WO2005040991A2 - User interface devices and methods employing accelerometers - Google Patents

User interface devices and methods employing accelerometers Download PDF

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Publication number
WO2005040991A2
WO2005040991A2 PCT/US2004/035369 US2004035369W WO2005040991A2 WO 2005040991 A2 WO2005040991 A2 WO 2005040991A2 US 2004035369 W US2004035369 W US 2004035369W WO 2005040991 A2 WO2005040991 A2 WO 2005040991A2
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WO
WIPO (PCT)
Prior art keywords
user interface
interface device
free space
pointing device
space pointing
Prior art date
Application number
PCT/US2004/035369
Other languages
French (fr)
Other versions
WO2005040991A3 (en
Inventor
Matthew G. Liberty
Daniel S. Simpkins
Original Assignee
Hillcrest Laboratories, Inc.
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 Hillcrest Laboratories, Inc. filed Critical Hillcrest Laboratories, Inc.
Priority to EP04796360A priority Critical patent/EP1678585A4/en
Priority to JP2006536917A priority patent/JP2007509448A/en
Publication of WO2005040991A2 publication Critical patent/WO2005040991A2/en
Publication of WO2005040991A3 publication Critical patent/WO2005040991A3/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
    • G06F3/017Gesture based interaction, e.g. based on a set of recognized hand gestures
    • GPHYSICS
    • G09EDUCATION; CRYPTOGRAPHY; DISPLAY; ADVERTISING; SEALS
    • G09GARRANGEMENTS OR CIRCUITS FOR CONTROL OF INDICATING DEVICES USING STATIC MEANS TO PRESENT VARIABLE INFORMATION
    • G09G5/00Control arrangements or circuits for visual indicators common to cathode-ray tube indicators and other visual indicators
    • 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
    • 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
    • G06F3/033Pointing devices displaced or positioned by the user, e.g. mice, trackballs, pens or joysticks; Accessories therefor
    • G06F3/0346Pointing devices displaced or positioned by the user, e.g. mice, trackballs, pens or joysticks; Accessories therefor with detection of the device orientation or free movement in a 3D space, e.g. 3D mice, 6-DOF [six degrees of freedom] pointers using gyroscopes, accelerometers or tilt-sensors
    • 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
    • G06F3/048Interaction techniques based on graphical user interfaces [GUI]
    • G06F3/0487Interaction techniques based on graphical user interfaces [GUI] using specific features provided by the input device, e.g. functions controlled by the rotation of a mouse with dual sensing arrangements, or of the nature of the input device, e.g. tap gestures based on pressure sensed by a digitiser
    • G06F3/0488Interaction techniques based on graphical user interfaces [GUI] using specific features provided by the input device, e.g. functions controlled by the rotation of a mouse with dual sensing arrangements, or of the nature of the input device, e.g. tap gestures based on pressure sensed by a digitiser using a touch-screen or digitiser, e.g. input of commands through traced gestures
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04NPICTORIAL COMMUNICATION, e.g. TELEVISION
    • H04N21/00Selective content distribution, e.g. interactive television or video on demand [VOD]
    • H04N21/40Client devices specifically adapted for the reception of or interaction with content, e.g. set-top-box [STB]; Operations thereof
    • H04N21/41Structure of client; Structure of client peripherals
    • H04N21/422Input-only peripherals, i.e. input devices connected to specially adapted client devices, e.g. global positioning system [GPS]
    • H04N21/42204User interfaces specially adapted for controlling a client device through a remote control device; Remote control devices therefor
    • H04N21/42206User interfaces specially adapted for controlling a client device through a remote control device; Remote control devices therefor characterized by hardware details
    • H04N21/42222Additional components integrated in the remote control device, e.g. timer, speaker, sensors for detecting position, direction or movement of the remote control, microphone or battery charging device

