Artificial Intelligence Enabled Rollator
20240407965 ยท 2024-12-12
Inventors
Cpc classification
A61H2201/5041
HUMAN NECESSITIES
A61H2201/0161
HUMAN NECESSITIES
A61H3/04
HUMAN NECESSITIES
International classification
A61H3/04
HUMAN NECESSITIES
Abstract
The present invention is a battery-powered, remote-controllable rollator with embedded computer systems and computer vision system. The present invention recognizes the user's face by using artificial intelligence technology, namely, the deep convolutional neural networks, and uses that information to localize the rollator's position in relation to the user. An artificial intelligence algorithm computes the motion path and drives the present invention to the user. The present invention can automatically stop once approached to a preset stopping distance from the user. Once stationary, the present invention can then be used by the user.
Claims
1. A battery-powered, motorized rollator comprising: a rollator; a plurality of motorized wheels; a plurality of swivel wheels; a plurality of mechanical hand brakes; a front color camera; a rear color camera; a rechargeable battery; an emergency battery power switch; an instrument panel; a control module; an embedded computer; a plurality of software program modules; a magnetometer; an acceleration sensor; an impact detection sensor, and a plurality of proximity sensors; wherein said front color camera, said rear color camera, said magnetometer, said acceleration sensor, said impact detection sensor, and said plurality of proximity sensors record and provide data to said embedded computer to enable self-driving by controlling said plurality of motorized wheels.
2. The battery-powered, motorized rollator of claim 1, wherein said plurality of software program modules further comprise: a WiFi module; a Bluetooth module; a color camera module; a video streaming module; a computer vision module; a deep learning module; a facial recognition module; a smartphone interface module; a proximity sensor module; a motion monitoring module; a manual driving module; an acceleration sensor module; a path planning module; a customized IO module; and a motor controller module, wherein said embedded computer executes software program modules to realize artificial intelligence function including path planning, facial recognition, and motor control of said rollator.
3. The battery-powered, motorized rollator of claim 1, wherein said rollator is foldable.
4. The battery-powered, motorized rollator of claim 1, wherein said plurality of motorized wheels are brushless direct current hub motors.
5. The battery-powered, motorized rollator of claim 1, further comprising: a smartphone application, wherein said smartphone application can remotely control said embedded computer to manually drive said rollator.
6. The battery-powered, motorized rollator of claim 1, further comprising: a remote controller, wherein said remote controller can remotely control said embedded computer to manually drive said rollator.
7. The battery-powered, motorized rollator of claim 1, wherein said battery further comprises emergency battery safety features from combustion or explosion in case of impact or damage.
8. The battery-powered, motorized rollator of claim 1, wherein said plurality of proximity sensors can view and record a 360-degree field of view together with computer vision to form 3D environment awareness capability for collision avoidance.
9. The battery-powered, motorized rollator of claim 1, wherein said plurality of proximity sensors are laser-based proximity sensors.
10. A battery-powered, motorized rollator comprising: a rollator; a plurality of motorized wheels; a plurality of swivel wheels; a plurality of mechanical hand brakes; a front color camera; a rear color camera; a rechargeable battery; an emergency battery power switch; an instrument panel; a control module; an embedded computer; a plurality of software program modules; a smartphone application; a remote controller; a magnetometer; an acceleration sensor; an impact detection sensor, and a plurality of proximity sensors; wherein said front color camera, said rear color camera, said magnetometer, said acceleration sensor, said impact detection sensor, and said plurality of proximity sensors record and provide data to said embedded computer to enable self-driving by controlling said plurality of motorized wheels; and wherein said smartphone application or said remote controller can remotely control said embedded computer to manually drive said rollator.
11. The battery-powered, motorized rollator of claim 10, wherein said plurality of software program modules further comprise: a WiFi module; a Bluetooth module; a color camera module; a video streaming module; a computer vision module; a deep learning module; a facial recognition module; a smartphone interface module; a proximity sensor module; a motion monitoring module; a manual driving module; an acceleration sensor module; a path planning module; a customized IO module; and a motor controller module, wherein said embedded computer executes software program modules to realize artificial intelligence function including path planning, facial recognition, and motor control of said rollator.
