Patents by Inventor Nicholas Selby
Nicholas Selby has filed for patents to protect the following inventions. This listing includes patent applications that are pending as well as patents that have already been granted by the United States Patent and Trademark Office (USPTO).
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Patent number: 11974835Abstract: An aspect of the present disclosure describes an apparatus for non-invasive blood pressure monitoring that includes a plurality of pressure sensors, a plurality of sensor interfaces coupling the plurality of pressure sensors to at least one blood flow line disposed exterior from a patient, a pump for artificially generating blood flow through the at least one blood flow line, and a processor configured to receive pressure sensor measurements from the plurality of pressure sensors and generate a patient blood pressure estimation from the combined pressure sensor measurements.Type: GrantFiled: June 1, 2020Date of Patent: May 7, 2024Assignee: iTrend Medical Research LimitedInventors: Paul Stewart, Jill Stewart, Maarten Taal, Nicholas Selby, Mohamed Tarek Eldehni, Venkata R Latha Gullapudi
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Patent number: 11604250Abstract: A transceiver may wirelessly transmit a communication signal at a first frequency and a sensing signal at a second frequency. The communication signal may include a command that causes a backscatter node to modulate impedance of an antenna, and thereby modulate reflectivity of the backscatter node. The communication signal may also deliver wireless power to the backscatter node. While the impedance is being modulated in response to the command, the transceiver may transmit the sensing signal and measure wireless reflections. The power of the sensing signal may be much lower than that of the communication signal. The transceiver may frequency hop the sensing signal in a wide band of frequencies and take measurements at each frequency in the hopping. Based on the measurements, a computer may determine time-of-flight or phase of a reflected signal from the backscatter node and may estimate location of the backscatter node with sub-centimeter precision.Type: GrantFiled: January 9, 2021Date of Patent: March 14, 2023Assignee: Massachusetts Institute of TechnologyInventors: Yunfei Ma, Nicholas Selby, Fadel Adib
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Publication number: 20210132183Abstract: A transceiver may wirelessly transmit a communication signal at a first frequency and a sensing signal at a second frequency. The communication signal may include a command that causes a backscatter node to modulate impedance of an antenna, and thereby modulate reflectivity of the backscatter node. The communication signal may also deliver wireless power to the backscatter node. While the impedance is being modulated in response to the command, the transceiver may transmit the sensing signal and measure wireless reflections. The power of the sensing signal may be much lower than that of the communication signal. The transceiver may frequency hop the sensing signal in a wide band of frequencies and take measurements at each frequency in the hopping. Based on the measurements, a computer may determine time-of-flight or phase of a reflected signal from the backscatter node and may estimate location of the backscatter node with sub-centimeter precision.Type: ApplicationFiled: January 9, 2021Publication date: May 6, 2021Inventors: Yunfei Ma, Nicholas Selby, Fadel Adib
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Patent number: 10921419Abstract: A transceiver may wirelessly transmit a communication signal at a first frequency and a sensing signal at a second frequency. The communication signal may include a command that causes a backscatter node to modulate impedance of an antenna, and thereby modulate reflectivity of the backscatter node. The communication signal may also deliver wireless power to the backscatter node. While the impedance is being modulated in response to the command, the transceiver may transmit the sensing signal and measure wireless reflections. The power of the sensing signal may be much lower than that of the communication signal. The transceiver may frequency hop the sensing signal in a wide band of frequencies and take measurements at each frequency in the hopping. Based on the measurements, a computer may determine time-of-flight or phase of a reflected signal from the backscatter node and may estimate location of the backscatter node with sub-centimeter precision.Type: GrantFiled: March 26, 2018Date of Patent: February 16, 2021Assignee: Massachusetts Institute of TechnologyInventors: Yunfei Ma, Nicholas Selby, Fadel Adib
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Publication number: 20200375471Abstract: An aspect of the present disclosure describes an apparatus for non-invasive blood pressure monitoring that includes a plurality of pressure sensors, a plurality of sensor interfaces coupling the plurality of pressure sensors to at least one blood flow line disposed exterior from a patient, a pump for artificially generating blood flow through the at least one blood flow line, and a processor configured to receive pressure sensor measurements from the plurality of pressure sensors and generate a patient blood pressure estimation from the combined pressure sensor measurements.Type: ApplicationFiled: June 1, 2020Publication date: December 3, 2020Inventors: Paul Stewart, Jill Stewart, Maarten Taal, Nicholas Selby, Mohamed Tarek Eldehni, Venkata R Latha Gullapudi