Definitions

  • This application is also related to, and claims priority from, U.S. Provisional Patent Application Serial No. 60/566,444 filed on April 30, 2004, entitled “Freespace Pointing Device”, the disclosure of which is incorporated here by reference.
  • this application is related to, and claims priority from, U.S. Provisional Patent Application Serial No. 60/612,571 September 23, 2004, entitled “Free Space Pointing Devices and Methods", the disclosure of which is incorporated here by reference.
  • the present invention describes free space pointing devices usable in a number of different applications including, for example, a framework for organizing, selecting and launching media items.
  • buttons on these universal remote units was typically more than the number of buttons on either the TV remote unit or VCR remote unit individually. This added number of buttons and functionality makes it very difficult to control anything but the simplest aspects of a TV or VCR without hunting for exactly the right button on the remote. Many times, these universal remotes do not provide enough buttons to access many levels of control or features unique to certain TVs. In these cases, the original device remote unit is still needed, and the original hassle of handling multiple remotes remains due to user interface issues arising from the complexity of aggregation. Some remote units have addressed this problem by adding "soft" buttons that can be programmed with the expert commands.
  • buttons sometimes have accompanying LCD displays to indicate their action. These too have the flaw that they are difficult to use without looking away from the TV to the remote control. Yet another flaw in these remote units is the use of modes in an attempt to reduce the number of buttons.
  • moded a special button exists to select whether the remote should communicate with the TV, DVD player, cable set-top box, VCR, etc. This causes many usability issues including sending commands to the wrong device, forcing the user to look at the remote to make sure that it is in the right mode, and it does not provide any simplification to the integration of multiple devices.
  • the most advanced of these universal remote units provide some integration by allowing the user to program sequences of commands to multiple devices into the remote. This is such a difficult task that many users hire professional installers to program their universal remote units.
  • remote devices usable to interact with such frameworks, as well as other applications and systems.
  • various different types of remote devices can be used with such frameworks including, for example, trackballs, "mouse”-type pointing devices, light pens, etc.
  • free space pointing devices another category of remote devices which can be used with such frameworks (and other applications) is free space pointing devices.
  • free space pointing is used in this specification to refer to the ability of an input device to move in three (or more) dimensions in the air in front of, e.g., a display screen, and the corresponding ability of the user interface to translate those motions directly into user interface commands, e.g., movement of a cursor on the display screen.
  • free space pointing differs from, e.g., conventional computer mouse pointing techniques which use a surface, e.g., a desk surface or mousepad, as a proxy surface from which relative movement of the mouse is translated into cursor movement on the computer display screen.
  • a free space pointing device can be found in U.S. Patent No. 5,440,326.
  • the '326 patent describes, among other things, a vertical gyroscope adapted for use as a pointing device for controlling the position of a cursor on the display of a computer.
  • a motor at the core of the gyroscope is suspended by two pairs of orthogonal gimbals from a hand-held controller device and nominally oriented with its spin axis vertical by a pendulous device.
  • Electro-optical shaft angle encoders sense the orientation of a handheld controller device as it is manipulated by a user and the resulting electrical output is converted into a format usable by a computer to control the movement of a cursor on the screen of the computer display.
  • a free space pointing device includes a plurality of accelerometers.
  • a handheld, user interface device includes a plurality of accelerometers, each of which provide acceleration data associated with movement of the device, a processing unit for transforming the acceleration data into data from which two dimensional cursor movement data can be generated, wherein the processing unit further processes the acceleration data to determine when the handheld, user interface device is stationary and recalibrates the handheld, user interface device when the handheld, user interface device is stationary.
  • FIG. 1 depicts a conventional remote control unit for an entertainment system
  • FIG. 2 depicts an exemplary media system in which exemplary embodiments of the present invention can be implemented
  • FIG. 3 shows a free space pointing device according to an exemplary embodiment of the present invention
  • FIG. 4 illustrates a cutaway view of the free space pointing device in FIG. 4 including two rotational sensors and one accelerometer;
  • FIG. 5 is a block diagram illustrating processing of data associated with free space pointing devices according to an exemplary embodiment of the present invention.
  • FIGS. 6(a) -6(d) illustrate the effects of tilt;
  • FIG. 7 depicts a hardware architecture of a free space pointing device according to an exemplary embodiment of the present invention.
  • FIG. 8 is a state diagram depicting a stationary detection mechanism according to an exemplary embodiment of the present invention.
  • FIG. 9 illustrates six degrees of freedom associated with another exemplary embodiment of the present invention.
  • FIG. 10 depicts an algorithm for processing acceleration data according to another exemplary embodiment of the present invention.
  • FIG. 11 depicts a hardware architecture of a free space pointing device according to the exemplary embodiment of FIG. 10;
  • FIG. 12 depicts a software architecture of a free space pointing device according to the exemplary embodiment of FIG. 10.
  • FIG. 13 shows the exemplary embodiment of FIGS. 9 and 10 from an algorithmic perspective.
  • an exemplary aggregated media system 200 in which the present invention can be implemented will first be described with respect to Figure 2. Those skilled in the art will appreciate, however, that the present invention is not restricted to implementation in this type of media system and that more or fewer components can be included therein.
  • an input/output (I/O) bus 210 connects the system components in the media system 200 together.
  • the I/O bus 210 represents any of a number of different of mechanisms and techniques for routing signals between the media system components.
  • the I/O bus 210 may include an appropriate number of independent audio "patch" cables that route audio signals, coaxial cables that route video signals, two-wire serial lines or infrared or radio frequency transceivers that route control signals, optical fiber or any other routing mechanisms that route other types of signals.
  • the media system 200 includes a television/monitor 212, a video cassette recorder (VCR) 214, digital video disk (DVD) recorder/playback device 216, audio/video tuner 218 and compact disk player 220 coupled to the I/O bus 210.
  • VCR 214, DVD 216 and compact disk player 220 may be single disk or single cassette devices, or alternatively may be multiple disk or multiple cassette devices.
  • the media system 200 includes a microphone/speaker system 222, video camera 224 and a wireless I/O control device 226.
  • the wireless I/O control device 226 is a free space pointing device according to one of the exemplary embodiments described below.
  • the wireless I/O control device 226 can communicate with the entertainment system 200 using, e.g., an IR or RF transmitter or transceiver. Alternatively, the I/O control device can be connected to the entertainment system 200 via a wire.
  • the entertainment system 200 also includes a system controller 228.
  • the system controller 228 operates to store and display entertainment system data available from a plurality of entertainment system data sources and to control a wide variety of features associated with each of the system components.
  • system controller 228 is coupled, either directly or indirectly, to each of the system components, as necessary, through I/O bus 210.
  • system controller 228 in addition to or in place of I/O bus 210, system controller 228 is configured with a wireless communication transmitter (or transceiver), which is capable of communicating with the system components via IR signals or RF signals. Regardless of the control medium, the system controller 228 is configured to control the media components of the media system 200 via a graphical user interface described below.
  • media system 200 may be configured to receive media items from various media sources and service providers.
  • media system 200 receives media input from and, optionally, sends information to, any or all of the following sources: cable broadcast 230, satellite broadcast 232 (e.g., via a satellite dish), very high frequency (VHF) or ultra high frequency (UHF) radio frequency communication of the broadcast television networks 234 (e.g., via an aerial antenna), telephone network 236 and cable modem 238 (or another source of Internet content).
  • VHF very high frequency
  • UHF ultra high frequency
  • AM/FM radio AM/FM radio
  • satellite radio satellite radio
  • remote devices in accordance with the present invention can be used in conjunction with other systems, for example computer systems including, e.g., a display, a processor and a memory system or with various other systems and applications.
  • remote devices which operate as free space pointers are of particular interest for the present specification. Such devices enable the translation of movement, e.g., gestures, into commands to a user interface.
  • An exemplary free space pointing device 400 is depicted in Figure 3.
  • user movement of the free space pointing can be defined, for example, in terms of a combination of x-axis attitude (roll), y-axis elevation (pitch) and/or z-axis heading (yaw) motion of the free space pointing device 400.
  • some exemplary embodiments of the present invention can also measure linear movement of the free space pointing device 400 along the x, y, and z axes to generate cursor movement or other user interface commands.
  • the free space pointing device 400 includes two buttons 402 and 404 as well as a scroll wheel 406, although other exemplary embodiments will include other physical configurations. According to exemplary embodiments of the present invention, it is anticipated that free space pointing devices 400 will be held by a user in front of a display 408 and that motion of the free space pointing device 400 will be translated by the free space pointing device into output which is usable to interact with the information displayed on display 408, e.g., to move the cursor 410 on the display 408.
  • rotation of the free space pointing device 400 about the y-axis can be sensed by the free space pointing device 400 and translated into an output usable by the system to move cursor 410 along the y axis of the display 408.
  • rotation of the free space pointing device 408 about the z- axis can be sensed by the free space pointing device 400 and translated into an output usable by the system to move cursor 410 along the x 2 axis of the display 408.
  • the output of free space pointing device 400 can be used to interact with the display 408 in a number of ways other than (or in addition to) cursor movement, for example it can control cursor fading, volume or media transport (play, pause, fast-forward and rewind).
  • Input commands may include operations in addition to cursor movement, for example, a zoom in or zoom out on a particular region of a display. A cursor may or may not be visible.
  • rotation of the free space pointing device 400 sensed about the x-axis of free space pointing device 400 can be used in addition to, or as an alternative to, y-axis and/or z-axis rotation to provide input to a user interface.
  • two rotational sensors 502 and 504 and one accelerometer 506 can be employed as sensors in free space pointing device 400 as shown in Figure 4.
  • the rotational sensors 502 and 504 can, for example, be implemented using ADXRS150 sensors made by Analog Devices. It will be appreciated by those skilled in the art that other types of rotational sensors can be employed as rotational sensors 502 and 504 and that the ADXRS150 is purely used as an illustrative example. Unlike traditional gyroscopes, the ADXRS150 rotational sensors use MEMS technology to provide a resonating mass which is attached to a frame so that it can resonate only along one direction.
  • the resonating mass is displaced when the body to which the sensor is affixed is rotated around the sensor's sensing axis. This displacement can be measured using the Coriolis acceleration effect to determine an angular velocity associated with rotation along the sensing axis. If the rotational sensors 502 and 504 have a single sensing axis (as for example the ADXRS150s), then they can be mounted in the free space pointing device 400 such that their sensing axes are aligned with the rotations to be measured.
  • rotational sensor 502 is mounted such that its sensing axis is parallel to the y-axis and that rotational sensor 504 is mounted such that its sensing axis is parallel to the z-axis as shown in Figure 4.
  • aligning the sensing axes of the rotational sensors 502 and 504 parallel to the desired measurement axes is not required since exemplary embodiments of the present invention also provide techniques for compensating for offset between axes.
  • the 400 in accordance with the present invention is to employ components, e.g., rotational sensors 500 and 502, which are not too costly, while at the same time providing a high degree of correlation between movement of the free space pointing device 400, a user's expectation regarding how the user interface will react to that particular movement of the free space pointing device and actual user interface performance in response to that movement. For example, if the free space pointing device 400 is not moving, the user will likely expect that the cursor ought not to be drifting across the screen. Likewise, if the user rotates the free space pointing device 400 purely around the y-axis, she or he would likely not expect to see the resulting cursor movement on display 408 contain any significant x 2 axis component.
  • components e.g., rotational sensors 500 and 502
  • various measurements and calculations are performed by the handheld device 400 which are used to adjust the outputs of one or more of the sensors 502, 504 and 506 and/or as part of the input used by a processor to determine an appropriate output for the user interface based on the outputs of the sensors 502, 504 and 506.
  • a process model 600 which describes the general operation of free space pointing devices according to exemplary embodiments of the present invention is illustrated in Figure 5.
  • the rotational sensors 502 and 504, as well as the accelerometer 506, produce analog signals which are sampled periodically, e.g., 200 samples/second.
  • a set of these inputs shall be referred to using the notation (x, y, z, ⁇ y, ⁇ z), wherein x, y, z are the sampled output values of the exemplary three-axis accelerometer 506 which are associated with acceleration of the free space pointing device in the x-axis, y-axis and z-axis directions, respectively, ⁇ y is a the sampled output value from rotational sensor 502 associated with the rotation of the free space pointing device about the y-axis and ⁇ z is the sampled output value from rotational sensor 504 associated with rotation of the free space pointing device 400 about the z-axis.
  • the output from the accelerometer 506 is provided and, if the accelerometer
  • the acceleration calibration block 606 provides the values used for the conversion function 604.
  • This calibration of the accelerometer output 602 can include, for example, compensation for one or more of scale, offset and axis misalignment error associated with the accelerometer 506.
  • the exemplary accelerometer 506 has an exemplary full range of +/- 2g.
  • Sensor offset, P refers to the sensor output, M, for an accelerometer measurement of Og.
  • Scale refers to the conversion factor between the sampled unit value and g.
  • the actual scale of any given accelerometer sensor may deviate from these nominal scale values due to, e.g., manufacturing variances. Accordingly the scale factor in the equations above will be proportional to this deviation.
  • Accelerometer 506 scale and offset deviations can be measured by, for example, applying lg of force along one an axis and measuring the result, Rl. Then a -lg force is applied resulting in measurement R2.
  • Cross-axes effects include non-aligned axes, e.g., wherein one or more of the sensing axes of the accelerometer 506 as it is mounted in the free space pointing device 400 are not aligned with the corresponding axis in the inertial frame of reference, or mechanical errors associated with the machining of the accelerometer 506 itself, e.g., wherein even though the axes are properly aligned, a purely y-axis acceleration force may result in a sensor reading along the z-axis of the accelerometer 506. Both of these effects can also be measured and added to the calibration performed by function 606.
  • the accelerometer 506 serves several purposes in exemplary free space pointing devices according to exemplary embodiments of the present invention. For example, if rotational sensors 502 and 504 are implemented using the exemplary Coriolis effect rotational sensors described above, then the output of the rotational sensors 502 and 504 will vary based on the linear acceleration experienced by each rotational sensor. Thus, one exemplary use of the accelerometer 506 is to compensate for fluctuations in the readings generated by the rotational sensors 502 and 504 which are caused by variances in linear acceleration. This can be accomplished by multiplying the converted accelerometer readings by a gain matrix 610 and subtracting (or adding) the results from (or to) the corresponding sampled rotational sensor data 612.
  • linear acceleration compensation for the sampled rotational data ⁇ z from rotational sensor 504 can be provided at block 614.
  • the gain matrices, C vary between rotational sensors due to manufacturing differences. C may be computed using the average value for many rotational sensors, or it may be custom computed for each rotational sensor.
  • the sampled rotational data 612 is then converted from a sampled unit value into a value associated with a rate of angular rotation, e.g., radians/s, at function 616.
  • This conversion step can also include calibration provided by function 618 to compensate the sampled rotational data for, e.g., scale and offset.
  • ⁇ rad/s ( ⁇ ' - offset(T)) * scale + dOffset (5)
  • ⁇ ' refers to the value being converted/calibrated
  • offset(T) refers to an offset value associated with temperature
  • scale refers to the conversion factor between the sampled unit value and rad/s
  • dOffset refers to a dynamic offset value.
  • Equation (5) may be implemented as a matrix equation in which case all variables are vectors except for scale. In matrix equation form, scale corrects for axis misalignment and rotational offset factors. Each of these variables is discussed in more detail below.
  • the offset values offset(T) and dOffset can be determined in a number of different ways.
  • the sensor 502 should output its offset value.
  • the offset can be highly affected by temperature, so this offset value will likely vary.
  • Offset temperature calibration may be performed at the factorv. in whiV.h rase the value(s) for offset(T) can be preprogrammed into the handheld device 400 or, alternatively, offset temperature calibration may also be learned dynamically during the lifetime of the device.
  • an input from a temperature sensor 619 is used in rotation calibration function 618 to compute the current value for offset(T).
  • the offset(T) parameter removes the majority of offset bias from the sensor readings. However, negating nearly all cursor drift at zero movement can be useful for producing a high-performance pointing device. Therefore, the additional factor dOffset, can be computed dynamically while the free space pointing device 400 is in use.
  • the stationary detection function 608 determines when the handheld is most likely stationary and when the offset should be recomputed. Exemplary techniques for implementing stationary detection function 608, as well as other uses therefore, are described below.
  • An exemplary implementation of dOffset computation employs calibrated sensor outputs which are low-pass filtered.
  • the stationary output detection function 608 provides an indication to rotation calibration function 618 to trigger computation of, for example, the mean of the low-pass filter output.
  • the stationary output detection function 608 can also control when the newly computed mean is factored into the existing value for dOffset.
  • a multitude of different techniques can be used for computing the new value for dOffset from the existing value of dOffset and the new mean including, but not limited to, simple averaging, low-pass filtering and Kalman filtering.
  • numerous variations for offset compensation of the rotational sensors 502 and 504 can be employed.
  • the offset(T) function can have a constant value (e.g., invariant with temperature), more than two offset compensation values can be used and/or only a single offset value can be computed/used for offset compensation.
  • the inputs from the rotational sensors 502 and 504 can be further processed to rotate those inputs into an inertial frame of reference, i.e., to compensate for tilt associated with the manner in which the user is holding the free space pointing device 400, at function 620.
