IP Library Granted Patent US 10,521,026
Granted Patent B2
US 10,521,026 · App. 16/192,510 · Granted Dec 31, 2019

Passive optical and inertial tracking in slim form-factor

Inventors: Alexandru Octavian Balan (Sammamish, WA); Constantin Dulu (Bothell, WA); Christopher Douglas Edmonds (Carnation, WA); Mark James Finocchio (Redmond, WA)
Assignee: Microsoft Technology Licensing, LLC
G06F3/0346A63F13/211A63F13/24G02B27/0093G02B27/0172G06F3/011G06F3/013G06F3/017G06F3/038G06T19/006H04N13/204H04N13/257H04N13/344H04N13/383H04N13/398A63F2300/105A63F2300/8082G02B2027/014G02B2027/0134G02B2027/0138H04N2213/001
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Quick Facts
Patent No.
US 10,521,026
App. No.
16/192,510
Filed
Nov 15, 2018
Granted
Dec 31, 2019
Kind
B2
Examiner
CHENG, JOE H
Art Unit
2626
USPC
345/158
Abstract

Systems are provided that include a wireless hand-held inertial controller with passive optical and inertial tracking in a slim form-factor. These systems are configured for use with a head mounted virtual or augmented reality display device (HMD) that operates with six degrees of freedom by fusing (i) data related to the position of the controller derived from a forward-facing optical sensor located in the HMD with (ii) data relating to the orientation of the controller derived from an inertial measurement unit located in the controller.

Claims (28)

1. A hand-held controller for use in a virtual or augmented reality computing environment that includes a head mounted display (HMD) device that determines at least a position of the hand-held controller based on detected position data associated with at least two different optical reflectors positioned on the hand-held controller, the hand-held controller comprising:

a body having a first end, a second end and a middle portion between the first end and the second end, the body also including a first optically reflective marker at or proximate the first end and a second optically reflective marker positioned separately from the first optically reflective marker at or proximate the second end, the first and second optically reflective markers being adapted to reflect IR (infrared) light emitted from the HMD device, toward an optical sensor for the HMD device, wherein the IR light that is reflected to the HMD device is used to generate position data of the hand-held controller by the HMD device; and

the middle portion enclosing at least one of (1) an inertial measurement unit (IMU) that tracks orientation data of the hand-held inertial controller or (2) one or more buttons configured and positioned for selective actuation by a finger or thumb of a user to receive user inputs, as well as a communications radio configured to provide providing wireless communications between the hand-held inertial controller and the HMD device, so as to provide the orientation data and/or user inputs to the HMD device.

2. The hand-held controller of claim 1 , wherein the first optically reflective marker and the second optically reflective marker each comprise an infrared marker.

3. The hand-held controller of claim 2 further comprising a material covering the first and second optically reflective markers that is transmissive to light in the IR spectrum but opaque to light in the visible spectrum.

4. The hand-held controller of claim 3 , wherein the hand-held controller is shaped as an elongate stylus.

5. The hand-held controller of claim 4 , wherein the IMU comprises one or more of a 3-axis accelerometer, a 3-axis gyroscope and a 3-axis magnetometer.

6. The hand-held controller of claim 5 , wherein the orientation data comprises θ pitch , θ yaw and θ roll coordinates.

7. A system comprising:

a head mounted display (HMD) device having a processor; and

a wireless hand-held inertial controller configured to communicate with the processor to selectively provide at least one of user inputs or orientation data to the processor, the hand-held inertial controller comprising:

a body having a first end, a second end and a middle portion between the first end and the second end, the body also including a first optically reflective marker at or proximate the first end and a second optically reflective marker positioned separately from the first optically reflective marker at or proximate the second end, the first and second optically reflective markers being adapted to reflect IR (infrared) light emitted from the HMD device, toward an optical sensor for the HMD device, wherein the IR light that is reflected to the HMD device is used to generate position data of the hand-held controller by the HMD device; and

the middle portion enclosing at least one of (1) an inertial measurement unit (IMU) that tracks orientation data of the hand-held inertial controller and a communications radio configured to provide wireless communications between the hand-held inertial controller and the HMD device, so as to provide the orientation data the HMD device;

wherein the HMD device further includes an optical sensor configured for determining the position of each of the first and second optically reflective markers relative to the HMD device based on reflected light that is detected by the optical sensor after it is emitted by the light source and reflected off of at least one of the first or second optically reflective markers, and

wherein the processor uses the orientation data and the position data obtained from the optical sensor to track the hand-held inertial controller within three dimensional space with six degrees of freedom.

8. The system of claim 7 , wherein the HMD device comprises a virtual reality display.

9. The system of claim 7 , wherein the HMD device comprises a three dimensional, augmented reality display.

10. The system of claim 9 , wherein at least one of the first optically reflective marker or the second optically reflective marker comprise an infrared marker.

11. The system of claim 10 , further comprising a material covering the first optically reflective marker and the second optically reflective marker that is transmissive to light in the IR spectrum but opaque to light in the visible spectrum.

12. The system of claim 10 , wherein the hand-held inertial controller is shaped in form of an object used in one or more video games and wherein the hand-held inertial controller further includes one or more buttons configured and positioned for selective actuation by a finger or thumb of a user to receive user inputs that are transmitted to the processor by the communications radio.

13. The system of claim 9 , wherein the IMU comprises one or more of a 3-axis accelerometer, a 3-axis gyroscope and a 3-axis magnetometer.

14. The system of claim 13 , wherein the orientation data comprises θ pitch , θ yaw and θ roll coordinates.

15. The system of claim 9 , wherein the optical sensor comprises a depth camera.

16. The system of claim 15 , wherein the depth camera is an infrared depth camera.

17. The system of claim 16 , wherein the depth camera is mounted on the HMD device in a forward facing orientation relative to the HMD device.

18. The system of claim 9 , wherein the position data comprises x, y and z coordinates.

19. The system of claim 9 , wherein the orientation data and the position data of the hand-held inertial controller is transformed by the processor into x, y, z, θ pitch , θ yaw and θ roll coordinates within a real world frame of reference.

20. The system of claim 9 , wherein the communications radio is a Bluetooth radio and the wireless communications are Bluetooth transmissions.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Nov 15, 2018
From: BALAN, ALEXANDRU OCTAVIAN; DULU, CONSTANTIN; EDMONDS, CHRISTOPHER DOUGLAS; FINNOCHIO, MARK JAMES
To: MICROSOFT TECHNOLOGY LICENSING, LLC
Reel/Frame 047518/0622 →
Continuity (3)
Continuation 15274334 · Sep 23, 2016
Provisional Application 62347842 · Jun 9, 2016
Related Publication 20190087021A1 · Mar 21, 2019