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Publication number: 20200280953Abstract: A wideband, radio-frequency localization system may estimate the one-dimensional, two-dimensional or three-dimensional position and trajectory of a static or moving object. These estimates may have a high spatial accuracy and low latency. The localization may be determined based on phase or amplitude of a wideband signal in each frequency band in a set of multiple frequency bands. The localization may be based on a single shot of measurements across a wide band of radio frequencies, without frequency hopping. The measurements of the wideband signal may be taken over time and over space at multiple receivers. The localization may be based on measurements taken while a backscatter node remains in a first reflective state or in a second reflective state, rather than when the backscatter node is transitioning between reflective states. In some cases, the localization achieves sub-centimeter spatial resolution in each of three spatial dimensions.Type: ApplicationFiled: May 15, 2020Publication date: September 3, 2020Inventors: Zhihong Luo, Qiping Zhang, Nicholas Selby, Yunfei Ma, Manish Singh, Fadel Adib
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Patent number: 10701662Abstract: A wideband, radio-frequency localization system may estimate the one-dimensional, two-dimensional or three-dimensional position and trajectory of a static or moving object. These estimates may have a high spatial accuracy and low latency. The localization may be determined based on phase or amplitude of a wideband signal in each frequency band in a set of multiple frequency bands. The localization may be based on a single shot of measurements across a wide band of radio frequencies, without frequency hopping. The measurements of the wideband signal may be taken over time and over space at multiple receivers. The localization may be based on measurements taken while a backscatter node remains in a first reflective state or in a second reflective state, rather than when the backscatter node is transitioning between reflective states. In some cases, the localization achieves sub-centimeter spatial resolution in each of three spatial dimensions.Type: GrantFiled: December 26, 2019Date of Patent: June 30, 2020Assignee: Massachusetts Institute of TechnologyInventors: Zhihong Luo, Qiping Zhang, Nicholas Selby, Yunfei Ma, Manish Singh, Fadel Adib
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Publication number: 20200145959Abstract: A wideband, radio-frequency localization system may estimate the one-dimensional, two-dimensional or three-dimensional position and trajectory of a static or moving object. These estimates may have a high spatial accuracy and low latency. The localization may be determined based on phase or amplitude of a wideband signal in each frequency band in a set of multiple frequency bands. The localization may be based on a single shot of measurements across a wide band of radio frequencies, without frequency hopping. The measurements of the wideband signal may be taken over time and over space at multiple receivers. The localization may be based on measurements taken while a backscatter node remains in a first reflective state or in a second reflective state, rather than when the backscatter node is transitioning between reflective states. In some cases, the localization achieves sub-centimeter spatial resolution in each of three spatial dimensions.Type: ApplicationFiled: December 26, 2019Publication date: May 7, 2020Inventors: Zhihong Luo, Qiping Zhang, Nicholas Selby, Yunfei Ma, Manish Singh, Fadel Adib
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Patent number: 10575277Abstract: A wideband, radio-frequency localization system may estimate the one-dimensional, two-dimensional or three-dimensional position and trajectory of a static or moving object. These estimates may have a high spatial accuracy and low latency. The localization may be determined based on phase or amplitude of a wideband signal in each frequency band in a set of multiple frequency bands. The localization may be based on a single shot of measurements across a wide band of radio frequencies, without frequency hopping. The measurements of the wideband signal may be taken over time and over space at multiple receivers. The localization may be based on measurements taken while a backscatter node remains in a first reflective state or in a second reflective state, rather than when the backscatter node is transitioning between reflective states. In some cases, the localization achieves sub-centimeter spatial resolution in each of three spatial dimensions.Type: GrantFiled: October 16, 2018Date of Patent: February 25, 2020Assignee: Massachusetts Institute of TechnologyInventors: Zhihong Luo, Qiping Zhang, Nicholas Selby, Yunfei Ma, Manish Singh, Fadel Adib
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Patent number: 10516470Abstract: A method may comprise relaying a wireless signal via a bi-directional, full-duplex relay. The relay may comprise an analog uplink relay and an analog downlink relay, and may relay signals between a transmitter and a backscatter node. The spectrum of the downlink signal transmitted by the downlink relay may be different than the spectrum of the uplink signal received by the uplink relay. Filtering may attenuate leakage from the downlink relay to the uplink relay, and vice versa. The uplink relay may create a phase offset that is opposite in sign and substantially equal in magnitude to the phase offset created by the downlink relay. The downlink and uplink relays, taken together, may create a substantially constant net phase offset. The full-duplex relay may be housed in a vehicle that moves, and may be used to determine spatial coordinates of backscatter sources that are located in the relay's environment.Type: GrantFiled: July 3, 2019Date of Patent: December 24, 2019Assignee: Massachusetts Institute of TechnologyInventors: Yunfei Ma, Nicholas Selby, Fadel Adib