  • Tilt correction is another significant aspect of some exemplary embodiments of the present invention as it is intended to compensate for differences in usage patterns of free space pointing devices according to the present invention. More specifically, tilt correction according to exemplary embodiments of the present invention is intended to compensate for the fact that users will hold pointing devices in their hands at different x-axis rotational positions, but that the sensing axes of the rotational sensors 502 and 504 in the free space pointing devices 400 are fixed.
  • cursor translation across display 408 is substantially insensitive to the way in which the user grips the free space pointing device 400, e.g., rotating the free space pointing device 400 back and forth in a manner generally corresponding to the horizontal dimension (x 2 -axis) of the display 508 should result in cursor translation along the x 2 -axis, while rotating the free space pointing device up and down in a manner generally corresponding to the vertical dimension (y 2 -axis) of the display 508 should result in cursor translation along the y -axis, regardless of the orientation in which the user is holding the free space pointing device 400.
  • the user is holding free space pointing device 400 in an exemplary inertial frame of reference, which can be defined as having an x-axis rotational value of 0 degrees.
  • the inertial frame of reference can, purely as an example, correspond to the orientation illustrated in Figure 6(a) or it can be defined as any other orientation.
  • Rotation of the free space pointing device 400 in either the y-axis or z-axis directions will be sensed by rotational sensors 502 and 504, respectively.
  • the cursor 410 will instead be translated in both the x 2 -axis direction and the y 2 -axis direction by as shown in Figure 6(d).
  • the sensing axis of rotational sensor 502 is now oriented between the y-axis and the z-axis (because of the orientation of the device in the user's hand).
  • the sensing axis of the rotational sensor 504 is also oriented between the y-axis and the z-axis (although in a different quadrant).
  • tilt compensation In order to provide an interface which is transparent to the user in terms of how the free space pointing device 400 is held, tilt compensation according to exemplary embodiments of the present invention translates the readings output from rotational sensors 502 and 504 back into the inertial frame of reference as part of processing the readings from these sensors into information indicative of rotational motion of the free space pointing device 400. [0046] According to exemplary embodiments of the present invention, returning to
  • this can be accomplished by determining the tilt of the free space pointing device 400 using the inputs y and z received from accelerometer 506 at function 622. More specifically, after the acceleration data is converted and calibrated as described above, it can be low pass filtered at LPF 624 to provide an average acceleration (gravity) value to the tilt determination function 622. Then, tilt ⁇ can be calculated in function 622 as:
  • the value ⁇ can be numerically computed as atan2(y,z) to prevent division by zero and give the correct sign.
  • function 620 can perform the rotation R of the converted/calibrated inputs ⁇ y and ⁇ z using the equation:
  • post-processing can be performed at blocks 626 and 628.
  • Exemplary post-processing can include compensation for various factors such as human tremor. Although tremor may be removed using several different methods, one way to remove tremor is by using hysteresis.
  • the angular velocity produced by rotation function 620 is integrated to produce an angular position. Hysteresis of a calibrated magnitude is then applied to the angular position.
  • the derivative is taken of the output of the hysteresis block to again yield an angular velocity.
  • the resulting output is then scaled at function 628 (e.g., based on the sampling period) and used to generate a result within the interface, e.g., movement of a cursor 410 on a display 408.
  • FIG. 7 illustrates an exemplary hardware architecture.
  • a processor 800 communicates with other elements of the free space pointing device including a scroll wheel 802, JTAG 804, LEDs 806, switch matrix 808, IR photodetector 810, rotational sensors 812, accelerometer 814 and transceiver 816.
  • the scroll wheel 802 is an optional input component which enables a user to provide input to the interface by rotating the scroll wheel 802 clockwise or counterclockwise.
  • JTAG 804 provides the programming and debugging interface to the processor.
  • LEDs 806 provide visual feedback to a user, for example, when a button is pressed.
  • Switch matrix 808 receives inputs, e.g., indications that a button on the free space pointing device 400 has been depressed or released, that are then passed on to processor 800.
  • the optional IR photodetector 810 can be provided to enable the exemplary free space pointing device to learn IR codes from other remote controls.
  • Rotational sensors 812 provide readings to processor 800 regarding, e.g., the y-axis and z-axis rotation of the free space pointing device as described above.
  • Accelerometer 814 provides readings to processor 800 regarding the linear acceleration of the free space pointing device 400 which can be used as described above, e.g., to perform tilt compensation and to compensate for errors which linear acceleration introduces into the rotational readings generated by rotational sensors 812.
  • Transceiver 816 is used to communicate information to and from free space pointing device 400, e.g., to the system controller 228 or to a processor associated with a computer.
  • the transceiver 816 can be a wireless transceiver, e.g., operating in accordance with the Bluetooth standards for short-range wireless communication or an infrared transceiver.
  • free space pointing device 400 can communicate with systems via a wireline connection.
  • Stationary detection function 608 mentioned briefly above, can operate to determine whether the free space pointing device 400 is, for example, either stationary or active (moving). This categorization can be performed in a number of different ways.
  • One way is to compute the variance of the sampled input data of all inputs (x, y, z, ⁇ y, ⁇ z) over a predetermined window, e.g., every quarter of a second. This variance is then compared with a threshold to classify the free space pointing device as either stationary or active.
  • Another stationary detection technique involves transforming the inputs into the frequency domain by, e.g., performing a Fast Fourier Transform (FFT) on the input data. Then, the data can be analyzed using, e.g., peak detection methods, to determine if the free space pointing device 400 is either stationary or active.
  • FFT Fast Fourier Transform
  • a third category can be distinguished, specifically the case where a user is holding the free space pointing device 400 but is not moving it (also referred to herein as the "stable" state.
  • This third category can be distinguished from stationary (not held) and active by detecting the small movement of the free space pointing device 400 introduced by a user's hand tremor when the free space pointing device 400 is being held by a user. Peak detection can also be used by stationary detection function 608 to make this determination.
  • stationary detection mechanism 608 can include a state machine.
  • the ACTIVE state is, in this example, the default state during which the free space pointing device 400 is moving and being used to, e.g., provide inputs to a user interface.
  • the free space pointing device 400 can enter the ACTIVE state on power-up of the device as indicated by the reset input. If the free space pointing device 400 stops moving, it may then enter the INACTIVE state.
  • the various state transitions illustrated in Figure 12 can be triggered by any of a number of different criteria including, but not limited to, data output from one or both of the rotational sensors 502 and 504, data output from the accelerometer 506, time domain data, frequency domain data or any combination thereof.
  • State transition conditions will be generically referred to herein using the convention •
  • the free space pointing device 400 will transition from the ACTIVE state to the INACTIVE state when occurs.
  • the free space pointing device 400 will transition from the ACTIVE state to the INACTIVE state when occurs.
  • the free space pointing device 400 will transition from the ACTIVE state to the INACTIVE state when occurs.
  • mean and/or standard deviation values from both the rotational sensor(s) and the accelerometer fall below first predetermined threshold values for a first predetermined time period.
  • State transitions can be determined by a number of different conditions based upon the interpreted sensor outputs.
  • Exemplary condition metrics include the variance of the interpreted signals over a time window, the threshold between a reference value and the interpreted signal over a time window, the threshold between a reference value and the filtered interpreted signal over a time window, and the threshold between a reference value and the interpreted signal from a start time can be used to determine state transitions. All, or any combination, of these condition metrics can be used to trigger state transitions. Alternatively, other metrics can also be used.
  • a transition from the INACTIVE state to the ACTIVE state occurs either when (1) a mean value of sensor output(s) over a time window is greater than predetermined threshold(s) or (2) a variance of values of sensor output(s) over a time window is greater than predetermined threshold(s) or (3) an instantaneous delta between sensor values is greater than a predetermined threshold.
  • the INACTIVE state enables the stationary detection mechanism 608 to distinguish between brief pauses during which the free space pointing device 400 is still being used, e.g., on the order of a tenth of a second, and an actual transition to either a stable or stationary condition. This protects against the functions which are performed during the STABLE and STATIONARY states, described below, from inadvertently being performed when the free space pointing device is being used.
  • the free space pointing device 400 will transition back to the ACTIVE state when condition ⁇ nac t ⁇ ve ⁇ act ⁇ ve occurs, e.g., if the free space pointing device 400 starts moving again such that the measured outputs from the rotational sensor(s) and the accelerometer exceeds the first threshold before a second predetermined time period in the INACTIVE state elapses.
  • the free space pointing device 400 will transition to either the STABLE state or the STATIONARY state after the second predetermined time period elapses.
  • the STABLE state reflects the characterization of the free space pointing device 400 as being held by a person but being substantially unmoving
  • the STATIONARY state reflects a characterization of the free space pointing device as not being held by a person.
  • an exemplary state machine can provide for a transition to the STABLE state after the second predetermined time period has elapsed if minimal movement associated with hand tremor is present or, otherwise, transition to the STATIONARY state.
  • the STABLE and STATIONARY states define times during which the free space pointing device 400 can perform various functions. For example, since the STABLE state is intended to reflect times when the user is holding the free space pointing device 400 but is not moving it, the device can record the movement of the free space pointing device 400 when it is in the STABLE state e.g., by storing outputs from the rotational sensor(s) and/or the accelerometer while in this state. These stored measurements can be used to determine a tremor pattern associated with a particular user or users as described below. Likewise, when in the STATIONARY state, the free space pointing device 400 can take readings from the rotational sensors and/or the accelerometer for use in compensating for offset as described above.
  • the device can transition to the SLEEP state. While in the sleep state, the device can enter a power down mode wherein power consumption of the free space pointing device is reduced and, e.g., the sampling rate of the rotational sensors and/or the accelerometer is also reduced.
  • the SLEEP state can also be entered via an external command so that the user or another device can command the free space pointing device 400 to enter the SLEEP state.
  • the device can transition from the SLEEP state to the WAKEUP state.
  • the WAKEUP state provides an opportunity for the device to confirm that a transition to the ACTIVE state is justified, e.g., that the free space pointing device 400 was not inadvertently jostled.
  • the conditions for state transitions may be symmetrical or may differ.
  • the threshold associated with the may be the same as (or different from) the threshold(s) associated with the This enables free space pointing devices according to the present invention to more accurately capture user input.
  • exemplary embodiments which include a state machine implementation allow, among other things, for the threshold for transition into a stationary condition to be different than the threshold for the transition out of a stationary condition.
  • Entering or leaving a state can be used to trigger other device functions as well.
  • the user interface can be powered up based a transition from any state to the ACTIVE state.
  • the free space pointing device and/or the user interface can be turned off (or enter a sleep mode) when the free space pointing device transitions from ACTIVE or STABLE to STATIONARY or INACTIVE.
  • the cursor 410 can be displayed or removed from the screen based on the transition from or to the stationary state of the free space pointing device 400.
  • the STABLE state can be used to memorize tremor data.
  • each user will exhibit a different tremor pattern.
  • This property of user tremor can also be used to identify users.
  • a user's tremor pattern can be memorized by the system (either stored in the free space pointing device 400 or transmitted to the system) during an initialization procedure wherein the user is requested to hold the free space pointing device as steadily as possible for, e.g., 10 seconds.
  • This pattern can be used as the user's unique signature to perform a variety of user interface functions.
  • the user interface can identify the user from a group of user's by comparing a current tremor pattern with those stored in memory. The identification can then be used, for example, to retrieve preference settings associated with the identified user.
  • the media selection item display preferences associated with that user can be activated after the system recognizes the user via tremor pattern comparison.
  • System security can also be implemented using tremor recognition, e.g., access to the system may be forbidden or restricted based on the user identification performed after a user picks up the free space pointing device 400.
  • the free space pointing device 400 includes two rotational sensors 502 and 504, as well as an accelerometer 506.
  • a free space pointing device can alternatively include just one rotational sensor, e.g., for measuring angular velocity in the z-axis direction, and an accelerometer.
  • similar functionality to that described above can be provided by using the accelerometer to determine the angular velocity along the axis which is not sensed by the rotational sensor.
  • parasitic acceleration effects that are not measured by a rotational sensor should also be removed. These effects include actual linear acceleration, acceleration measured due to rotational velocity and rotational acceleration, and acceleration due to human tremor.
  • a user interface device uses only accelerometers.
  • a 3-D handheld device measures six degrees of freedom (6DOF), i.e., x, y, z, yaw, pitch, and roll.
  • 6DOF degrees of freedom
  • Figure 9 shows Euler angles (yaw, pitch, and roll)
  • this exemplary embodiment invention also includes other representations, such as quaternion.
  • a 6DOF device enables a natural mapping between the display and the user input. For example, to move the pointer up the user moves the handheld device up.
  • Handheld devices according to this exemplary embodiment also make object selection more intuitive. For example instead of clicking a button, the user can move the handheld device towards or away from the screen. Instead of the common forward and back on-screen buttons, the user can, for example, simply tilt the mouse forward or back.
  • accelerometers measure linear acceleration.
  • Traditional inertial navigation relies on three gyroscopes and three accelerometers, one each for the six degrees of freedom.
  • This exemplary embodiment of the handheld device uses a constellation of three three- dimensional accelerometers to determine its location and orientation at all times.
  • other quantities and arrangements of accelerometers could be used with the same algorithm.
  • the handheld device according to this exemplary embodiment relies upon the basic geometric principle that three points determine a plane.
  • Acceleration common to all three accelerometers indicates that the whole handheld is accelerating (movement in x, y, or z). Acceleration differences between the accelerometers indicate a change in orientation of the handheld (movement in yaw, pitch or roll).
  • acceleration measurement errors produce a squared positional measurement error due to the double integration of acceleration to calculate position.
  • the gravity vector must be accurately tracked, since gravity is a constant acceleration vector that changes relative to the handheld orientation.
  • the MEMS accelerometers are not absolutely accurate, and error will be introduced into the calculation of position.
  • linear inaccuracies in the acceleration are not important.
  • the positional error is squared, devices according to this exemplary embodiment can use both an absolute and a relative coordinate system. For the relative coordinate system, actual distance traveled (as measured by feet or meters) can be adjusted arbitrarily using a sensitivity setting, e.g., like that commonly found on mouse drivers.
  • Devices according to this exemplary embodiment of the present invention include an algorithm with both linear and non-linear components to tolerate and correct for the known error patterns of the accelerometer as seen in Figure 10.
  • the accelerometer data samples 1000 are provided in, for example, a 3x3 matrix to an error filtering function 1010.
  • the filtered values are then converted (block 1020) from units of volts/unit gravity (V/g) to units of acceleration (g) based on calibration data associated with scale and/or offset, for example as described with respect to above-described exemplary embodiments.
  • the coarse acceleration data is refined in block 1030 by subtracting gravity values and acceleration errors associated with the handheld device's orientation as computed by blocks 1040 and 1050, respectively.
  • Gravity is a constant acceleration that changes relative to the handheld device when it is tilted by the user. If gravity is misinterpreted as an actual acceleration, the on-screen pointer will accelerate indefinitely. A runaway pointer results in an unusable user interface.
  • This exemplary embodiment uses vector manipulations to process the raw accelerometer data into an orientation.
  • the gravity vector is then computed and subtracted from the results. Error from the gravity vector measurements is calculated and subtracted from future measurements.
  • the refined acceleration values are then geometrically transformed at block 1060 based on the handheld' s geometry.
  • the output of block 1060 is then corrected for positional error estimation (blocks 1070 and 1080) before calculating an actual position determined based on acceleration data at block 1090.
  • the position data can then be differentiated (block 1100) and subjected to non-linear processing at block 1110 prior to being output as velocity information.
  • the geometric transform unit 1060 can also output data to the orientation determination unit 1020 which determines the handheld devices orientation in, e.g., a manner similar to that described above, to provide inputs to the orientation error estimation unit 1050 and gravity vector computation unit 1040 as well as outputting an indication of the handheld device's angular orientation.
  • the algorithm can optionally incorporate a user interaction model that takes advantage of normal user interface actions to recalibrate the handheld device as indicated by blocks 1130 and 1140. For example, a user typically stops moving the pointer before selecting an object, or "clicking". In this mode, the handheld algorithm uses a weighted average of the readings during the specified period to provide recalibration input for both gravity and position.
  • This exemplary embodiment of the present invention allows for the algorithm processing to be performed on the handheld device for a self-contained solution or on a host machine.
  • the link between the handheld device and the host machine can be any one of a number of technologies, including, but not limited to, RF, Bluetooth, Zigbee, and IR, some of which are illustrated in the exemplary block diagram hardware and software platforms in Figures 11 and 12, respectively.
  • the handheld device sends the processed position and orientation information to the host.
  • the host machine performs the algorithm processing
  • the handheld sends the raw acceleration data to the host.
  • Figure 13 illustrates this exemplary embodiment of the present invention from an algorithmic perspective.
  • the grey triangle 1300 represents the handheld device having three accelerometers (dots) at its corners.
  • the accelerometers are measuring acceleration of the handheld device as described above and indicated by, for example, the arrows A 0 -A 3 .
  • the axes pairs 1302 and 1304 depict the current orientation of the handheld device locally and relative to an arbitrary point of reference, respectively.

