for mapping scanned pixel data
US4984287A (en) * 1988-11-15 1991-01-08 Msc Technologies, Inc. Method for orienting a dual mouse optical scanner
JPH03249870A (en) * 1989-10-31 1991-11-07 Kuraray Co Ltd Pad for optical reader
US5086197A (en) * 1990-09-17 1992-02-04 Liou Kwang Wan Optical encoding method and device
JPH06506080A (en) * 1991-04-03 1994-07-07 ヒューレット・パッカード・カンパニー position sensing device
JPH0519982U (en) * 1991-08-27 1993-03-12 エスエムケイ株式会社 Photoelectric sensor for optical scanner
WO1994008316A1 (en) * 1992-09-30 1994-04-14 Hewlett Packard Company Initial track recovery in position-sensing systems that use windowing patterns
US5907152A (en) * 1992-10-05 1999-05-25 Logitech, Inc. Pointing device utilizing a photodetector array
US5854482A (en) * 1992-10-05 1998-12-29 Logitech, Inc. Pointing device utilizing a photodector array
US5703356A (en) * 1992-10-05 1997-12-30 Logitech, Inc. Pointing device utilizing a photodetector array
US5729009A (en) * 1992-10-05 1998-03-17 Logitech, Inc. Method for generating quasi-sinusoidal signals
US6031218A (en) * 1992-10-05 2000-02-29 Logitech, Inc. System and method for generating band-limited quasi-sinusoidal signals
US6950094B2 (en) * 1998-03-30 2005-09-27 Agilent Technologies, Inc Seeing eye mouse for a computer system
US6078312A (en) * 1997-07-09 2000-06-20 Gateway 2000, Inc. Pointing device with absolute and relative positioning capability
US20010043191A1 (en) * 1997-07-31 2001-11-22 Todd D. Lindsey Audio and video controls on a pointing device for a computer
US5994710A (en) * 1998-04-30 1999-11-30 Hewlett-Packard Company Scanning mouse for a computer system
AU2001230255A1 (en) * 2000-02-16 2001-08-27 Telefonaktiebolaget Lm Ericsson (Publ) Printer pen
US6832116B1 (en) 2000-02-16 2004-12-14 Telefonaktiebolaget L M Ericsson (Publ) Method and system for controlling an electronic utility device using an electronic reading device
US6813396B1 (en) 2000-02-16 2004-11-02 Telefonatiebolaget L.M. Ericsson (Publ) Method for sharing information between electronic reading devices
US20010033293A1 (en) * 2000-02-16 2001-10-25 Magnus Hollstrom Electronic pen help feedback and information retrieval
US6952497B1 (en) 2000-02-16 2005-10-04 Telefonaktiebolaget L M Ericsson (Publ) Method and system for electronically recording transactions and performing security function
US6839623B1 (en) * 2000-02-16 2005-01-04 Telefonaktiebolaget Lm Ericsson (Publ) Positioning applications for an electronic reading device
US6885878B1 (en) 2000-02-16 2005-04-26 Telefonaktiebolaget L M Ericsson (Publ) Method and system for using an electronic reading device as a general application input and navigation interface
US6529184B1 (en) 2000-03-22 2003-03-04 Microsoft Corporation Ball pattern architecture
US7321359B2 (en) * 2003-07-30 2008-01-22 Avago Technologies Ecbu Ip (Singapore) Pte. Ltd. Method and device for optical navigation
US20040227954A1 (en) * 2003-05-16 2004-11-18 Tong Xie Interferometer based navigation device
TWI259980B (en) * 2003-09-01 2006-08-11 Primax Electronics Ltd Method and apparatus for real-time determining compatibility of an optical mouse with respect to a working surface
US20050135659A1 (en) * 2003-12-19 2005-06-23 Smith John D. Optical motion sensor
US7773070B2 (en) 2004-05-21 2010-08-10 Cypress Semiconductor Corporation Optical positioning device using telecentric imaging
US7268341B2 (en) * 2004-05-21 2007-09-11 Silicon Light Machines Corporation Optical position sensing device including interlaced groups of photosensitive elements
US20060158424A1 (en) * 2005-01-19 2006-07-20 Tong Xie Optical slide pad
US7399954B2 (en) * 2005-08-16 2008-07-15 Avago Technologies Ecbu Ip Pte Ltd System and method for an optical navigation device configured to generate navigation information through an optically transparent layer and to have skating functionality
US7765251B2 (en) * 2005-12-16 2010-07-27 Cypress Semiconductor Corporation Signal averaging circuit and method for sample averaging
US7737948B2 (en) * 2005-12-20 2010-06-15 Cypress Semiconductor Corporation Speckle navigation system
US7721609B2 (en) 2006-03-31 2010-05-25 Cypress Semiconductor Corporation Method and apparatus for sensing the force with which a button is pressed
US7728816B2 (en) * 2006-07-10 2010-06-01 Cypress Semiconductor Corporation Optical navigation sensor with variable tracking resolution
US7742514B1 (en) 2006-10-31 2010-06-22 Cypress Semiconductor Corporation Laser navigation sensor
US8541727B1 (en) 2008-09-30 2013-09-24 Cypress Semiconductor Corporation Signal monitoring and control system for an optical navigation sensor
US7723659B1 (en) 2008-10-10 2010-05-25 Cypress Semiconductor Corporation System and method for screening semiconductor lasers
US8711096B1 (en) 2009-03-27 2014-04-29 Cypress Semiconductor Corporation Dual protocol input device
US11768281B2 (en) 2020-02-28 2023-09-26 Continental Autonomous Mobility US, LLC Vehicle component with image sensor aimed at fiducial marker