12. The battery-powered, motorized rollator of claim 10, wherein said rollator is foldable.
13. The battery-powered, motorized rollator of claim 10, wherein said plurality of motorized wheels are brushless direct current hub motors.
14. The battery-powered, motorized rollator of claim 10, wherein said battery further comprises emergency battery safety features from combustion or explosion in case of impact or damage.
15. The battery-powered, motorized rollator of claim 10, wherein said plurality of proximity sensors can view and record a 360 degree field of view together with computer vision to form 3D environment awareness capability for collision avoidance.
16. The battery-powered, motorized rollator of claim 10, wherein said plurality of proximity sensors are laser-based proximity sensors.
17. A battery-powered, motorized rollator comprising: a rollator; a plurality of motorized wheels; a plurality of swivel wheels; a plurality of mechanical hand brakes; a front color camera; a rear color camera; a rechargeable battery; an emergency battery power switch; an instrument panel; a control module; an embedded computer; a plurality of software program modules; a smartphone application; a remote controller; a magnetometer; an acceleration sensor; an impact detection sensor, and a plurality of proximity sensors; wherein said plurality of motorized wheels are brushless direct current hub motors; wherein said battery further comprises emergency battery safety features from combustion or explosion in case of impact or damage; wherein said plurality of proximity sensors can view and record a 360 degree field of view; wherein said front color camera, said rear color camera, said magnetometer, said acceleration sensor, said impact detection sensor, and said plurality of proximity sensors record and provide data to said embedded computer to enable self-driving by controlling said plurality of motorized wheels; and wherein said smartphone application or said remote controller can remotely control said embedded computer to manually drive said rollator.
18. The battery-powered, motorized rollator of claim 17, wherein said plurality of software program modules further comprise: a WiFi module; a Bluetooth module; a color camera module; a video streaming module; a computer vision module; a deep learning module; a facial recognition module; a smartphone interface module; a proximity sensor module; a motion monitoring module; a manual driving module; an acceleration sensor module; a path planning module; a customized IO module; and a motor controller module, wherein said embedded computer executes software program modules to realize artificial intelligence function including path planning, facial recognition, and motor control of said rollator.
19. The battery-powered, motorized rollator of claim 17, wherein said rollator is foldable.
20. The battery-powered, motorized rollator of claim 17, wherein said plurality of proximity sensors are laser-based proximity sensors.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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DETAILED DESCRIPTION OF THE INVENTION
[0022] All illustrations of the drawings are for the purpose of describing selected versions of the present invention and are not intended to limit the scope of the present invention.
[0023] As shown in
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[0025] If the user requests self-driving via smartphone 300 or 320 by using a smartphone application 310 or 330 depicted in
[0026] In the preferred embodiment of the present invention, the user can use his/her smartphone 300 or 320 to choose the smartphone application of the user interface system 400 as depicted in
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[0028] Said rollator 100 further comprises a structure and a plurality of handles for the user to hold onto. Said plurality of mechanical hand brakes 103 are attached onto said structure from said motorized wheels 101 up to the top of said structure where a user can actuate the brake function. In the preferred embodiment of the present invention, a mechanical hand brake 103 is present for each motorized wheel 101. Said rollator 100 is designed to be light and portable. In some embodiments, said rollator 100 is designed to have foldable components and may be collapsed for storage.
[0029] Said plurality of motorized wheels 101 accelerates the present invention into motion. In the preferred embodiment of the present invention, two motorized wheels 101 are connected to the bottom of said rollator 100. In the preferred embodiment of the present invention, said motorized wheels 101 are brushless direct current (BLDC) hub motors. Said plurality of swivel wheels 102 allows the present invention to turn and rotate. In the preferred embodiment of the present invention, two swivel wheels 102 are connected to the bottom of said rollator 100.