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Abstract

Systems and methods according to the present invention address these needs and others by providing a free space pointing device (400) and methods for free space pointing which provide accurate translation of movement of the free space pointing device (400) into user interface commands, e.g., cursor movement. Accordingly, to exemplary embodiments of the present invention, a free space pointing device (400) includes a plurality of accelerometers (502, 504, 506).

Description

USER INTERFACE DEVICES AND METHODS EMPLOYING ACCELEROMETERS
RELATED APPLICATIONS
[0001] This application is related to, and claims priority from, U.S. Provisional
Patent Application Serial No. 60/513,869 filed on October 23, 2003, entitled "User Interface Device Employing Accelerometers", the disclosure of which is incorporated here by reference. This application is also related to, and claims priority from, U.S. Provisional Patent Application Serial No. 60/566,444 filed on April 30, 2004, entitled "Freespace Pointing Device", the disclosure of which is incorporated here by reference. Additionally, this application is related to, and claims priority from, U.S. Provisional Patent Application Serial No. 60/612,571 September 23, 2004, entitled "Free Space Pointing Devices and Methods", the disclosure of which is incorporated here by reference.
BACKGROUND
[0002] The present invention describes free space pointing devices usable in a number of different applications including, for example, a framework for organizing, selecting and launching media items.
[0003] Technologies associated with the communication of information have evolved rapidly over the last several decades. Television, cellular telephony, the Internet and optical communication techniques (to name just a few things) combine to inundate consumers with available information and entertainment options. Taking television as an example, the last three decades have seen the introduction of cable television service, satellite television service, pay-per-view movies and video-on-demand. Whereas television viewers of the 1960s could typically receive perhaps four or five over-the-air TV channels on their television sets, today's TV watchers have the opportunity to select from hundreds, thousands, and potentially millions of channels of shows and information. Video-on-demand technology, currently used primarily in hotels and the like, provides the potential for in-home entertainment selection from among thousands of movie titles. [0004] The technological ability to provide so much information and content to end users provides both opportunities and challenges to system designers and service providers. One challenge is that while end users typically prefer having more choices rather than fewer, this preference is counterweighted by their desire that the selection process be both fast and simple. Unfortunately, the development of the systems and interfaces by which end users access media items has resulted in selection processes which are neither fast nor simple. Consider again the example of television programs. When television was in its infancy, determining which program to watch was a relatively simple process primarily due to the small number of choices. One would consult a printed guide which was formatted, for example, as series of columns and rows which showed the correspondence between (1) nearby television channels, (2) programs being transmitted on those channels and (3) date and time. The television was tuned to the desired channel by adjusting a tuner knob and the viewer watched the selected program. Later, remote control devices were introduced that permitted viewers to tune the television from a distance. This addition to the user-television interface created the phenomenon known as "channel surfing" whereby a viewer could rapidly view short segments being broadcast on a number of channels to quickly learn what programs were available at any given time. [0005] Despite the fact that the number of channels and amount of viewable content has dramatically increased, the generally available user interface, control device options and frameworks for televisions has not changed much over the last 30 years. Printed guides are still the most prevalent mechanism for conveying programming information. The multiple button remote control with up and down arrows is still the most prevalent channel/content selection mechanism. The reaction of those who design and implement the TV user interface to the increase in available media content has been a straightforward extension of the existing selection procedures and interface objects. Thus, the number of rows in the printed guides has been increased to accommodate more channels. The number of buttons on the remote control devices has been increased to support additional functionality and content handling, e.g., as shown in Figure 1. However, this approach has significantly increased both the time required for a viewer to review the available information and the complexity of actions required to implement a selection. Arguably, the cumbersome nature of the existing interface has hampered commercial implementation of some services, e.g., video-on-demand, since consumers are resistant to new services that will add complexity to an interface that they view as already too slow and complex.
[0006] In addition to increases in bandwidth and content, the user interface bottleneck problem is being exacerbated by the aggregation of technologies. Consumers are reacting positively to having the option of buying integrated systems rather than a number of segregable components. An example of this trend is the combination television/VCR/DVD in which three previously independent components are frequently sold today as an integrated unit. This trend is likely to continue, potentially with an end result that most if not all of the communication devices currently found in the household will be packaged together as an integrated unit, e.g., a television/VCR DVD/internet access/radio/stereo unit. Even those who continue to buy separate components will likely desire seamless control of, and interworking between, the separate components. With this increased aggregation comes the potential for more complexity in the user interface. For example, when so-called "universal" remote units were introduced, e.g., to combine the functionality of TV remote units and VCR remote units, the number of buttons on these universal remote units was typically more than the number of buttons on either the TV remote unit or VCR remote unit individually. This added number of buttons and functionality makes it very difficult to control anything but the simplest aspects of a TV or VCR without hunting for exactly the right button on the remote. Many times, these universal remotes do not provide enough buttons to access many levels of control or features unique to certain TVs. In these cases, the original device remote unit is still needed, and the original hassle of handling multiple remotes remains due to user interface issues arising from the complexity of aggregation. Some remote units have addressed this problem by adding "soft" buttons that can be programmed with the expert commands. These soft buttons sometimes have accompanying LCD displays to indicate their action. These too have the flaw that they are difficult to use without looking away from the TV to the remote control. Yet another flaw in these remote units is the use of modes in an attempt to reduce the number of buttons. In these "moded" universal remote units, a special button exists to select whether the remote should communicate with the TV, DVD player, cable set-top box, VCR, etc. This causes many usability issues including sending commands to the wrong device, forcing the user to look at the remote to make sure that it is in the right mode, and it does not provide any simplification to the integration of multiple devices. The most advanced of these universal remote units provide some integration by allowing the user to program sequences of commands to multiple devices into the remote. This is such a difficult task that many users hire professional installers to program their universal remote units.
[0007] Some attempts have also been made to modernize the screen interface between end users and media systems. However, these attempts typically suffer from, among other drawbacks, an inability to easily scale between large collections of media items and small collections of media items. For example, interfaces which rely on lists of items may work well for small collections of media items, but are tedious to browse for large collections of media items. Interfaces which rely on hierarchical navigation (e.g., tree structures) may be speedier to traverse than list interfaces for large collections of media items, but are not readily adaptable to small collections of media items. Additionally, users tend to lose interest in selection processes wherein the user has to move through three or more layers in a tree structure. For all of these cases, current remote units make this selection processor even more tedious by forcing the user to repeatedly depress the up and down buttons to navigate the list or hierarchies. When selection skipping controls are available such as page up and page down, the user usually has to look at the remote to find these special buttons or be trained to know that they even exist.
[0008] Of particular interest for this specification are the remote devices usable to interact with such frameworks, as well as other applications and systems. As mentioned in the above-incorporated application, various different types of remote devices can be used with such frameworks including, for example, trackballs, "mouse"-type pointing devices, light pens, etc. However, another category of remote devices which can be used with such frameworks (and other applications) is free space pointing devices. The phrase "free space pointing" is used in this specification to refer to the ability of an input device to move in three (or more) dimensions in the air in front of, e.g., a display screen, and the corresponding ability of the user interface to translate those motions directly into user interface commands, e.g., movement of a cursor on the display screen. The transfer of data between the free space pointing device may be performed wirelessly or via a wire connecting the free space pointing device to another device. Thus "free space pointing" differs from, e.g., conventional computer mouse pointing techniques which use a surface, e.g., a desk surface or mousepad, as a proxy surface from which relative movement of the mouse is translated into cursor movement on the computer display screen. An example of a free space pointing device can be found in U.S. Patent No. 5,440,326.
[0009] The '326 patent describes, among other things, a vertical gyroscope adapted for use as a pointing device for controlling the position of a cursor on the display of a computer. A motor at the core of the gyroscope is suspended by two pairs of orthogonal gimbals from a hand-held controller device and nominally oriented with its spin axis vertical by a pendulous device. Electro-optical shaft angle encoders sense the orientation of a handheld controller device as it is manipulated by a user and the resulting electrical output is converted into a format usable by a computer to control the movement of a cursor on the screen of the computer display. However there continues to be a need for a cost-effective, accurate and user-friendly, free space pointing device.
SUMMARY [0010] Systems and methods according to the present invention address these needs and others by providing a free space pointing device and methods for free space pointing which provide accurate translation of movement of the free space pointing device into user interface commands, e.g., cursor movement. According to exemplary embodiments of the present invention, a free space pointing device includes a plurality of accelerometers. [0011] According to one exemplary embodiment of the present invention, a handheld, user interface device includes a plurality of accelerometers, each of which provide acceleration data associated with movement of the device, a processing unit for transforming the acceleration data into data from which two dimensional cursor movement data can be generated, wherein the processing unit further processes the acceleration data to determine when the handheld, user interface device is stationary and recalibrates the handheld, user interface device when the handheld, user interface device is stationary.
BRIEF DESCRIPTION OF THE DRAWINGS [0012] The accompanying drawings illustrate exemplary embodiments of the present invention, wherein:
[0013] FIG. 1 depicts a conventional remote control unit for an entertainment system;
[0014] FIG. 2 depicts an exemplary media system in which exemplary embodiments of the present invention can be implemented;
[0015] FIG. 3 shows a free space pointing device according to an exemplary embodiment of the present invention;
[0016] FIG. 4 illustrates a cutaway view of the free space pointing device in FIG. 4 including two rotational sensors and one accelerometer;
[0017] FIG. 5 is a block diagram illustrating processing of data associated with free space pointing devices according to an exemplary embodiment of the present invention; [0018] FIGS. 6(a) -6(d) illustrate the effects of tilt;
[0019] FIG. 7 depicts a hardware architecture of a free space pointing device according to an exemplary embodiment of the present invention;
[0020] FIG. 8 is a state diagram depicting a stationary detection mechanism according to an exemplary embodiment of the present invention;
[0021] FIG. 9 illustrates six degrees of freedom associated with another exemplary embodiment of the present invention;
[0022] FIG. 10 depicts an algorithm for processing acceleration data according to another exemplary embodiment of the present invention;
[0023] FIG. 11 depicts a hardware architecture of a free space pointing device according to the exemplary embodiment of FIG. 10;
[0024] FIG. 12 depicts a software architecture of a free space pointing device according to the exemplary embodiment of FIG. 10; and
[0025] FIG. 13 shows the exemplary embodiment of FIGS. 9 and 10 from an algorithmic perspective.
DETAILED DESCRIPTION [0026] The following detailed description of the invention refers to the accompanying drawings. The same reference numbers in different drawings identify the same or similar elements. Also, the following detailed description does not limit the invention. Instead, the scope of the invention is defined by the appended claims.
[0027] In order to provide some context for this discussion, an exemplary aggregated media system 200 in which the present invention can be implemented will first be described with respect to Figure 2. Those skilled in the art will appreciate, however, that the present invention is not restricted to implementation in this type of media system and that more or fewer components can be included therein. Therein, an input/output (I/O) bus 210 connects the system components in the media system 200 together. The I/O bus 210 represents any of a number of different of mechanisms and techniques for routing signals between the media system components. For example, the I/O bus 210 may include an appropriate number of independent audio "patch" cables that route audio signals, coaxial cables that route video signals, two-wire serial lines or infrared or radio frequency transceivers that route control signals, optical fiber or any other routing mechanisms that route other types of signals. [0028] In this exemplary embodiment, the media system 200 includes a television/monitor 212, a video cassette recorder (VCR) 214, digital video disk (DVD) recorder/playback device 216, audio/video tuner 218 and compact disk player 220 coupled to the I/O bus 210. The VCR 214, DVD 216 and compact disk player 220 may be single disk or single cassette devices, or alternatively may be multiple disk or multiple cassette devices. They may be independent units or integrated together. In addition, the media system 200 includes a microphone/speaker system 222, video camera 224 and a wireless I/O control device 226. According to exemplary embodiments of the present invention, the wireless I/O control device 226 is a free space pointing device according to one of the exemplary embodiments described below. The wireless I/O control device 226 can communicate with the entertainment system 200 using, e.g., an IR or RF transmitter or transceiver. Alternatively, the I/O control device can be connected to the entertainment system 200 via a wire. [0029] The entertainment system 200 also includes a system controller 228.
According to one exemplary embodiment of the present invention, the system controller 228 operates to store and display entertainment system data available from a plurality of entertainment system data sources and to control a wide variety of features associated with each of the system components. As shown in Figure 2, system controller 228 is coupled, either directly or indirectly, to each of the system components, as necessary, through I/O bus 210. In one exemplary embodiment, in addition to or in place of I/O bus 210, system controller 228 is configured with a wireless communication transmitter (or transceiver), which is capable of communicating with the system components via IR signals or RF signals. Regardless of the control medium, the system controller 228 is configured to control the media components of the media system 200 via a graphical user interface described below. [0030] As further illustrated in Figure 2, media system 200 may be configured to receive media items from various media sources and service providers. In this exemplary embodiment, media system 200 receives media input from and, optionally, sends information to, any or all of the following sources: cable broadcast 230, satellite broadcast 232 (e.g., via a satellite dish), very high frequency (VHF) or ultra high frequency (UHF) radio frequency communication of the broadcast television networks 234 (e.g., via an aerial antenna), telephone network 236 and cable modem 238 (or another source of Internet content). Those skilled in the art will appreciate that the media components and media sources illustrated and described with respect to Figure 2 are purely exemplary and that media system 200 may include more or fewer of both. For example, other types of inputs to the system include AM/FM radio and satellite radio. [0031] More details regarding this exemplary entertainment system and frameworks associated therewith can be found in the above-incorporated by reference U.S. Patent Application "A Control Framework with a Zoomable Graphical User Interface for Organizing, Selecting and Launching Media Items". Alternatively, remote devices in accordance with the present invention can be used in conjunction with other systems, for example computer systems including, e.g., a display, a processor and a memory system or with various other systems and applications.
[0032] As mentioned in the Background section, remote devices which operate as free space pointers are of particular interest for the present specification. Such devices enable the translation of movement, e.g., gestures, into commands to a user interface. An exemplary free space pointing device 400 is depicted in Figure 3. Therein, user movement of the free space pointing can be defined, for example, in terms of a combination of x-axis attitude (roll), y-axis elevation (pitch) and/or z-axis heading (yaw) motion of the free space pointing device 400. In addition, some exemplary embodiments of the present invention can also measure linear movement of the free space pointing device 400 along the x, y, and z axes to generate cursor movement or other user interface commands. In the exemplary embodiment of Figure 3, the free space pointing device 400 includes two buttons 402 and 404 as well as a scroll wheel 406, although other exemplary embodiments will include other physical configurations. According to exemplary embodiments of the present invention, it is anticipated that free space pointing devices 400 will be held by a user in front of a display 408 and that motion of the free space pointing device 400 will be translated by the free space pointing device into output which is usable to interact with the information displayed on display 408, e.g., to move the cursor 410 on the display 408. For example, rotation of the free space pointing device 400 about the y-axis can be sensed by the free space pointing device 400 and translated into an output usable by the system to move cursor 410 along the y axis of the display 408. Likewise, rotation of the free space pointing device 408 about the z- axis can be sensed by the free space pointing device 400 and translated into an output usable by the system to move cursor 410 along the x2 axis of the display 408. It will be appreciated that the output of free space pointing device 400 can be used to interact with the display 408 in a number of ways other than (or in addition to) cursor movement, for example it can control cursor fading, volume or media transport (play, pause, fast-forward and rewind). Input commands may include operations in addition to cursor movement, for example, a zoom in or zoom out on a particular region of a display. A cursor may or may not be visible. Similarly, rotation of the free space pointing device 400 sensed about the x-axis of free space pointing device 400 can be used in addition to, or as an alternative to, y-axis and/or z-axis rotation to provide input to a user interface.
[0033] According to one exemplary embodiment of the present invention, two rotational sensors 502 and 504 and one accelerometer 506 can be employed as sensors in free space pointing device 400 as shown in Figure 4. The rotational sensors 502 and 504 can, for example, be implemented using ADXRS150 sensors made by Analog Devices. It will be appreciated by those skilled in the art that other types of rotational sensors can be employed as rotational sensors 502 and 504 and that the ADXRS150 is purely used as an illustrative example. Unlike traditional gyroscopes, the ADXRS150 rotational sensors use MEMS technology to provide a resonating mass which is attached to a frame so that it can resonate only along one direction. The resonating mass is displaced when the body to which the sensor is affixed is rotated around the sensor's sensing axis. This displacement can be measured using the Coriolis acceleration effect to determine an angular velocity associated with rotation along the sensing axis. If the rotational sensors 502 and 504 have a single sensing axis (as for example the ADXRS150s), then they can be mounted in the free space pointing device 400 such that their sensing axes are aligned with the rotations to be measured. For this exemplary embodiment of the present invention, this means that rotational sensor 502 is mounted such that its sensing axis is parallel to the y-axis and that rotational sensor 504 is mounted such that its sensing axis is parallel to the z-axis as shown in Figure 4. Note, however, that aligning the sensing axes of the rotational sensors 502 and 504 parallel to the desired measurement axes is not required since exemplary embodiments of the present invention also provide techniques for compensating for offset between axes. [0034] One challenge faced in implementing exemplary free space pointing devices
400 in accordance with the present invention is to employ components, e.g., rotational sensors 500 and 502, which are not too costly, while at the same time providing a high degree of correlation between movement of the free space pointing device 400, a user's expectation regarding how the user interface will react to that particular movement of the free space pointing device and actual user interface performance in response to that movement. For example, if the free space pointing device 400 is not moving, the user will likely expect that the cursor ought not to be drifting across the screen. Likewise, if the user rotates the free space pointing device 400 purely around the y-axis, she or he would likely not expect to see the resulting cursor movement on display 408 contain any significant x2 axis component. To achieve these, and other, aspects of exemplary embodiments of the present invention, various measurements and calculations are performed by the handheld device 400 which are used to adjust the outputs of one or more of the sensors 502, 504 and 506 and/or as part of the input used by a processor to determine an appropriate output for the user interface based on the outputs of the sensors 502, 504 and 506. These measurements and calculations are used to compensate for factors which fall broadly into two categories: (1) factors which are intrinsic to the free space pointing device 400, e.g., errors associated with the particular sensors 502, 504 and 506 used in the device 400 or the way in which the sensors are mounted in the device 400 and (2) factors which are not intrinsic to the free space pointing device 400, but are instead associated with the manner in which a user is using the free space pointing device 400, e.g., linear acceleration, tilt and tremor. Exemplary techniques for handling each of these effects are described below.
[0035] A process model 600 which describes the general operation of free space pointing devices according to exemplary embodiments of the present invention is illustrated in Figure 5. The rotational sensors 502 and 504, as well as the accelerometer 506, produce analog signals which are sampled periodically, e.g., 200 samples/second. For the purposes of this discussion, a set of these inputs shall be referred to using the notation (x, y, z, αy, αz), wherein x, y, z are the sampled output values of the exemplary three-axis accelerometer 506 which are associated with acceleration of the free space pointing device in the x-axis, y-axis and z-axis directions, respectively, αy is a the sampled output value from rotational sensor 502 associated with the rotation of the free space pointing device about the y-axis and αz is the sampled output value from rotational sensor 504 associated with rotation of the free space pointing device 400 about the z-axis.
[0036] The output from the accelerometer 506 is provided and, if the accelerometer
506 provides analog output, then the output is sampled and digitized by an A/D converter (not shown) to generate sampled accelerometer output 602. The sampled output values are converted from raw units to units of acceleration, e.g., gravities (g), as indicated by conversion function 604. The acceleration calibration block 606 provides the values used for the conversion function 604. This calibration of the accelerometer output 602 can include, for example, compensation for one or more of scale, offset and axis misalignment error associated with the accelerometer 506. Exemplary conversions for the accelerometer data can be performed using the following equation: A = S * ((M-P) .* G(T)) (1) wherein M is a 3x1 column vector composed of the sampled output values (x, y, z), P is a 3x1 column vector of sensor offsets, and S is a 3x3 matrix that contains both scale, axis misalignment, and sensor rotation compensation. G(T) is a gain factor that is a function of temperature. The "*" operator represents matrix multiplication and the ".*" operator represents element multiplication. The exemplary accelerometer 506 has an exemplary full range of +/- 2g. Sensor offset, P, refers to the sensor output, M, for an accelerometer measurement of Og. Scale refers to the conversion factor between the sampled unit value and g. The actual scale of any given accelerometer sensor may deviate from these nominal scale values due to, e.g., manufacturing variances. Accordingly the scale factor in the equations above will be proportional to this deviation.
[0037] Accelerometer 506 scale and offset deviations can be measured by, for example, applying lg of force along one an axis and measuring the result, Rl. Then a -lg force is applied resulting in measurement R2. The individual axis scale, s, and the individual axis offset, p, can be computed as follows: s = (Rl - R2) / 2 (2) p = (Rl + R2) / 2 (3) In this simple case, P is the column vector of the p for each axis, and S is the diagonal matrix of the 1/s for each axis. [0038] However, in addition to scale and offset, readings generated by accelerometer
506 may also suffer from cross-axes effects. Cross-axes effects include non-aligned axes, e.g., wherein one or more of the sensing axes of the accelerometer 506 as it is mounted in the free space pointing device 400 are not aligned with the corresponding axis in the inertial frame of reference, or mechanical errors associated with the machining of the accelerometer 506 itself, e.g., wherein even though the axes are properly aligned, a purely y-axis acceleration force may result in a sensor reading along the z-axis of the accelerometer 506. Both of these effects can also be measured and added to the calibration performed by function 606.
[0039] The accelerometer 506 serves several purposes in exemplary free space pointing devices according to exemplary embodiments of the present invention. For example, if rotational sensors 502 and 504 are implemented using the exemplary Coriolis effect rotational sensors described above, then the output of the rotational sensors 502 and 504 will vary based on the linear acceleration experienced by each rotational sensor. Thus, one exemplary use of the accelerometer 506 is to compensate for fluctuations in the readings generated by the rotational sensors 502 and 504 which are caused by variances in linear acceleration. This can be accomplished by multiplying the converted accelerometer readings by a gain matrix 610 and subtracting (or adding) the results from (or to) the corresponding sampled rotational sensor data 612. For example, the sampled rotational data αy from rotational sensor 502 can be compensated for linear acceleration at block 614 as: αy' = αy - C * A (4) wherein C is the 1x3 row vector of rotational sensor susceptibility to linear acceleration along each axis given in units/g and A is the calibrated linear acceleration. Similarly, linear acceleration compensation for the sampled rotational data αz from rotational sensor 504 can be provided at block 614. The gain matrices, C, vary between rotational sensors due to manufacturing differences. C may be computed using the average value for many rotational sensors, or it may be custom computed for each rotational sensor.
[0040] Like the accelerometer data, the sampled rotational data 612 is then converted from a sampled unit value into a value associated with a rate of angular rotation, e.g., radians/s, at function 616. This conversion step can also include calibration provided by function 618 to compensate the sampled rotational data for, e.g., scale and offset. Conversion/calibration for both αy and αz can be accomplished using, for example, the following equation: α rad/s = (α' - offset(T)) * scale + dOffset (5) wherein α' refers to the value being converted/calibrated, offset(T) refers to an offset value associated with temperature, scale refers to the conversion factor between the sampled unit value and rad/s, and dOffset refers to a dynamic offset value. Equation (5) may be implemented as a matrix equation in which case all variables are vectors except for scale. In matrix equation form, scale corrects for axis misalignment and rotational offset factors. Each of these variables is discussed in more detail below.