Citations (5)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US4364035A (en) * 1981-05-18 1982-12-14 Kirsch Steven T Electro-optical mouse
US4390873A (en) * 1981-05-18 1983-06-28 Kirsch Steven T Electronic mouse
US4409479A (en) * 1981-12-03 1983-10-11 Xerox Corporation Optical cursor control device
US4521772A (en) * 1981-08-28 1985-06-04 Xerox Corporation Cursor control device
US4546347A (en) * 1981-05-18 1985-10-08 Mouse Systems Corporation Detector for electro-optical mouse

Patent Citations (5)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US4364035A (en) * 1981-05-18 1982-12-14 Kirsch Steven T Electro-optical mouse
US4390873A (en) * 1981-05-18 1983-06-28 Kirsch Steven T Electronic mouse
US4546347A (en) * 1981-05-18 1985-10-08 Mouse Systems Corporation Detector for electro-optical mouse
US4521772A (en) * 1981-08-28 1985-06-04 Xerox Corporation Cursor control device
US4409479A (en) * 1981-12-03 1983-10-11 Xerox Corporation Optical cursor control device

Cited By (5)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
EP1524590A2 (en) 2003-10-16 2005-04-20 Agilent Technologies, Inc. Tracking motion using an interference pattern
EP1524590A3 (en) * 2003-10-16 2007-08-08 Avago Technologies ECBU IP (Singapore) Pte. Ltd. Tracking motion using an interference pattern
US7737947B2 (en) 2003-10-16 2010-06-15 Avago Technologies Ecbu Ip (Singapore) Pte. Ltd. Tracking motion using an interference pattern
CN112051930A (en) * 2019-06-05 2020-12-08 原相科技股份有限公司 Optical detection device
CN112051930B (en) * 2019-06-05 2024-01-12 原相科技股份有限公司 Optical detection device

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AU593710B2 (en) 1990-02-15
EP0323980A4 (en) 1990-07-03
JP2526114B2 (en) 1996-08-21
EP0323980A1 (en) 1989-07-19
US4751380A (en) 1988-06-14
DE3789508T2 (en) 1994-07-14
AU1040488A (en) 1988-06-16
DE3789508D1 (en) 1994-05-05
JPH02502316A (en) 1990-07-26
EP0323980B1 (en) 1994-03-30

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