IP Library Granted Patent US 10,792,538
Granted Patent B2
US 10,792,538 · App. 15/181,377 · Granted Oct 6, 2020

Bioelectrical signal controlled exercise machine system

Inventor: Sebastien Anthony Louis Lagree (West Hollywood, CA)
Assignee: Lagree Technologies, Inc.
A63B24/0087A61B5/0006A61B5/0482A61B5/0488
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Quick Facts
Patent No.
US 10,792,538
App. No.
15/181,377
Granted
Oct 6, 2020
Kind
B2
Abstract

A bioelectrical signal controlled exercise machine system for allowing an exerciser to control the state of an exercise machine and exercise environment. The bioelectrical signal controlled exercise machine system generally includes an exercise machine, a bioelectrical sensor device and a control unit in communication with the bioelectrical sensor device and the exercise machine. The control unit is adapted to receive data from the bioelectrical sensor device relating to measured bioelectrical signals of the human exerciser, and wherein the control unit transmits a control signal to the exercise machine to change the state of the exercise machine based on the data from the bioelectrical sensor device.

Claims (31)

1. A bioelectrical signal controlled exercise machine system, comprising:

an exercise machine comprising a base and a movable part;

at least one actuator connected between the base and the movable part of the exercise machine, wherein the at least one actuator is configured to change an attitude of the movable part;

an electroencephalography (EEG) sensor, wherein the electroencephalography (EEG) sensor is configured to record brain waves generated by a brain of a human exerciser, wherein the brain waves measured by the (EEG) sensor are comprised of an alpha wave and a beta wave, and wherein the electroencephalography (EEG) sensor is configured to transmit an EEG signal comprising an alpha wave amplitude and a beta wave amplitude; and

a control unit in communication with the electroencephalography (EEG) sensor and the exercise machine, wherein the control unit is configured to receive the EEG signal from the electroencephalography (EEG) sensor, wherein the control unit determines a control signal based on the alpha wave amplitude relative to the beta wave amplitude and vice versa, and wherein the control unit controls the at least one actuator of the exercise machine to change the attitude of the movable part of the exercise machine based on the control signal when the alpha wave amplitude is greater or less than the beta wave amplitude and vice versa.

2. The bioelectrical signal controlled exercise machine system of claim 1 , wherein the movable part comprises a rail movably supported above the base, the exercise machine further comprising a carriage movably positioned on the rail, wherein the carriage is configured to move in a reciprocating manner on the rail.

3. The bioelectrical signal controlled exercise machine system of claim 2 , wherein the exercise machine includes a resistance device connected to the carriage, wherein the resistance device is configured to provide a resistance force at a resistance level to the carriage during an exercise.

4. The bioelectrical signal controlled exercise machine system of claim 3 , wherein the control unit controls the resistance level provided to the carriage by the resistance device.

5. The bioelectrical signal controlled exercise machine system of claim 1 , wherein the attitude of the movable part includes a pitch of the movable part.

6. The bioelectrical signal controlled exercise machine system of claim 1 , wherein the attitude of the movable part includes a roll of the movable part.

7. The bioelectrical signal controlled exercise machine system of claim 1 , wherein the at least one actuator comprises a plurality of actuators, wherein each actuator is connected between the base and the movable part, and wherein the control unit controls at least two of the plurality of actuators.

8. The bioelectrical signal controlled exercise machine system of claim 1 , wherein the control unit can further change a resistance level of the exercise machine.

9. The bioelectrical signal controlled exercise machine system of claim 1 , wherein the electroencephalography (EEG) sensor comprises an elastic headband.

10. The bioelectrical signal controlled exercise machine system of claim 1 , wherein the electroencephalography (EEG) sensor is configured to communicate with the control unit by wired or wireless communication.

11. The bioelectrical signal controlled exercise machine system of claim 1 , further comprising: a throat microphone in communication with the control unit, wherein the throat microphone is configured to receive audio commands from the human exerciser and wherein the control unit is further configured to receive data from the throat microphone.

12. The bioelectrical signal controlled exercise machine system of claim 1 , wherein the control unit is in communication with one or more of the following: an HVAC system and room lighting.

13. The bioelectrical signal controlled exercise machine system of claim 1 , further comprising an acquisition module;

wherein the acquisition module is configured to multiplex bioelectrical signals received from the electroencephalography (EEG) sensor and an electromyography (EMG) sensor; and

wherein the control unit is configured to receive multiplexed data from the acquisition module.

14. A bioelectrical signal controlled exercise machine system, comprising:

an exercise machine comprising a base and a movable part;

at least one actuator connected between the base and the movable part, wherein the at least one actuator is configured to change an attitude of the movable part;

an electroencephalography (EEG) sensor;

wherein the electroencephalography (EEG) sensor is configured to measure brainwave signals generated by a brain of a human exerciser, wherein the brain waves measured by the (EEG) sensor are comprised of an alpha wave and a beta wave; and

a control unit in communication with the electroencephalography (EEG) sensor configured to:

receive data from the electroencephalography (EEG) sensor relating to the measured brainwave signals of the human exerciser comprising an alpha wave amplitude and a beta wave amplitude;

translate the measured brainwave signals into a control signal based on the alpha wave amplitude relative to the beta wave amplitude and vice versa; and

control the at least one actuator of the exercise machine in accordance with the control signal to adjust the attitude of the movable part when the alpha wave amplitude is greater or less than the beta wave amplitude and vice versa.

15. The bioelectrical signal controlled exercise machine system of claim 14 , further comprising a microphone, wherein the control unit is further configuredto:

receive voice data from the microphone; and

translate the voice data into a voice command, wherein the control unit further controls the actuator of the exercise machine in accordance with the voice command.

Assignments (2)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Oct 26, 2016
From: SPX FITNESS, INC.
To: LAGREE TECHNOLOGIES, INC.
Reel/Frame 040491/0114 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jun 24, 2016
From: LAGREE, SEBASTIEN ANTHONY LOUIS
To: SPX FITNESS, INC.
Reel/Frame 039002/0102 →
Continuity (2)
Provisional Application 62174649 · Jun 12, 2015
Related Publication 20160361602A1 · Dec 15, 2016
Cited By (2)
US 12,251,592 US 12,564,756