[0041] The offset values offset(T) and dOffset can be determined in a number of different ways. When the free space pointing device 400 is not being rotated in, for example, the y-axis direction, the sensor 502 should output its offset value. However, the offset can be highly affected by temperature, so this offset value will likely vary. Offset temperature calibration may be performed at the factorv. in whiV.h rase the value(s) for offset(T) can be preprogrammed into the handheld device 400 or, alternatively, offset temperature calibration may also be learned dynamically during the lifetime of the device. To accomplish dynamic offset compensation, an input from a temperature sensor 619 is used in rotation calibration function 618 to compute the current value for offset(T). The offset(T) parameter removes the majority of offset bias from the sensor readings. However, negating nearly all cursor drift at zero movement can be useful for producing a high-performance pointing device. Therefore, the additional factor dOffset, can be computed dynamically while the free space pointing device 400 is in use. The stationary detection function 608 determines when the handheld is most likely stationary and when the offset should be recomputed. Exemplary techniques for implementing stationary detection function 608, as well as other uses therefore, are described below.
[0042] An exemplary implementation of dOffset computation employs calibrated sensor outputs which are low-pass filtered. The stationary output detection function 608 provides an indication to rotation calibration function 618 to trigger computation of, for example, the mean of the low-pass filter output. The stationary output detection function 608 can also control when the newly computed mean is factored into the existing value for dOffset. Those skilled in the art will recognize that a multitude of different techniques can be used for computing the new value for dOffset from the existing value of dOffset and the new mean including, but not limited to, simple averaging, low-pass filtering and Kalman filtering. Additionally, those skilled in the art will recognize that numerous variations for offset compensation of the rotational sensors 502 and 504 can be employed. For example, the offset(T) function can have a constant value (e.g., invariant with temperature), more than two offset compensation values can be used and/or only a single offset value can be computed/used for offset compensation.
[0043] After conversion/calibration at block 616, the inputs from the rotational sensors 502 and 504 can be further processed to rotate those inputs into an inertial frame of reference, i.e., to compensate for tilt associated with the manner in which the user is holding the free space pointing device 400, at function 620. Tilt correction is another significant aspect of some exemplary embodiments of the present invention as it is intended to compensate for differences in usage patterns of free space pointing devices according to the present invention. More specifically, tilt correction according to exemplary embodiments of the present invention is intended to compensate for the fact that users will hold pointing devices in their hands at different x-axis rotational positions, but that the sensing axes of the rotational sensors 502 and 504 in the free space pointing devices 400 are fixed. It is desirable that cursor translation across display 408 is substantially insensitive to the way in which the user grips the free space pointing device 400, e.g., rotating the free space pointing device 400 back and forth in a manner generally corresponding to the horizontal dimension (x2-axis) of the display 508 should result in cursor translation along the x2-axis, while rotating the free space pointing device up and down in a manner generally corresponding to the vertical dimension (y2-axis) of the display 508 should result in cursor translation along the y -axis, regardless of the orientation in which the user is holding the free space pointing device 400. [0044] To better understand the need for tilt compensation according to exemplary embodiments of the present invention, consider the example shown in Figure 6(a). Therein, the user is holding free space pointing device 400 in an exemplary inertial frame of reference, which can be defined as having an x-axis rotational value of 0 degrees. The inertial frame of reference can, purely as an example, correspond to the orientation illustrated in Figure 6(a) or it can be defined as any other orientation. Rotation of the free space pointing device 400 in either the y-axis or z-axis directions will be sensed by rotational sensors 502 and 504, respectively. For example, rotation of the free space pointing device 400 around the z-axis by an amount Δz as shown in Figure 6(b) will result in a corresponding cursor translation Δx2 in the x2 axis dimension across the display 408(i.e., the distance between the dotted version of cursor 410 and the undotted version).
[0045] If, on the other hand, the user holds the free space pointing device 400 in a different orientation, e.g., with some amount of x-axis rotation relative to the inertial frame of reference, then the information provided by the sensors 502 and 504 would not (absent tilt compensation) provide an accurate representation of the user's intended interface actions. For example, referring to Figure 6(c), consider a situation wherein the user holds the free space pointing device 400 with an x-axis rotation of 45 degrees relative to the exemplary inertial frame of reference as illustrated in Figure 6(a). Assuming the same z-axis rotation Δz by a user, the cursor 410 will instead be translated in both the x2-axis direction and the y2-axis direction by as shown in Figure 6(d). This is due to the fact that the sensing axis of rotational sensor 502 is now oriented between the y-axis and the z-axis (because of the orientation of the device in the user's hand). Similarly, the sensing axis of the rotational sensor 504 is also oriented between the y-axis and the z-axis (although in a different quadrant). In order to provide an interface which is transparent to the user in terms of how the free space pointing device 400 is held, tilt compensation according to exemplary embodiments of the present invention translates the readings output from rotational sensors 502 and 504 back into the inertial frame of reference as part of processing the readings from these sensors into information indicative of rotational motion of the free space pointing device 400. [0046] According to exemplary embodiments of the present invention, returning to
Figure 5, this can be accomplished by determining the tilt of the free space pointing device 400 using the inputs y and z received from accelerometer 506 at function 622. More specifically, after the acceleration data is converted and calibrated as described above, it can be low pass filtered at LPF 624 to provide an average acceleration (gravity) value to the tilt determination function 622. Then, tilt θ can be calculated in function 622 as:
Figure imgf000023_0001
The value θ can be numerically computed as atan2(y,z) to prevent division by zero and give the correct sign. Then, function 620 can perform the rotation R of the converted/calibrated inputs αy and αz using the equation:
Figure imgf000023_0002
to rotate the converted/calibrated inputs αy and αz to compensate for the tilt θ. [0047] Once the calibrated sensor readings have been compensated for linear acceleration, processed into readings indicative of angular rotation of the free space pointing device 400, and compensated for tilt, post-processing can be performed at blocks 626 and 628. Exemplary post-processing can include compensation for various factors such as human tremor. Although tremor may be removed using several different methods, one way to remove tremor is by using hysteresis. The angular velocity produced by rotation function 620 is integrated to produce an angular position. Hysteresis of a calibrated magnitude is then applied to the angular position. The derivative is taken of the output of the hysteresis block to again yield an angular velocity. The resulting output is then scaled at function 628 (e.g., based on the sampling period) and used to generate a result within the interface, e.g., movement of a cursor 410 on a display 408.
[0048] Having provided a process description of exemplary free space pointing devices according to the present invention, Figure 7 illustrates an exemplary hardware architecture. Therein, a processor 800 communicates with other elements of the free space pointing device including a scroll wheel 802, JTAG 804, LEDs 806, switch matrix 808, IR photodetector 810, rotational sensors 812, accelerometer 814 and transceiver 816. The scroll wheel 802 is an optional input component which enables a user to provide input to the interface by rotating the scroll wheel 802 clockwise or counterclockwise. JTAG 804 provides the programming and debugging interface to the processor. LEDs 806 provide visual feedback to a user, for example, when a button is pressed. Switch matrix 808 receives inputs, e.g., indications that a button on the free space pointing device 400 has been depressed or released, that are then passed on to processor 800. The optional IR photodetector 810 can be provided to enable the exemplary free space pointing device to learn IR codes from other remote controls. Rotational sensors 812 provide readings to processor 800 regarding, e.g., the y-axis and z-axis rotation of the free space pointing device as described above. Accelerometer 814 provides readings to processor 800 regarding the linear acceleration of the free space pointing device 400 which can be used as described above, e.g., to perform tilt compensation and to compensate for errors which linear acceleration introduces into the rotational readings generated by rotational sensors 812. Transceiver 816 is used to communicate information to and from free space pointing device 400, e.g., to the system controller 228 or to a processor associated with a computer. The transceiver 816 can be a wireless transceiver, e.g., operating in accordance with the Bluetooth standards for short-range wireless communication or an infrared transceiver. Alternatively, free space pointing device 400 can communicate with systems via a wireline connection. [0049] Stationary detection function 608, mentioned briefly above, can operate to determine whether the free space pointing device 400 is, for example, either stationary or active (moving). This categorization can be performed in a number of different ways. One way, according to an exemplary embodiment of the present invention, is to compute the variance of the sampled input data of all inputs (x, y, z, αy, αz) over a predetermined window, e.g., every quarter of a second. This variance is then compared with a threshold to classify the free space pointing device as either stationary or active. [0050] Another stationary detection technique according to exemplary embodiments of the present invention involves transforming the inputs into the frequency domain by, e.g., performing a Fast Fourier Transform (FFT) on the input data. Then, the data can be analyzed using, e.g., peak detection methods, to determine if the free space pointing device 400 is either stationary or active. Additionally, a third category can be distinguished, specifically the case where a user is holding the free space pointing device 400 but is not moving it (also referred to herein as the "stable" state. This third category can be distinguished from stationary (not held) and active by detecting the small movement of the free space pointing device 400 introduced by a user's hand tremor when the free space pointing device 400 is being held by a user. Peak detection can also be used by stationary detection function 608 to make this determination. Peaks within the range of human tremor frequencies, e.g., nominally 8-12 Hz, will typically exceed the noise floor of the device (experienced when the device is stationary and not held) by approximately 20 dB [0051] In the foregoing examples, the variances in the frequency domain were sensed within a particular frequency range, however the actual frequency range to be monitored and used to characterize the status of the free space pointing device 400 may vary. For example, the nominal tremor frequency range may shift based on e.g., the ergonomics and weight of the free space pointing device 400, e.g., from 8-12 Hz to 4-7 Hz. [0052] According to another exemplary embodiment of the present invention, stationary detection mechanism 608 can include a state machine. An exemplary state machine is shown in Figure 12. Therein, the ACTIVE state is, in this example, the default state during which the free space pointing device 400 is moving and being used to, e.g., provide inputs to a user interface. The free space pointing device 400 can enter the ACTIVE state on power-up of the device as indicated by the reset input. If the free space pointing device 400 stops moving, it may then enter the INACTIVE state. The various state transitions illustrated in Figure 12 can be triggered by any of a number of different criteria including, but not limited to, data output from one or both of the rotational sensors 502 and 504, data output from the accelerometer 506, time domain data, frequency domain data or any combination thereof. State transition conditions will be generically referred to herein using the convention
Figure imgf000026_0001
• For example, the free space pointing device 400 will transition from the ACTIVE state to the INACTIVE state when
Figure imgf000026_0002
occurs. For the sole purpose of illustration, consider that
Figure imgf000026_0003
can, in an exemplary free space pointing device 400, occur when mean and/or standard deviation values from both the rotational sensor(s) and the accelerometer fall below first predetermined threshold values for a first predetermined time period. [0053] State transitions can be determined by a number of different conditions based upon the interpreted sensor outputs. Exemplary condition metrics include the variance of the interpreted signals over a time window, the threshold between a reference value and the interpreted signal over a time window, the threshold between a reference value and the filtered interpreted signal over a time window, and the threshold between a reference value and the interpreted signal from a start time can be used to determine state transitions. All, or any combination, of these condition metrics can be used to trigger state transitions. Alternatively, other metrics can also be used. According to one exemplary embodiment of the present invention, a transition from the INACTIVE state to the ACTIVE state occurs either when (1) a mean value of sensor output(s) over a time window is greater than predetermined threshold(s) or (2) a variance of values of sensor output(s) over a time window is greater than predetermined threshold(s) or (3) an instantaneous delta between sensor values is greater than a predetermined threshold.
[0054] The INACTIVE state enables the stationary detection mechanism 608 to distinguish between brief pauses during which the free space pointing device 400 is still being used, e.g., on the order of a tenth of a second, and an actual transition to either a stable or stationary condition. This protects against the functions which are performed during the STABLE and STATIONARY states, described below, from inadvertently being performed when the free space pointing device is being used. The free space pointing device 400 will transition back to the ACTIVE state when conditionιnactιve^actιve occurs, e.g., if the free space pointing device 400 starts moving again such that the measured outputs from the rotational sensor(s) and the accelerometer exceeds the first threshold before a second predetermined time period in the INACTIVE state elapses. [0055] The free space pointing device 400 will transition to either the STABLE state or the STATIONARY state after the second predetermined time period elapses. As mentioned earlier, the STABLE state reflects the characterization of the free space pointing device 400 as being held by a person but being substantially unmoving, while the STATIONARY state reflects a characterization of the free space pointing device as not being held by a person. Thus, an exemplary state machine according to the present invention can provide for a transition to the STABLE state after the second predetermined time period has elapsed if minimal movement associated with hand tremor is present or, otherwise, transition to the STATIONARY state.
[0056] The STABLE and STATIONARY states define times during which the free space pointing device 400 can perform various functions. For example, since the STABLE state is intended to reflect times when the user is holding the free space pointing device 400 but is not moving it, the device can record the movement of the free space pointing device 400 when it is in the STABLE state e.g., by storing outputs from the rotational sensor(s) and/or the accelerometer while in this state. These stored measurements can be used to determine a tremor pattern associated with a particular user or users as described below. Likewise, when in the STATIONARY state, the free space pointing device 400 can take readings from the rotational sensors and/or the accelerometer for use in compensating for offset as described above.
[0057] If the free space pointing device 400 starts to move while in either the
STABLE or STATIONARY state, this can trigger a return to the ACTIVE state. Otherwise, after measurements are taken, the device can transition to the SLEEP state. While in the sleep state, the device can enter a power down mode wherein power consumption of the free space pointing device is reduced and, e.g., the sampling rate of the rotational sensors and/or the accelerometer is also reduced. The SLEEP state can also be entered via an external command so that the user or another device can command the free space pointing device 400 to enter the SLEEP state.
[0058] Upon receipt of another command, or if the free space pointing device 400 begins to move, the device can transition from the SLEEP state to the WAKEUP state. Like the INACTIVE state, the WAKEUP state provides an opportunity for the device to confirm that a transition to the ACTIVE state is justified, e.g., that the free space pointing device 400 was not inadvertently jostled.
[0059] The conditions for state transitions may be symmetrical or may differ. Thus, the threshold associated with the
Figure imgf000029_0001
may be the same as (or different from) the threshold(s) associated with the
Figure imgf000029_0002
This enables free space pointing devices according to the present invention to more accurately capture user input. For example, exemplary embodiments which include a state machine implementation allow, among other things, for the threshold for transition into a stationary condition to be different than the threshold for the transition out of a stationary condition. [0060] Entering or leaving a state can be used to trigger other device functions as well. For example, the user interface can be powered up based a transition from any state to the ACTIVE state. Conversely, the free space pointing device and/or the user interface can be turned off (or enter a sleep mode) when the free space pointing device transitions from ACTIVE or STABLE to STATIONARY or INACTIVE. Alternatively, the cursor 410 can be displayed or removed from the screen based on the transition from or to the stationary state of the free space pointing device 400. [0061] As mentioned above, the STABLE state can be used to memorize tremor data.
Typically, each user will exhibit a different tremor pattern. This property of user tremor can also be used to identify users. For example, a user's tremor pattern can be memorized by the system (either stored in the free space pointing device 400 or transmitted to the system) during an initialization procedure wherein the user is requested to hold the free space pointing device as steadily as possible for, e.g., 10 seconds. This pattern can be used as the user's unique signature to perform a variety of user interface functions. For example, the user interface can identify the user from a group of user's by comparing a current tremor pattern with those stored in memory. The identification can then be used, for example, to retrieve preference settings associated with the identified user. For example, if the free space pointing device is used in conjunction with the media systems described in the above-incorporated by reference patent application, then the media selection item display preferences associated with that user can be activated after the system recognizes the user via tremor pattern comparison. System security can also be implemented using tremor recognition, e.g., access to the system may be forbidden or restricted based on the user identification performed after a user picks up the free space pointing device 400.
[0062] In the exemplary embodiment of Figure 4, the free space pointing device 400 includes two rotational sensors 502 and 504, as well as an accelerometer 506. However, according to another exemplary embodiment of the present invention, a free space pointing device can alternatively include just one rotational sensor, e.g., for measuring angular velocity in the z-axis direction, and an accelerometer. For such an exemplary embodiment, similar functionality to that described above can be provided by using the accelerometer to determine the angular velocity along the axis which is not sensed by the rotational sensor. For example, rotational velocity around the y-axis can be computed using data generated by the accelerometer and calculating: dθv f x v\ — - = — tan (9) dt dt
In addition, the parasitic acceleration effects that are not measured by a rotational sensor should also be removed. These effects include actual linear acceleration, acceleration measured due to rotational velocity and rotational acceleration, and acceleration due to human tremor.
[0063] According to yet another exemplary embodiment of the present invention, a user interface device uses only accelerometers. As shown in Figure 9, a 3-D handheld device according to this exemplary embodiment of the present invention measures six degrees of freedom (6DOF), i.e., x, y, z, yaw, pitch, and roll. Although Figure 9 shows Euler angles (yaw, pitch, and roll), those skilled in the art will appreciate that this exemplary embodiment invention also includes other representations, such as quaternion. A 6DOF device enables a natural mapping between the display and the user input. For example, to move the pointer up the user moves the handheld device up. Handheld devices according to this exemplary embodiment also make object selection more intuitive. For example instead of clicking a button, the user can move the handheld device towards or away from the screen. Instead of the common forward and back on-screen buttons, the user can, for example, simply tilt the mouse forward or back.
[0064] The advent of accurate and inexpensive accelerometers based upon micro- electromechanical systems (MEMS) makes it possible to bring this technology to the home consumer. Unlike gyroscopes that measure angular rotation, accelerometers measure linear acceleration. Traditional inertial navigation relies on three gyroscopes and three accelerometers, one each for the six degrees of freedom. Unfortunately, the cost and size of a traditional inertial navigation system are prohibitive for a consumer handheld. This exemplary embodiment of the handheld device uses a constellation of three three- dimensional accelerometers to determine its location and orientation at all times. However, other quantities and arrangements of accelerometers could be used with the same algorithm. [0065] The handheld device according to this exemplary embodiment relies upon the basic geometric principle that three points determine a plane. Additional points may be added to improve accuracy. Acceleration common to all three accelerometers indicates that the whole handheld is accelerating (movement in x, y, or z). Acceleration differences between the accelerometers indicate a change in orientation of the handheld (movement in yaw, pitch or roll).
[0066] Several principles complicate the implementation of a 6DOF accelerometer- based system. First, acceleration measurement errors produce a squared positional measurement error due to the double integration of acceleration to calculate position. Second, the gravity vector must be accurately tracked, since gravity is a constant acceleration vector that changes relative to the handheld orientation. Regarding measurement error, the MEMS accelerometers are not absolutely accurate, and error will be introduced into the calculation of position. However, linear inaccuracies in the acceleration are not important. Although the positional error is squared, devices according to this exemplary embodiment can use both an absolute and a relative coordinate system. For the relative coordinate system, actual distance traveled (as measured by feet or meters) can be adjusted arbitrarily using a sensitivity setting, e.g., like that commonly found on mouse drivers. However, non-linear errors over time and temperature that do not average to zero (also known as "drift", a characteristic of the MEMS accelerometers) will result in a constant acceleration of the mouse. Without appropriate processing, the pointer for the stationary handheld would appear to accelerate off the screen. To make the calculation more difficult, quantization introduces measurement error when converting from the raw analog acceleration signal to the digital representation. [0067] Devices according to this exemplary embodiment of the present invention include an algorithm with both linear and non-linear components to tolerate and correct for the known error patterns of the accelerometer as seen in Figure 10. Therein, the accelerometer data samples 1000 are provided in, for example, a 3x3 matrix to an error filtering function 1010. The filtered values are then converted (block 1020) from units of volts/unit gravity (V/g) to units of acceleration (g) based on calibration data associated with scale and/or offset, for example as described with respect to above-described exemplary embodiments. The coarse acceleration data is refined in block 1030 by subtracting gravity values and acceleration errors associated with the handheld device's orientation as computed by blocks 1040 and 1050, respectively. Gravity is a constant acceleration that changes relative to the handheld device when it is tilted by the user. If gravity is misinterpreted as an actual acceleration, the on-screen pointer will accelerate indefinitely. A runaway pointer results in an unusable user interface. This exemplary embodiment uses vector manipulations to process the raw accelerometer data into an orientation. The gravity vector is then computed and subtracted from the results. Error from the gravity vector measurements is calculated and subtracted from future measurements. The refined acceleration values are then geometrically transformed at block 1060 based on the handheld' s geometry. The output of block 1060 is then corrected for positional error estimation (blocks 1070 and 1080) before calculating an actual position determined based on acceleration data at block 1090. The position data can then be differentiated (block 1100) and subjected to non-linear processing at block 1110 prior to being output as velocity information. The geometric transform unit 1060 can also output data to the orientation determination unit 1020 which determines the handheld devices orientation in, e.g., a manner similar to that described above, to provide inputs to the orientation error estimation unit 1050 and gravity vector computation unit 1040 as well as outputting an indication of the handheld device's angular orientation. [0068] The algorithm can optionally incorporate a user interaction model that takes advantage of normal user interface actions to recalibrate the handheld device as indicated by blocks 1130 and 1140. For example, a user typically stops moving the pointer before selecting an object, or "clicking". In this mode, the handheld algorithm uses a weighted average of the readings during the specified period to provide recalibration input for both gravity and position.
[0069] This exemplary embodiment of the present invention allows for the algorithm processing to be performed on the handheld device for a self-contained solution or on a host machine. The link between the handheld device and the host machine can be any one of a number of technologies, including, but not limited to, RF, Bluetooth, Zigbee, and IR, some of which are illustrated in the exemplary block diagram hardware and software platforms in Figures 11 and 12, respectively. In a self-contained solution, the handheld device sends the processed position and orientation information to the host. When the host machine performs the algorithm processing, the handheld sends the raw acceleration data to the host. Figure 13 illustrates this exemplary embodiment of the present invention from an algorithmic perspective. Therein, the grey triangle 1300 represents the handheld device having three accelerometers (dots) at its corners. The accelerometers are measuring acceleration of the handheld device as described above and indicated by, for example, the arrows A0-A3. The axes pairs 1302 and 1304 depict the current orientation of the handheld device locally and relative to an arbitrary point of reference, respectively.
[0070] The above-described exemplary embodiments are intended to be illustrative in all respects, rather than restrictive, of the present invention. Thus the present invention is capable of many variations in detailed implementation that can be derived from the description contained herein by a person skilled in the art. For example, although the foregoing exemplary embodiments describe, among other things, the use of inertial sensors to detect movement of a device, other types of sensors (e.g., ultrasound, magnetic or optical) can be used instead of, or in addition to, inertial sensors in conjunction with the afore- described signal processing. All such variations and modifications are considered to be within the scope and spirit of the present invention as defined by the following claims. No element, act, or instruction used in the description of the present application should be construed as critical or essential to the invention unless explicitly described as such. Also, as used herein, the article "a" is intended to include one or more items.

