IP Library Granted Patent US 12,246,726
Granted Patent B2
US 12,246,726 · App. 17/139,212 · Granted Mar 11, 2025

System and method for sensing with millimeter waves for sleep position detection, vital signs monitoring and/or driver detection

Inventors: George Shaker (Waterloo, CA); Mostafa Alizadeh (Kitchener, CA); Hajar Abedi (Waterloo, CA)
B60W40/08G01S3/781G01S7/292G06N20/10G06V10/143G06V20/52G06V40/10G06V40/25B60W2040/0827B60W2420/50B60W2540/223B60W2540/229G06V40/1312G06V40/1341
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Quick Facts
Patent No.
US 12,246,726
App. No.
17/139,212
Granted
Mar 11, 2025
Kind
B2
Abstract

A sensor and method for sleep position detection including: a transmitter configured to transmit electromagnetic waves between 30 GHz and 300 GHz; a receiver configured to receive the electromagnetic waves from the transmitter, wherein the transmitter and receiver are positioned in relation to person sleeping such that the receiver receives reflected electromagnetic waves; and a control station configured to analyze the transmitted and received electromagnetic waves to determine a position of the person sleeping. In some cases, the method may include: forming a radar cube of results; performing a fast fourier transform (FFT) on the radar cube; applying a constant false alarm rate (CFAR) processor to the FFT data; determining a capon gradient; forming a 5-dimensional feature space based on the capon gradient; and conducting an optimization of SVM.

Claims (13)

1. A sensor system for sleep position detection comprising:

at least one transmitter configured to transmit electromagnetic waves between 30 GHz and 300 GHz;

at least one receiver configured to receive the electromagnetic waves from the at least one transmitter, wherein the at least one transmitter and the at least one receiver are positioned in relation to a person sleeping such that the at least one receiver receives reflected electromagnetic waves; and

a control station configured to analyze the transmitted and received electromagnetic waves to determine a position of the person sleeping;

wherein analyzing the transmitted and received electromagnetic waves includes: forming a radar cube of results; performing a fast fourier transform (FFT) on the radar cube; applying a constant false alarm rate (CFAR) processor to the FFT data; determining a capon gradient; forming a 5-dimensional feature space based on the capon gradient; and conducting an optimization of SVM.

2. A sensor according to claim 1 wherein the sensor determines the position of the person sleeping based on the strength and angle of the transmitted and received electromagnetic waves.

3. A sensor according to claim 1 wherein the control station is configured to analyze the transmitted and received electromagnetic waves using machine learning.

4. A method for sensing a sleeping position of a person sleeping comprising:

transmitting electromagnetic waves between 30 GHz and 300 GHz at the person sleeping from at least one transmitter;

receiving reflected electromagnetic waves from the person sleeping at at least one receiver; and

analyzing the electromagnetic waves and reflected electromagnetic waves to determine a position of the person sleeping;

wherein analyzing the electromagnetic waves and reflected electromagnetic waves includes: forming a radar cube of results; performing a fast fourier transform (FFT) on the radar cube; applying a constant false alarm rate (CFAR) processor to the FFT data; determining a capon gradient; forming a 5-dimensional feature space based on the capon gradient; and conducting an optimization of SVM.

5. A method according to claim 4 wherein the electromagnetic waves and reflected electromagnetic waves are analyzed using machine learning.

Continuity (3)
Continuation In Part 15819833 · Nov 21, 2017
Provisional Application 62497430 · Nov 21, 2016
Related Publication 20210197834A1 · Jul 1, 2021
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