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Publication number: 20190341994Abstract: A full-duplex analog relay may comprise an analog uplink relay and an analog downlink relay, and may relay signals between a transmitter and a backscatter node. The spectrum of the downlink signal transmitted by the downlink relay may be different than the spectrum of the uplink signal received by the uplink relay. Filtering may attenuate leakage from the downlink relay to the uplink relay, and vice versa. The uplink relay may create a phase offset that is opposite in sign and substantially equal in magnitude to the phase offset created by the downlink relay. The downlink and uplink relays, taken together, may created a substantially constant net phase offset. The full-duplex relay may be housed in a vehicle that moves, and may be used to determine spatial coordinates of backscatter sources that are located in the relay's environment.Type: ApplicationFiled: July 3, 2019Publication date: November 7, 2019Inventors: Yunfei Ma, Nicholas Selby, Fadel Adib
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Patent number: 10389429Abstract: A full-duplex analog relay may comprise an analog uplink relay and an analog downlink relay, and may relay signals between a transmitter and a backscatter node. The spectrum of the downlink signal transmitted by the downlink relay may be different than the spectrum of the uplink signal received by the uplink relay. Filtering may attenuate leakage from the downlink relay to the uplink relay, and vice versa. The uplink relay may create a phase offset that is opposite in sign and substantially equal in magnitude to the phase offset created by the downlink relay. The downlink and uplink relays, taken together, may created a substantially constant net phase offset. The full-duplex relay may be housed in a vehicle that moves, and may be used to determine spatial coordinates of backscatter sources that are located in the relay's environment.Type: GrantFiled: February 12, 2018Date of Patent: August 20, 2019Assignee: Massachusetts Institute of TechnologyInventors: Yunfei Ma, Nicholas Selby, Fadel Adib
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Publication number: 20190141666Abstract: A wideband, radio-frequency localization system may estimate the one-dimensional, two-dimensional or three-dimensional position and trajectory of a static or moving object. These estimates may have a high spatial accuracy and low latency. The localization may be determined based on phase or amplitude of a wideband signal in each frequency band in a set of multiple frequency bands. The localization may be based on a single shot of measurements across a wide band of radio frequencies, without frequency hopping. The measurements of the wideband signal may be taken over time and over space at multiple receivers. The localization may be based on measurements taken while a backscatter node remains in a first reflective state or in a second reflective state, rather than when the backscatter node is transitioning between reflective states. In some cases, the localization achieves sub-centimeter spatial resolution in each of three spatial dimensions.Type: ApplicationFiled: October 16, 2018Publication date: May 9, 2019Inventors: Zhihong Luo, Qiping Zhang, Nicholas Selby, Yunfei Ma, Manish Singh, Fadel Adib
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Publication number: 20180275246Abstract: A transceiver may wirelessly transmit a communication signal at a first frequency and a sensing signal at a second frequency. The communication signal may include a command that causes a backscatter node to modulate impedance of an antenna, and thereby modulate reflectivity of the backscatter node. The communication signal may also deliver wireless power to the backscatter node. While the impedance is being modulated in response to the command, the transceiver may transmit the sensing signal and measure wireless reflections. The power of the sensing signal may be much lower than that of the communication signal. The transceiver may frequency hop the sensing signal in a wide band of frequencies and take measurements at each frequency in the hopping. Based on the measurements, a computer may determine time-of-flight or phase of a reflected signal from the backscatter node and may estimate location of the backscatter node with sub-centimeter precision.Type: ApplicationFiled: March 26, 2018Publication date: September 27, 2018Inventors: Yunfei Ma, Nicholas Selby, Fadel Adib
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Publication number: 20180234161Abstract: A full-duplex analog relay may comprise an analog uplink relay and an analog downlink relay, and may relay signals between a transmitter and a backscatter node. The spectrum of the downlink signal transmitted by the downlink relay may be different than the spectrum of the uplink signal received by the uplink relay. Filtering may attenuate leakage from the downlink relay to the uplink relay, and vice versa. The uplink relay may create a phase offset that is opposite in sign and substantially equal in magnitude to the phase offset created by the downlink relay. The downlink and uplink relays, taken together, may created a substantially constant net phase offset. The full-duplex relay may be housed in a vehicle that moves, and may be used to determine spatial coordinates of backscatter sources that are located in the relay's environment.Type: ApplicationFiled: February 12, 2018Publication date: August 16, 2018Inventors: Yunfei Ma, Nicholas Selby, Fadel Adib
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Patent number: D981566Type: GrantFiled: November 23, 2020Date of Patent: March 21, 2023Inventor: Paul Nicholas Selby