Claims

WHAT IS CLAIMED IS:
1. A user interface device comprising: at least four accelerometer devices arranged in a non-coplanar configuration, each of said at least four accelerometer devices outputting respective accelerometer data; and an algorithm that translates said accelerometer data from each of said at least four accelerometer devices into two dimensional pointer movement.
2. The user interface device in claim 1 wherein each accelerometer device contains two accelerometers.
3. The user interface device in claim 1 wherein each accelerometer device contains three accelerometers.
4. The user interface device of claim 1 wherein said algorithm reduces error by bounding device movement based on user movement characteristics.
5. The user interface device of claim 4 wherein bounding is performed using an extent of user movement for at least one of user's fingers, wrist, arm, and shoulder.
6. The user interface device of claim 4 wherein bounding is performed using user tremor.
7. The user interface device of claim 1 wherein said algorithm further interprets gestures to produce mouse buttons clicks.
8. The user interface device of claim 1 wherein said algorithm further interprets gestures to produce keystrokes or operating system messages.
9. A user interface device comprising: a plurality of accelerometers for measuring acceleration associated with said user interface device; and an algorithm that utilizes gravity to stabilize orientation measurements over time.
10. A handheld, user interface device comprising: a plurality of accelerometers for measuring acceleration associated with said user interface device; and an algorithm that detects when the handheld, user interface device is stationary and that performs calibration of the plurality of accelerometers when stationary conditions are detected.
11. A handheld, user interface device comprising: a plurality of accelerometers, each of which provide acceleration data associated with movement of said handheld, user interface device; a processing unit for transforming said acceleration data into data from which two dimensional cursor movement data can be generated; wherein said processing unit further processes said acceleration data to determine when said handheld, user interface device is stationary and recalibrates said handheld, user interface device when said handheld, user interface device is stationary.
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Cited By (30)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
EP1758398A1 (en) 2005-08-23 2007-02-28 Syneola SA Multilevel semiotic and fuzzy logic user and metadata interface means for interactive multimedia system having cognitive adaptive capability
WO2007083289A2 (en) * 2006-01-20 2007-07-26 France Telecom Spatially articulable interface and associated method of controlling an application framework
EP1858238A2 (en) 2006-05-18 2007-11-21 Samsung Electronics Co., Ltd. Display method and system for portable device using external display device
JP2008123485A (en) * 2006-11-14 2008-05-29 Ind Technol Res Inst Method and apparatus of signal processing and inertial positioning device using the signal processing
WO2009139785A1 (en) * 2008-05-15 2009-11-19 Sony Ericsson Mobile Communications Ab Remote control based on image recognition
US7679601B2 (en) 2005-12-01 2010-03-16 Industrial Technology Research Institute Input means for interactive devices
WO2010048000A2 (en) * 2008-10-20 2010-04-29 Sensor Platforms, Inc. System and method for determining an attitude of a device undergoing dynamic acceleration
WO2010080383A1 (en) * 2009-01-07 2010-07-15 Sensor Platforms, Inc System and method for determining an attitude of a device undergoing dynamic acceleration using a kalman filter
CN102082900A (en) * 2010-11-29 2011-06-01 中国科学院西安光学精密机械研究所 Rotation-eliminating camera system
CN102088549A (en) * 2010-11-29 2011-06-08 中国科学院西安光学精密机械研究所 Rotation-eliminating camera shooting method
CN102740189A (en) * 2011-04-01 2012-10-17 中国科学院声学研究所 Acoustic feedback inhibition method based on time reversal
CN102822626A (en) * 2010-03-30 2012-12-12 苹果公司 Determining heading using magnetometer data and angular rate data
US8344998B2 (en) 2008-02-01 2013-01-01 Wimm Labs, Inc. Gesture-based power management of a wearable portable electronic device with display
CN102915126A (en) * 2012-09-29 2013-02-06 深圳创维数字技术股份有限公司 Method, device and system of light ray remote-control positioning
WO2013104006A3 (en) * 2012-01-08 2013-11-07 Sensor Platforms, Inc. System and method for calibrating sensors for different operating environments
US8587519B2 (en) 2009-01-07 2013-11-19 Sensor Platforms, Inc. Rolling gesture detection using a multi-dimensional pointing device
US8957909B2 (en) 2010-10-07 2015-02-17 Sensor Platforms, Inc. System and method for compensating for drift in a display of a user interface state
US9079102B2 (en) 2008-06-30 2015-07-14 Nintendo Co., Ltd. Calculation of coordinates indicated by a handheld pointing device
US9116002B2 (en) 2009-08-27 2015-08-25 Apple Inc. Context determination to assist location determination accuracy
US9151610B2 (en) 2013-06-08 2015-10-06 Apple Inc. Validating calibrated magnetometer data
US9229084B2 (en) 2010-10-06 2016-01-05 Apple Inc. Magnetometer calibration
US9423252B2 (en) 2012-09-11 2016-08-23 Apple Inc. Using clustering techniques to improve magnetometer bias estimation
US9459276B2 (en) 2012-01-06 2016-10-04 Sensor Platforms, Inc. System and method for device self-calibration
US9506754B2 (en) 2009-06-05 2016-11-29 Apple Inc. Magnetometer accuracy and use
US9513714B2 (en) 2010-09-02 2016-12-06 Qualcomm Incorporated Methods and apparatuses for gesture-based user input detection in a mobile device
US9726498B2 (en) 2012-11-29 2017-08-08 Sensor Platforms, Inc. Combining monitoring sensor measurements and system signals to determine device context
US9772694B2 (en) 2009-03-09 2017-09-26 Nintendo Co., Ltd. Coordinate calculation apparatus and storage medium having coordinate calculation program stored therein
US10261630B2 (en) 2012-04-27 2019-04-16 Panasonic Intellectual Property Corporation Of America Input device, input support method, and program
US11402927B2 (en) 2004-05-28 2022-08-02 UltimatePointer, L.L.C. Pointing device
US11841997B2 (en) 2005-07-13 2023-12-12 UltimatePointer, L.L.C. Apparatus for controlling contents of a computer-generated image using 3D measurements