[0030] In the preferred embodiment of the present invention, said battery 107 is a rechargeable lithium ion battery. Said battery 107 is sealed, maintenance-free, and has over thousands of recharge cycles. In the preferred embodiment of the present invention, said battery 107 may include emergency battery safety features from combustion or explosion in case of impact or damage. In the preferred embodiment of the present invention, said battery 107 is connected to said emergency battery power switch 104 which is attached to said structure of said rollator 100. Said emergency battery power switch 104 may be activated to shut off said battery 107 in case of emergency.
[0031] Said embedded computer 112 further comprises a wireless communication system 116 and 118, computer vision system 144 and an artificial intelligence algorithm 140, 142, and 146. Said computer vision system recognizes the user's face by processing each image frame from the video, then utilizes artificial intelligence technology, namely, the deep convolutional neural networks to perform user identity recognition. Once the identity of the user is derived from the computation, a region of interests (ROI) is defined with its center location and the shape parameters including width and height. The identity information, location, and shape parameters are utilized by the said artificial intelligence algorithm to compute the motion path 140 for the rollator. The motion path is fed to embedded multi-channel motor controller 120, one for each motorized wheel. Based on the computed path, said embedded computer 112 actuates said motorized wheels 101 to reposition the rollator 100 to travel in the optimal path moving towards the user. As this motion takes place, the continued computation of user identity and its distance to the rollator 100 are updated. Once the distance reaches a predefined stopping distance, the artificial intelligence algorithm will stop the motor actuation and rollator motion. Said wireless communication system may be controlled by a smartphone application or remote controller. The user can configure the present invention to self-drive to the user, remotely control the rollator 100, access the cameras 105, 106 on the rollator 100 to receive a real-time video stream. For example, a user may remotely control the present invention and use its cameras 105, 106 to view into other rooms or locations. Said artificial intelligence algorithm includes facial recognition, gesture recognition through analyzing data from the cameras and sensors. Said artificial intelligence algorithm is formed from commercially available API data with proprietary data and training guidelines.
[0032] Said front color camera 105 is a front facing camera that records environment information ahead of the rollator 100. Said rear color camera 106 is a rear facing camera that records environment information behind the rollator 100. Said environment information is fed to said computer vision system. Such information includes identity information used for facial recognition.
[0033] In the preferred embodiment of the present invention, said magnetometer 126, said acceleration sensor 124, and said impact detection sensor are found in a single combination sensor. Said combination sensor is commonly used within airplanes and drones. Said magnetometer provides compass-like information to said embedded computer 112. Said acceleration sensor provides orientation information, location information, and acceleration information to said embedded computer 112. Said impact detection sensor records any information related to collision and impact of the rollator and provides information to said embedded computer 112. The location information recorded by said combination sensor can be more reliable when used indoors, as common GPS location data may not be as reliable, accurate, or precise. Said combination sensor allows the present invention to record data that can be medically beneficial for the user. For example, said combination sensor is sensitive enough to record data of the user's gait. This data can be analyzed by a user's physician to provide instructions for the user to prevent falls and injury. This data is saved locally on said embedded computer 112 itself and can be uploaded to a private cloud server through its wireless communication. This data can be privacy locked and controlled entirely by the user through a smartphone application. As shown in
[0034] In the preferred embodiment of the present invention, said plurality of proximity sensors comprise at least four proximity sensors. Said proximity sensors are located above said motorized wheels 101 and said swivel wheels 102 and oriented to face the rollator's front, back, left, and right sides. In the preferred embodiment of the present invention, each proximity sensor can view and record data with beyond 120 degree field of view for each sensor, covering all 360 degrees around the rollator 100 with overlapped regions. This data is characterized as a semantic description of the environment around the present invention. Said proximity sensors utilize environment data together with computer vision forms environment awareness capability to enable autonomous driving with limited functions.
[0035] Although the invention has been explained in relation to its preferred embodiment, it is to be understood that many other possible modifications and variations can be made without departing from the spirit and scope of the invention.
REFERENCES CITED
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