IP Library › Granted Patent US 12,019,801
Granted Patent B2
US 12,019,801 · App. 18/121,877 · Granted Jun 25, 2024

Wearable computing apparatus for augmented reality, virtual reality and artificial intelligence interactions, and methods relating thereto

Inventor: Olaoluwa O. Adesanya (Redmond, WA)
G06F3/014G06F3/016G06F3/017G06F3/0383G06F3/14G06F3/041G06F3/167G06F2203/0384H04N23/57
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Quick Facts
Patent No.
US 12,019,801
App. No.
18/121,877
Granted
Jun 25, 2024
Kind
B2
Abstract

Wearable computing apparatuses, which can be adapted to be worn on a user's hand, are provided for augmented reality, virtual reality, and artificial intelligence interactions. Generally, the wearable computing apparatus can include a first subassembly comprising one or more processors, non-transitory memory for storing instructions, at least one haptic motor, and a first set of sensors configured to measure positional characteristics associated with a user's hand. The wearable computing apparatus can further comprise a second subassembly removably coupled to the first subassembly, the second subassembly including a plurality of leads each of which is attached to a finger and comprises a distal portion that houses a haptic motor and a second set of sensors. The second set of sensors is configured to measure positional characteristics associated with the user's fingers.

Claims (30)

1. A wearable computing apparatus adapted to be worn on a user's hand, the wearable computing apparatus comprising:

a first subassembly, comprising:

a first set of sensors adapted to sense a plurality of positional characteristics associated with the user's hand;

one or more processors;

a non-transitory memory coupled to the one or more processors, the non-transitory memory for storing instructions that, when executed by the one or more processors, cause the one or more processors to detect signals received from the first set of sensors and determine a relative position of the user's hand;

at least one haptic motor of the first subassembly; and

a first connector interface configured to communicatively couple the first subassembly to a second subassembly; and

the second subassembly, comprising:

an adjustable strap adapted to secure the second subassembly to the user's hand;

a second connector interface configured to mate with the first connector interface of the first subassembly; and

a plurality of flexible leads, wherein each of the plurality of flexible leads is configured to be removably secured to a finger of the user's hand, wherein a proximal portion of each flexible lead is coupled to the second connector interface, and wherein a distal portion of each flexible lead includes a haptic motor of the second subassembly and a second set of sensors adapted to sense a plurality of positional characteristics associated with the secured finger.

2. The wearable computing apparatus of claim 1 , wherein the instructions stored in the non-transitory memory of the first subassembly, when executed by the one or more processors, further cause the one or more processors to detect signals received from the second set of sensors and determine a relative position of each finger of the user's hand.

3. The wearable computing apparatus of claim 1 , wherein the first subassembly further comprises a housing including a top surface and at least one side surface, and a camera disposed on the at least one side surface.

4. The wearable computing apparatus of claim 1 , wherein the first subassembly further comprises a touchscreen display disposed on a top surface of a housing of the first subassembly.

5. The wearable computing apparatus of claim 1 , wherein the first subassembly further comprises at least one of a battery, a microphone, a Bluetooth or Bluetooth Low Energy module, and a wireless communication module.

6. The wearable computing apparatus of claim 1 , wherein the first subassembly further comprises a micro USB port disposed on at least one side surface of a housing of the first subassembly.

7. The wearable computing apparatus of claim 1 , wherein the first set of sensors includes at least one of an accelerometer and a gyroscope sensor.

8. The wearable computing apparatus of claim 1 , wherein the second set of sensors includes at least one of an accelerometer and a gyroscope sensor.

9. The wearable computing apparatus of claim 1 ,

wherein the second subassembly further comprises:

an adjustable strap adapted to secure the second subassembly to the user's hand;

a camera disposed on a portion of the adjustable strap proximate to a user's palm; and

a flexible lead embedded in the adjustable strap, wherein the flexible lead is configured to communicatively couple the camera to the first subassembly.

10. The wearable computing apparatus of claim 9 , wherein the first subassembly further comprises a housing including a top surface and a touchscreen display disposed on the top surface of the housing.

11. The wearable computing apparatus of claim 10 , wherein the instructions stored in the non-transitory memory of the first subassembly, when executed by the one or more processors, further cause the one or more processors to:

receive visual input from the camera of the second subassembly, wherein the visual input includes data indicative of a real-world environment,

generate a predefined three-dimensional virtual object according to the visual input, and

output the visual input and the predefined three-dimensional virtual object to the touchscreen display.

12. The wearable computing apparatus of claim 11 , wherein the camera is a depth camera.

13. The wearable computing apparatus of claim 1 , wherein the first subassembly is configured to be removable from the second subassembly.

Continuity (5)
Continuation 17487919 · Sep 28, 2021
Continuation 16909280 · Jun 23, 2020
Continuation PCTUS2018067263 · Dec 21, 2018
Provisional Application 62610843 · Dec 27, 2017
Related Publication 20240061503A1 · Feb 22, 2024