Families Citing this family (185)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US7749089B1 (en) 1999-02-26 2010-07-06 Creative Kingdoms, Llc Multi-media interactive play system
US7878905B2 (en) 2000-02-22 2011-02-01 Creative Kingdoms, Llc Multi-layered interactive play experience
US7445550B2 (en) 2000-02-22 2008-11-04 Creative Kingdoms, Llc Magical wand and interactive play experience
US6761637B2 (en) 2000-02-22 2004-07-13 Creative Kingdoms, Llc Method of game play using RFID tracking device
US7066781B2 (en) 2000-10-20 2006-06-27 Denise Chapman Weston Children's toy with wireless tag/transponder
US20070066396A1 (en) 2002-04-05 2007-03-22 Denise Chapman Weston Retail methods for providing an interactive product to a consumer
US6967566B2 (en) 2002-04-05 2005-11-22 Creative Kingdoms, Llc Live-action interactive adventure game
US8221322B2 (en) 2002-06-07 2012-07-17 Verathon Inc. Systems and methods to improve clarity in ultrasound images
US7819806B2 (en) 2002-06-07 2010-10-26 Verathon Inc. System and method to identify and measure organ wall boundaries
GB2391625A (en) 2002-08-09 2004-02-11 Diagnostic Ultrasound Europ B Instantaneous ultrasonic echo measurement of bladder urine volume with a limited number of ultrasound beams
US8221321B2 (en) 2002-06-07 2012-07-17 Verathon Inc. Systems and methods for quantification and classification of fluids in human cavities in ultrasound images
US20070276247A1 (en) * 2002-06-07 2007-11-29 Vikram Chalana Systems and methods for ultrasound imaging using an inertial reference unit
US8797260B2 (en) 2002-07-27 2014-08-05 Sony Computer Entertainment Inc. Inertially trackable hand-held controller
US8947347B2 (en) * 2003-08-27 2015-02-03 Sony Computer Entertainment Inc. Controlling actions in a video game unit
US8073157B2 (en) * 2003-08-27 2011-12-06 Sony Computer Entertainment Inc. Methods and apparatus for targeted sound detection and characterization
US7918733B2 (en) * 2002-07-27 2011-04-05 Sony Computer Entertainment America Inc. Multi-input game control mixer
US9174119B2 (en) 2002-07-27 2015-11-03 Sony Computer Entertainement America, LLC Controller for providing inputs to control execution of a program when inputs are combined
US20060282873A1 (en) * 2002-07-27 2006-12-14 Sony Computer Entertainment Inc. Hand-held controller having detectable elements for tracking purposes
US9474968B2 (en) * 2002-07-27 2016-10-25 Sony Interactive Entertainment America Llc Method and system for applying gearing effects to visual tracking
US7850526B2 (en) * 2002-07-27 2010-12-14 Sony Computer Entertainment America Inc. System for tracking user manipulations within an environment
US8160269B2 (en) 2003-08-27 2012-04-17 Sony Computer Entertainment Inc. Methods and apparatuses for adjusting a listening area for capturing sounds
US7782297B2 (en) * 2002-07-27 2010-08-24 Sony Computer Entertainment America Inc. Method and apparatus for use in determining an activity level of a user in relation to a system
US7760248B2 (en) 2002-07-27 2010-07-20 Sony Computer Entertainment Inc. Selective sound source listening in conjunction with computer interactive processing
US10086282B2 (en) * 2002-07-27 2018-10-02 Sony Interactive Entertainment Inc. Tracking device for use in obtaining information for controlling game program execution
US8686939B2 (en) * 2002-07-27 2014-04-01 Sony Computer Entertainment Inc. System, method, and apparatus for three-dimensional input control
US7803050B2 (en) * 2002-07-27 2010-09-28 Sony Computer Entertainment Inc. Tracking device with sound emitter for use in obtaining information for controlling game program execution
US8570378B2 (en) 2002-07-27 2013-10-29 Sony Computer Entertainment Inc. Method and apparatus for tracking three-dimensional movements of an object using a depth sensing camera
US9393487B2 (en) 2002-07-27 2016-07-19 Sony Interactive Entertainment Inc. Method for mapping movements of a hand-held controller to game commands
US8233642B2 (en) 2003-08-27 2012-07-31 Sony Computer Entertainment Inc. Methods and apparatuses for capturing an audio signal based on a location of the signal
US20060256081A1 (en) * 2002-07-27 2006-11-16 Sony Computer Entertainment America Inc. Scheme for detecting and tracking user manipulation of a game controller body
US8313380B2 (en) 2002-07-27 2012-11-20 Sony Computer Entertainment America Llc Scheme for translating movements of a hand-held controller into inputs for a system
US8139793B2 (en) 2003-08-27 2012-03-20 Sony Computer Entertainment Inc. Methods and apparatus for capturing audio signals based on a visual image
US7854655B2 (en) 2002-07-27 2010-12-21 Sony Computer Entertainment America Inc. Obtaining input for controlling execution of a game program
US9682319B2 (en) * 2002-07-31 2017-06-20 Sony Interactive Entertainment Inc. Combiner method for altering game gearing
US7674184B2 (en) 2002-08-01 2010-03-09 Creative Kingdoms, Llc Interactive water attraction and quest game
EP2070487B1 (en) 2002-08-13 2014-03-05 NeuroArm Surgical, Ltd. Microsurgical robot system
US9177387B2 (en) * 2003-02-11 2015-11-03 Sony Computer Entertainment Inc. Method and apparatus for real time motion capture
US9446319B2 (en) 2003-03-25 2016-09-20 Mq Gaming, Llc Interactive gaming toy
US7894177B2 (en) 2005-12-29 2011-02-22 Apple Inc. Light activated hold switch
US8072470B2 (en) 2003-05-29 2011-12-06 Sony Computer Entertainment Inc. System and method for providing a real-time three-dimensional interactive environment
US20070223732A1 (en) * 2003-08-27 2007-09-27 Mao Xiao D Methods and apparatuses for adjusting a visual image based on an audio signal
US10279254B2 (en) 2005-10-26 2019-05-07 Sony Interactive Entertainment Inc. Controller having visually trackable object for interfacing with a gaming system
US7874917B2 (en) 2003-09-15 2011-01-25 Sony Computer Entertainment Inc. Methods and systems for enabling depth and direction detection when interfacing with a computer program
US8323106B2 (en) * 2008-05-30 2012-12-04 Sony Computer Entertainment America Llc Determination of controller three-dimensional location using image analysis and ultrasonic communication
WO2005109215A2 (en) * 2004-04-30 2005-11-17 Hillcrest Laboratories, Inc. Methods and devices for removing unintentional movement in free space pointing devices
JP4685095B2 (en) * 2004-04-30 2011-05-18 ヒルクレスト・ラボラトリーズ・インコーポレイテッド Method and device for identifying a user based on tremor
EP1759529A4 (en) * 2004-04-30 2009-11-11 Hillcrest Lab Inc Free space pointing devices and method
DK2337016T3 (en) 2004-04-30 2018-04-23 Idhl Holdings Inc Free space pointing device with slope compensation and improved applicability
US8629836B2 (en) 2004-04-30 2014-01-14 Hillcrest Laboratories, Inc. 3D pointing devices with orientation compensation and improved usability
US7138979B2 (en) * 2004-08-27 2006-11-21 Motorola, Inc. Device orientation based input signal generation
FR2877113B1 (en) * 2004-10-22 2007-05-11 Commissariat Energie Atomique AUTONOMOUS DEVICE, SYSTEM AND METHOD FOR NAVIGATION IN A SPACE OF AT LEAST THREE DIMENSIONS.
US8760522B2 (en) 2005-10-21 2014-06-24 I-Interactive Llc Multi-directional remote control system and method
US8842186B2 (en) 2004-10-25 2014-09-23 I-Interactive Llc Control system and method employing identification of a displayed image
US8456534B2 (en) 2004-10-25 2013-06-04 I-Interactive Llc Multi-directional remote control system and method
WO2006058129A2 (en) 2004-11-23 2006-06-01 Hillcrest Laboratories, Inc. Semantic gaming and application transformation
US7216053B2 (en) * 2004-12-30 2007-05-08 Nokia Corporation Low power motion detector
US20060164393A1 (en) * 2005-01-24 2006-07-27 Chic Technology Corp. Highly sensitive inertial mouse
US20060169021A1 (en) * 2005-01-28 2006-08-03 Silverstein D A Method and apparatus for calibration of a motion sensing device in a portable apparatus
US7889186B2 (en) * 2005-04-29 2011-02-15 Avago Technologies Ecbu Ip (Singapore) Pte. Ltd. Pen input device and method for tracking pen position
US7927216B2 (en) 2005-09-15 2011-04-19 Nintendo Co., Ltd. Video game system with wireless modular handheld controller
US8313379B2 (en) 2005-08-22 2012-11-20 Nintendo Co., Ltd. Video game system with wireless modular handheld controller
JP4805633B2 (en) 2005-08-22 2011-11-02 任天堂株式会社 Game operation device
US7942745B2 (en) 2005-08-22 2011-05-17 Nintendo Co., Ltd. Game operating device
US8870655B2 (en) 2005-08-24 2014-10-28 Nintendo Co., Ltd. Wireless game controllers
JP4262726B2 (en) 2005-08-24 2009-05-13 任天堂株式会社 Game controller and game system
US8308563B2 (en) 2005-08-30 2012-11-13 Nintendo Co., Ltd. Game system and storage medium having game program stored thereon
US8157651B2 (en) 2005-09-12 2012-04-17 Nintendo Co., Ltd. Information processing program
JP2009514106A (en) * 2005-10-26 2009-04-02 株式会社ソニー・コンピュータエンタテインメント System and method for interfacing with a computer program
US20070113207A1 (en) * 2005-11-16 2007-05-17 Hillcrest Laboratories, Inc. Methods and systems for gesture classification in 3D pointing devices
JP4202366B2 (en) * 2006-03-08 2008-12-24 任天堂株式会社 Motion discrimination device and motion discrimination program
JP4530419B2 (en) 2006-03-09 2010-08-25 任天堂株式会社 Coordinate calculation apparatus and coordinate calculation program
JP4151982B2 (en) 2006-03-10 2008-09-17 任天堂株式会社 Motion discrimination device and motion discrimination program
JP4684147B2 (en) 2006-03-28 2011-05-18 任天堂株式会社 Inclination calculation device, inclination calculation program, game device, and game program
US8210943B1 (en) 2006-05-06 2012-07-03 Sony Computer Entertainment America Llc Target interface
US8814641B2 (en) * 2006-05-08 2014-08-26 Nintendo Co., Ltd. System and method for detecting moment of impact and/or strength of a swing based on accelerometer data
KR100827236B1 (en) * 2006-05-23 2008-05-07 삼성전자주식회사 Pointing Device, Pointer movement method and Apparatus for displaying the pointer
US8013838B2 (en) 2006-06-30 2011-09-06 Microsoft Corporation Generating position information using a video camera
JP2009534690A (en) * 2006-07-10 2009-09-24 メムシック,インコーポレイテッド System for sensing yaw using magnetic field sensor and portable electronic device using said system
US9405372B2 (en) * 2006-07-14 2016-08-02 Ailive, Inc. Self-contained inertial navigation system for interactive control using movable controllers
US8384665B1 (en) * 2006-07-14 2013-02-26 Ailive, Inc. Method and system for making a selection in 3D virtual environment
US8781151B2 (en) 2006-09-28 2014-07-15 Sony Computer Entertainment Inc. Object detection using video input combined with tilt angle information
US8310656B2 (en) 2006-09-28 2012-11-13 Sony Computer Entertainment America Llc Mapping movements of a hand-held controller to the two-dimensional image plane of a display screen
USRE48417E1 (en) 2006-09-28 2021-02-02 Sony Interactive Entertainment Inc. Object direction using video input combined with tilt angle information
US8291346B2 (en) * 2006-11-07 2012-10-16 Apple Inc. 3D remote control system employing absolute and relative position detection
US9526995B2 (en) * 2006-11-22 2016-12-27 Sony Interactive Entertainment America Llc Video game recording and playback with visual display of game controller manipulation
TWI319539B (en) * 2006-11-29 2010-01-11 Ind Tech Res Inst Pointing device
JP5177735B2 (en) * 2006-12-01 2013-04-10 任天堂株式会社 GAME PROGRAM AND GAME DEVICE
US8194034B2 (en) * 2006-12-20 2012-06-05 Verizon Patent And Licensing Inc. Systems and methods for controlling a display
US10437459B2 (en) * 2007-01-07 2019-10-08 Apple Inc. Multitouch data fusion
JP5127242B2 (en) 2007-01-19 2013-01-23 任天堂株式会社 Acceleration data processing program and game program
US8167803B2 (en) 2007-05-16 2012-05-01 Verathon Inc. System and method for bladder detection using harmonic imaging
JP5035972B2 (en) * 2007-06-13 2012-09-26 任天堂株式会社 Information processing program, information processing apparatus, information processing system, and information processing method
JP4916390B2 (en) * 2007-06-20 2012-04-11 任天堂株式会社 Information processing program, information processing apparatus, information processing system, and information processing method
US7860676B2 (en) 2007-06-28 2010-12-28 Hillcrest Laboratories, Inc. Real-time dynamic tracking of bias
CN101627281B (en) 2007-07-06 2012-12-12 索尼株式会社 Input device, controller, control system, control method, and hand-held device
US8237656B2 (en) * 2007-07-06 2012-08-07 Microsoft Corporation Multi-axis motion-based remote control
US7826999B1 (en) 2007-08-20 2010-11-02 Pni Corporation Magnetic tilt compensated heading compass with adaptive zoffset
US20090062943A1 (en) * 2007-08-27 2009-03-05 Sony Computer Entertainment Inc. Methods and apparatus for automatically controlling the sound level based on the content
US8810511B2 (en) * 2007-09-11 2014-08-19 Gm Global Technology Operations, Llc Handheld electronic device with motion-controlled cursor
US20090066637A1 (en) * 2007-09-11 2009-03-12 Gm Global Technology Operations, Inc. Handheld electronic device with motion-controlled display
KR20090034096A (en) * 2007-10-02 2009-04-07 삼성전자주식회사 Apparatus and method for error correct, 3d pointing device using the same
WO2009051665A1 (en) 2007-10-16 2009-04-23 Hillcrest Laboratories, Inc. Fast and smooth scrolling of user interfaces operating on thin clients
JP2009301531A (en) * 2007-10-22 2009-12-24 Sony Corp Space operation type apparatus, control apparatus, control system, control method, method of producing space operation input apparatus, and handheld apparatus
US20090153475A1 (en) * 2007-12-14 2009-06-18 Apple Inc. Use of a remote controller Z-direction input mechanism in a media system
US8881049B2 (en) * 2007-12-14 2014-11-04 Apple Inc. Scrolling displayed objects using a 3D remote controller in a media system
US8341544B2 (en) 2007-12-14 2012-12-25 Apple Inc. Scroll bar with video region in a media system
US8542907B2 (en) * 2007-12-17 2013-09-24 Sony Computer Entertainment America Llc Dynamic three-dimensional object mapping for user-defined control device
TWI374373B (en) * 2008-02-05 2012-10-11 Asustek Comp Inc Handheld pointing device and pointing method thereof and bias drift improving method
US9520743B2 (en) * 2008-03-27 2016-12-13 Echostar Technologies L.L.C. Reduction of power consumption in remote control electronics
US20090259432A1 (en) * 2008-04-15 2009-10-15 Liberty Matthew G Tracking determination based on intensity angular gradient of a wave
US20090315766A1 (en) 2008-06-19 2009-12-24 Microsoft Corporation Source switching for devices supporting dynamic direction information
US20100009662A1 (en) 2008-06-20 2010-01-14 Microsoft Corporation Delaying interaction with points of interest discovered based on directional device information
US8010313B2 (en) * 2008-06-27 2011-08-30 Movea Sa Hand held pointing device with roll compensation
EP2140915B1 (en) 2008-06-30 2019-03-06 Nintendo Co., Ltd. Orientation calculation apparatus, storage medium having orientation calculation program stored therein, game apparatus, and storage medium having game program stored therein
KR101617562B1 (en) * 2008-07-01 2016-05-02 힐크레스트 래보래토리스, 인크. 3d pointer mapping
US8342926B2 (en) * 2008-07-13 2013-01-01 Sony Computer Entertainment America Llc Game aim assist
KR20100018125A (en) * 2008-08-06 2010-02-17 삼성전자주식회사 Method and apparatus for pointing in portable terminal
CA2732997C (en) 2008-08-07 2017-03-14 Verathon Inc. Device, system, and method to measure abdominal aortic aneurysm diameter
WO2010042703A2 (en) 2008-10-09 2010-04-15 Hillcrest Laboratories, Inc. Methods and systems for analyzing parts of an electronic file
JP5464416B2 (en) 2008-10-31 2014-04-09 ソニー株式会社 Input device and method, and program
KR101185589B1 (en) * 2008-11-14 2012-09-24 (주)마이크로인피니티 Method and Device for inputing user's commands based on motion sensing
US8970707B2 (en) * 2008-12-17 2015-03-03 Sony Computer Entertainment Inc. Compensating for blooming of a shape in an image
US8761434B2 (en) * 2008-12-17 2014-06-24 Sony Computer Entertainment Inc. Tracking system calibration by reconciling inertial data with computed acceleration of a tracked object in the three-dimensional coordinate system
US8253801B2 (en) * 2008-12-17 2012-08-28 Sony Computer Entertainment Inc. Correcting angle error in a tracking system
US8441388B2 (en) 2009-01-06 2013-05-14 Hong Kong Applied Science And Technology Research Institute Co., Ltd. Remote control devices and methods
JP4725818B2 (en) * 2009-02-20 2011-07-13 ソニー株式会社 INPUT DEVICE AND METHOD, INFORMATION PROCESSING SYSTEM, AND PROGRAM
JP5669294B2 (en) * 2009-09-30 2015-02-12 任天堂株式会社 Coordinate calculation apparatus and coordinate calculation program
US9058063B2 (en) * 2009-05-30 2015-06-16 Sony Computer Entertainment Inc. Tracking system calibration using object position and orientation
US8898034B2 (en) * 2009-06-03 2014-11-25 Apple Inc. Automatically identifying geographic direction
US8437970B2 (en) * 2009-06-05 2013-05-07 Apple Inc. Restoring and storing magnetometer calibration data
US8239153B2 (en) 2009-06-05 2012-08-07 Apple Inc. Dynamic compass calibration in a portable device
KR101607476B1 (en) * 2009-06-12 2016-03-31 삼성전자주식회사 Apparatus and method for motion detection in portable terminal
US8872767B2 (en) 2009-07-07 2014-10-28 Microsoft Corporation System and method for converting gestures into digital graffiti
US8475371B2 (en) 2009-09-01 2013-07-02 Adidas Ag Physiological monitoring garment
US8626465B2 (en) 2010-03-30 2014-01-07 Apple Inc. Calibrating sensor measurements on mobile devices
US10852069B2 (en) 2010-05-04 2020-12-01 Fractal Heatsink Technologies, LLC System and method for maintaining efficiency of a fractal heat sink
US9436219B2 (en) * 2010-05-12 2016-09-06 Litl Llc Remote control to operate computer system
US9201516B2 (en) 2010-06-03 2015-12-01 Hillcrest Laboratories, Inc. Determining forward pointing direction of a handheld device
KR20110135707A (en) * 2010-06-11 2011-12-19 엘지전자 주식회사 Remote controller and method for controlling operation of the same
US8977987B1 (en) 2010-06-14 2015-03-10 Google Inc. Motion-based interface control on computing device
WO2012023295A1 (en) * 2010-08-18 2012-02-23 三菱電機株式会社 Electrical device, control method, and program
KR101769819B1 (en) * 2010-11-15 2017-08-21 엘지전자 주식회사 Method for operating an apparatus for displaying image
WO2012075629A1 (en) * 2010-12-08 2012-06-14 Nokia Corporation User interface
US8761412B2 (en) 2010-12-16 2014-06-24 Sony Computer Entertainment Inc. Microphone array steering with image-based source location
US9030405B2 (en) 2011-02-04 2015-05-12 Invensense, Inc. High fidelity remote controller device for digital living room
WO2012125596A2 (en) 2011-03-12 2012-09-20 Parshionikar Uday Multipurpose controller for electronic devices, facial expressions management and drowsiness detection
FI20115250L (en) * 2011-03-14 2012-09-15 Vti Technologies Oy POINTING METHOD, DEVICE AND SYSTEM THEREOF
US8615253B2 (en) 2011-06-03 2013-12-24 Apple Inc. State estimation using motion context and multiple input observation types
US9069380B2 (en) 2011-06-10 2015-06-30 Aliphcom Media device, application, and content management using sensory input
US20130194066A1 (en) * 2011-06-10 2013-08-01 Aliphcom Motion profile templates and movement languages for wearable devices
US9007302B1 (en) 2011-11-11 2015-04-14 Benjamin D. Bandt-Horn Device and user interface for visualizing, navigating, and manipulating hierarchically structured information on host electronic devices
US9683865B2 (en) 2012-01-26 2017-06-20 Invensense, Inc. In-use automatic calibration methodology for sensors in mobile devices
US8638190B1 (en) 2012-02-02 2014-01-28 Google Inc. Gesture detection using an array of short-range communication devices
US8515413B1 (en) 2012-02-02 2013-08-20 Google Inc. Controlling a target device using short-range communication
US8504008B1 (en) 2012-02-02 2013-08-06 Google Inc. Virtual control panels using short-range communication
US8565791B1 (en) 2012-02-02 2013-10-22 Google Inc. Computing device interaction with visual media
US9228842B2 (en) 2012-03-25 2016-01-05 Sensor Platforms, Inc. System and method for determining a uniform external magnetic field
US10922383B2 (en) * 2012-04-13 2021-02-16 Adidas Ag Athletic activity monitoring methods and systems
US9257054B2 (en) 2012-04-13 2016-02-09 Adidas Ag Sport ball athletic activity monitoring methods and systems
JP2013222399A (en) * 2012-04-18 2013-10-28 Sony Corp Operation method, control device and program
HK1174488A2 (en) * 2012-04-20 2013-06-07 Hihex Ltd Remote interaction system and control thereof
US8698746B1 (en) * 2012-04-24 2014-04-15 Google Inc. Automatic calibration curves for a pointing device
JP5461735B2 (en) * 2012-04-27 2014-04-02 パナソニック株式会社 Input device, input support method, and program
US20130338539A1 (en) * 2012-06-14 2013-12-19 International Business Machines Corporation Software program for monitoring a hand tremor of an end-user via a computer mouse input device
US20140035827A1 (en) * 2012-07-31 2014-02-06 Elwha LLC, a liability company of the State of Delaware Touch screen display compensated for a carrier-induced motion
KR101420727B1 (en) * 2012-11-28 2014-07-23 서강대학교산학협력단 Method for rotating virtual camera on touchscreen-based device
US11194368B2 (en) * 2012-12-10 2021-12-07 Adobe Inc. Accelerometer-based biometric data
US10147564B2 (en) 2013-02-07 2018-12-04 Universal Electronics Inc. System and methods for providing orientation compensation in pointing devices
EP3054693B1 (en) 2013-10-02 2019-12-25 Samsung Electronics Co., Ltd Image display apparatus and pointing method for same
JP6370165B2 (en) * 2013-10-25 2018-08-08 三星電子株式会社Samsung Electronics Co.,Ltd. Pointing device, pointing method, program, and image display device
JP5613314B1 (en) * 2013-11-14 2014-10-22 Jfeシステムズ株式会社 Gesture detection device, gesture detection program, gesture recognition device, and gesture recognition program
US9612251B2 (en) * 2014-09-30 2017-04-04 Meng Liang Chen G-force measurement system with a horizontally deviated accelerometer
CN105808182B (en) 2015-01-15 2019-09-17 财团法人工业技术研究院 Display control method and system, advertisement breach judging device and video and audio processing device
EP3283185A1 (en) * 2015-04-15 2018-02-21 Thomson Licensing Configuring translation of three dimensional movement
FR3035718B1 (en) * 2015-04-28 2017-05-26 Centre Nat Detudes Spatiales Cnes METHOD FOR CONTROLLING A CALCULATION DEVICE VIA A MOBILE ELEMENT AND A CONTROL SYSTEM USING THE SAME
US9818310B2 (en) 2015-06-22 2017-11-14 Verily Life Sciences Llc Assessment of nutrition intake using a handheld tool
US9891245B2 (en) * 2015-06-29 2018-02-13 CloudNav Inc. Real-time accelerometer calibration
ITUA20163019A1 (en) * 2016-04-29 2017-10-29 St Microelectronics Srl MEMS INERTIAL SENSOR DEVICE WITH DETERMINATION OF THE SHIFT VALUE OF A RELATIVE GYROSCOPE AND A CORRESPONDING METHOD
KR101942264B1 (en) * 2016-11-18 2019-01-25 (주)유엔디 System and method for posture correcting
US11042262B2 (en) * 2017-02-01 2021-06-22 Opentv, Inc. Menu modification based on controller manipulation data
AU2017413929B2 (en) 2017-05-12 2022-07-14 Razer (Asia-Pacific) Pte. Ltd. Pointing devices and methods for providing user inputs to a computing device
US20190302903A1 (en) * 2018-03-30 2019-10-03 Microsoft Technology Licensing, Llc Six dof input device
US10989563B2 (en) 2018-06-25 2021-04-27 CloudNav Inc. Automatic calibration of rate gyroscope sensitivity
US11273367B1 (en) * 2019-09-24 2022-03-15 Wayne Hughes Beckett Non-CRT pointing device
US11941184B2 (en) * 2021-05-18 2024-03-26 Snap Inc. Dynamic initialization of 3DOF AR tracking system

Citations (5)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US4839838A (en) 1987-03-30 1989-06-13 Labiche Mitchell Spatial input apparatus
US5128671A (en) 1990-04-12 1992-07-07 Ltv Aerospace And Defense Company Control device having multiple degrees of freedom
US5440326A (en) 1990-03-21 1995-08-08 Gyration, Inc. Gyroscopic pointer
US5453758A (en) 1992-07-31 1995-09-26 Sony Corporation Input apparatus
US5819206A (en) 1994-01-21 1998-10-06 Crossbow Technology, Inc. Method and apparatus for determining position and orientation of a moveable object using accelerometers

Family Cites Families (59)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US4787051A (en) 1986-05-16 1988-11-22 Tektronix, Inc. Inertial mouse system
US5045843B1 (en) 1988-12-06 1996-07-16 Selectech Ltd Optical pointing device
US5138154A (en) 1990-04-04 1992-08-11 Gyration Inc. Shaft angle encoder with rotating off-axis interference pattern
US5396265A (en) 1990-09-17 1995-03-07 Massachusetts Institute Of Technology Three-dimensional tactile computer input device
US5181181A (en) 1990-09-27 1993-01-19 Triton Technologies, Inc. Computer apparatus input device for three-dimensional information
US6069594A (en) 1991-07-29 2000-05-30 Logitech, Inc. Computer input device with multiple switches using single line
US6400996B1 (en) 1999-02-01 2002-06-04 Steven M. Hoffberg Adaptive pattern recognition based control system and method
US5359348A (en) 1992-05-21 1994-10-25 Selectech, Ltd. Pointing device having improved automatic gain control and information reporting
US5296871A (en) 1992-07-27 1994-03-22 Paley W Bradford Three-dimensional mouse with tactile feedback
US7098891B1 (en) 1992-09-18 2006-08-29 Pryor Timothy R Method for providing human input to a computer
JPH07284166A (en) * 1993-03-12 1995-10-27 Mitsubishi Electric Corp Remote controller
JPH0744315A (en) * 1993-05-21 1995-02-14 Sony Corp Input device
US5484355A (en) 1993-10-01 1996-01-16 Smith & Nephew Roylan, Inc. System for therapeutic exercise and evaluation
US5645077A (en) * 1994-06-16 1997-07-08 Massachusetts Institute Of Technology Inertial orientation tracker apparatus having automatic drift compensation for tracking human head and other similarly sized body
US6002394A (en) 1995-10-02 1999-12-14 Starsight Telecast, Inc. Systems and methods for linking television viewers with advertisers and broadcasters
US6049823A (en) 1995-10-04 2000-04-11 Hwang; Ivan Chung-Shung Multi server, interactive, video-on-demand television system utilizing a direct-access-on-demand workgroup
US6100874A (en) 1995-11-17 2000-08-08 Immersion Corporation Force feedback mouse interface
US5703623A (en) 1996-01-24 1997-12-30 Hall; Malcolm G. Smart orientation sensing circuit for remote control
US5698784A (en) 1996-01-24 1997-12-16 Gyration, Inc. Vibratory rate gyroscope and methods of assembly and operation
US6164808A (en) 1996-02-09 2000-12-26 Murata Mfg. Co., Ltd. Three-dimensional data input device
US5825350A (en) 1996-03-13 1998-10-20 Gyration, Inc. Electronic pointing apparatus and method
US5835156A (en) 1996-08-14 1998-11-10 Samsung Electroncis, Ltd. Television graphical user interface employing remote random access pointing device
US5955988A (en) 1996-08-14 1999-09-21 Samsung Electronics Co., Ltd. Graphical user interface for establishing installation location for satellite based television system
US6016144A (en) 1996-08-14 2000-01-18 Samsung Electronics Co., Ltd. Multi-layered television graphical user interface
US6115028A (en) 1996-08-22 2000-09-05 Silicon Graphics, Inc. Three dimensional input system using tilt
US5796354A (en) 1997-02-07 1998-08-18 Reality Quest Corp. Hand-attachable controller with direction sensing
JP3776206B2 (en) * 1997-05-07 2006-05-17 株式会社リコー Pen-type input device
US5912612A (en) 1997-10-14 1999-06-15 Devolpi; Dean R. Multi-speed multi-direction analog pointing device
US6181329B1 (en) 1997-12-23 2001-01-30 Ricoh Company, Ltd. Method and apparatus for tracking a hand-held writing instrument with multiple sensors that are calibrated by placing the writing instrument in predetermined positions with respect to the writing surface
ES2257859T3 (en) 1998-05-13 2006-08-01 Sega Corporation COMMAND WITH FIREARM FORM.
US6369794B1 (en) 1998-09-09 2002-04-09 Matsushita Electric Industrial Co., Ltd. Operation indication outputting device for giving operation indication according to type of user's action
US6473713B1 (en) 1999-09-20 2002-10-29 American Gnc Corporation Processing method for motion measurement
US6753849B1 (en) 1999-10-27 2004-06-22 Ken Curran & Associates Universal remote TV mouse
US6466198B1 (en) * 1999-11-05 2002-10-15 Innoventions, Inc. View navigation and magnification of a hand-held device with a display
US7500917B2 (en) 2000-02-22 2009-03-10 Creative Kingdoms, Llc Magical wand and interactive play experience
US6766456B1 (en) * 2000-02-23 2004-07-20 Micron Technology, Inc. Method and system for authenticating a user of a computer system
JP2002011250A (en) 2000-04-25 2002-01-15 Nintendo Co Ltd Game system and portable game machine
US6757446B1 (en) 2000-11-27 2004-06-29 Microsoft Corporation System and process for image-based relativistic rendering
US6977645B2 (en) * 2001-03-16 2005-12-20 Agilent Technologies, Inc. Portable electronic device with mouse-like capabilities
US6929548B2 (en) 2002-04-23 2005-08-16 Xiaoling Wang Apparatus and a method for more realistic shooting video games on computers or similar devices
US6650313B2 (en) 2001-04-26 2003-11-18 International Business Machines Corporation Method and adapter for performing assistive motion data processing and/or button data processing external to a computer
US6847351B2 (en) 2001-08-13 2005-01-25 Siemens Information And Communication Mobile, Llc Tilt-based pointing for hand-held devices
US6993923B2 (en) * 2001-10-05 2006-02-07 Rich Beers Marine, Inc. Load bank
US20030107551A1 (en) 2001-12-10 2003-06-12 Dunker Garrett Storm Tilt input device
US6982697B2 (en) 2002-02-07 2006-01-03 Microsoft Corporation System and process for selecting objects in a ubiquitous computing environment
US6990639B2 (en) 2002-02-07 2006-01-24 Microsoft Corporation System and process for controlling electronic components in a ubiquitous computing environment using multimodal integration
US6984208B2 (en) * 2002-08-01 2006-01-10 The Hong Kong Polytechnic University Method and apparatus for sensing body gesture, posture and movement
US20040095317A1 (en) 2002-11-20 2004-05-20 Jingxi Zhang Method and apparatus of universal remote pointing control for home entertainment system and computer
US8745541B2 (en) 2003-03-25 2014-06-03 Microsoft Corporation Architecture for controlling a computer using hand gestures
US20040268393A1 (en) 2003-05-08 2004-12-30 Hunleth Frank A. Control framework with a zoomable graphical user interface for organizing, selecting and launching media items
US20040229693A1 (en) 2003-05-13 2004-11-18 Clifton Lind Multiple video display gaming machine and gaming system
US6998966B2 (en) 2003-11-26 2006-02-14 Nokia Corporation Mobile communication device having a functional cover for controlling sound applications by motion
US7173604B2 (en) * 2004-03-23 2007-02-06 Fujitsu Limited Gesture identification of controlled devices
US7301529B2 (en) 2004-03-23 2007-11-27 Fujitsu Limited Context dependent gesture response
DK2337016T3 (en) 2004-04-30 2018-04-23 Idhl Holdings Inc Free space pointing device with slope compensation and improved applicability
EP1759529A4 (en) 2004-04-30 2009-11-11 Hillcrest Lab Inc Free space pointing devices and method
WO2005109215A2 (en) 2004-04-30 2005-11-17 Hillcrest Laboratories, Inc. Methods and devices for removing unintentional movement in free space pointing devices
JP4685095B2 (en) 2004-04-30 2011-05-18 ヒルクレスト・ラボラトリーズ・インコーポレイテッド Method and device for identifying a user based on tremor
US7683883B2 (en) 2004-11-02 2010-03-23 Pierre Touma 3D mouse and game controller based on spherical coordinates system and system for use

Patent Citations (5)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US4839838A (en) 1987-03-30 1989-06-13 Labiche Mitchell Spatial input apparatus
US5440326A (en) 1990-03-21 1995-08-08 Gyration, Inc. Gyroscopic pointer
US5128671A (en) 1990-04-12 1992-07-07 Ltv Aerospace And Defense Company Control device having multiple degrees of freedom
US5453758A (en) 1992-07-31 1995-09-26 Sony Corporation Input apparatus
US5819206A (en) 1994-01-21 1998-10-06 Crossbow Technology, Inc. Method and apparatus for determining position and orientation of a moveable object using accelerometers

Non-Patent Citations (1)

* Cited by examiner, † Cited by third party
Title
See also references of EP1678585A4

Cited By (48)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US11416084B2 (en) 2004-05-28 2022-08-16 UltimatePointer, L.L.C. Multi-sensor device with an accelerometer for enabling user interaction through sound or image
US11755127B2 (en) 2004-05-28 2023-09-12 UltimatePointer, L.L.C. Multi-sensor device with an accelerometer for enabling user interaction through sound or image
US11409376B2 (en) 2004-05-28 2022-08-09 UltimatePointer, L.L.C. Multi-sensor device with an accelerometer for enabling user interaction through sound or image
US11402927B2 (en) 2004-05-28 2022-08-02 UltimatePointer, L.L.C. Pointing device
US11841997B2 (en) 2005-07-13 2023-12-12 UltimatePointer, L.L.C. Apparatus for controlling contents of a computer-generated image using 3D measurements
EP1758398A1 (en) 2005-08-23 2007-02-28 Syneola SA Multilevel semiotic and fuzzy logic user and metadata interface means for interactive multimedia system having cognitive adaptive capability
US8280827B2 (en) 2005-08-23 2012-10-02 Syneola Luxembourg Sa Multilevel semiotic and fuzzy logic user and metadata interface means for interactive multimedia system having cognitive adaptive capability
US7679601B2 (en) 2005-12-01 2010-03-16 Industrial Technology Research Institute Input means for interactive devices
WO2007083289A2 (en) * 2006-01-20 2007-07-26 France Telecom Spatially articulable interface and associated method of controlling an application framework
WO2007083289A3 (en) * 2006-01-20 2007-12-13 France Telecom Spatially articulable interface and associated method of controlling an application framework
US8751973B2 (en) 2006-05-18 2014-06-10 Samsung Electronics Co., Ltd Display method and system for portable device using external display device
EP1858238A3 (en) * 2006-05-18 2010-09-01 Samsung Electronics Co., Ltd. Display method and system for portable device using external display device
EP1858238A2 (en) 2006-05-18 2007-11-21 Samsung Electronics Co., Ltd. Display method and system for portable device using external display device
US7839386B2 (en) 2006-11-14 2010-11-23 Industrial Technology Research Institute Method and apparatus of signal processing and an inertial point device using the same
JP2008123485A (en) * 2006-11-14 2008-05-29 Ind Technol Res Inst Method and apparatus of signal processing and inertial positioning device using the signal processing
US8344998B2 (en) 2008-02-01 2013-01-01 Wimm Labs, Inc. Gesture-based power management of a wearable portable electronic device with display
WO2009139785A1 (en) * 2008-05-15 2009-11-19 Sony Ericsson Mobile Communications Ab Remote control based on image recognition
US9079102B2 (en) 2008-06-30 2015-07-14 Nintendo Co., Ltd. Calculation of coordinates indicated by a handheld pointing device
WO2010048000A3 (en) * 2008-10-20 2010-07-01 Sensor Platforms, Inc. System and method for determining an attitude of a device undergoing dynamic acceleration
WO2010048000A2 (en) * 2008-10-20 2010-04-29 Sensor Platforms, Inc. System and method for determining an attitude of a device undergoing dynamic acceleration
US8223121B2 (en) 2008-10-20 2012-07-17 Sensor Platforms, Inc. Host system and method for determining an attitude of a device undergoing dynamic acceleration
US9152249B2 (en) 2008-10-20 2015-10-06 Sensor Platforms, Inc. System and method for determining an attitude of a device undergoing dynamic acceleration
US8576169B2 (en) 2008-10-20 2013-11-05 Sensor Platforms, Inc. System and method for determining an attitude of a device undergoing dynamic acceleration
WO2010080383A1 (en) * 2009-01-07 2010-07-15 Sensor Platforms, Inc System and method for determining an attitude of a device undergoing dynamic acceleration using a kalman filter
US8587519B2 (en) 2009-01-07 2013-11-19 Sensor Platforms, Inc. Rolling gesture detection using a multi-dimensional pointing device
US8515707B2 (en) 2009-01-07 2013-08-20 Sensor Platforms, Inc. System and method for determining an attitude of a device undergoing dynamic acceleration using a Kalman filter
US9772694B2 (en) 2009-03-09 2017-09-26 Nintendo Co., Ltd. Coordinate calculation apparatus and storage medium having coordinate calculation program stored therein
US9506754B2 (en) 2009-06-05 2016-11-29 Apple Inc. Magnetometer accuracy and use
US9116002B2 (en) 2009-08-27 2015-08-25 Apple Inc. Context determination to assist location determination accuracy
US8907893B2 (en) 2010-01-06 2014-12-09 Sensor Platforms, Inc. Rolling gesture detection using an electronic device
CN102822626A (en) * 2010-03-30 2012-12-12 苹果公司 Determining heading using magnetometer data and angular rate data
CN102822626B (en) * 2010-03-30 2016-01-20 苹果公司 Calibration sensor measurement on the mobile device
US9513714B2 (en) 2010-09-02 2016-12-06 Qualcomm Incorporated Methods and apparatuses for gesture-based user input detection in a mobile device
US9229084B2 (en) 2010-10-06 2016-01-05 Apple Inc. Magnetometer calibration
US8957909B2 (en) 2010-10-07 2015-02-17 Sensor Platforms, Inc. System and method for compensating for drift in a display of a user interface state
CN102082900A (en) * 2010-11-29 2011-06-01 中国科学院西安光学精密机械研究所 Rotation-eliminating camera system
CN102082900B (en) * 2010-11-29 2012-11-07 中国科学院西安光学精密机械研究所 Rotation-eliminating camera system
CN102088549A (en) * 2010-11-29 2011-06-08 中国科学院西安光学精密机械研究所 Rotation-eliminating camera shooting method
CN102740189A (en) * 2011-04-01 2012-10-17 中国科学院声学研究所 Acoustic feedback inhibition method based on time reversal
US9459276B2 (en) 2012-01-06 2016-10-04 Sensor Platforms, Inc. System and method for device self-calibration
US9316513B2 (en) 2012-01-08 2016-04-19 Sensor Platforms, Inc. System and method for calibrating sensors for different operating environments
WO2013104006A3 (en) * 2012-01-08 2013-11-07 Sensor Platforms, Inc. System and method for calibrating sensors for different operating environments
US10261630B2 (en) 2012-04-27 2019-04-16 Panasonic Intellectual Property Corporation Of America Input device, input support method, and program
US9423252B2 (en) 2012-09-11 2016-08-23 Apple Inc. Using clustering techniques to improve magnetometer bias estimation
CN102915126B (en) * 2012-09-29 2016-03-02 深圳创维数字技术有限公司 A kind of method, Apparatus and system of light ray remote-control location
CN102915126A (en) * 2012-09-29 2013-02-06 深圳创维数字技术股份有限公司 Method, device and system of light ray remote-control positioning
US9726498B2 (en) 2012-11-29 2017-08-08 Sensor Platforms, Inc. Combining monitoring sensor measurements and system signals to determine device context
US9151610B2 (en) 2013-06-08 2015-10-06 Apple Inc. Validating calibrated magnetometer data

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US20050174324A1 (en) 2005-08-11
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JP2007509448A (en) 2007-04-12
US7489299B2 (en) 2009-02-10
KR20060118448A (en) 2006-11-23
WO2005040991A3 (en) 2006-07-06

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