Patents by Inventor Qingguo Zeng
Qingguo Zeng 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: 11880955Abstract: A map generator can be programmed to generate a multi-parameter graphical map by encoding at least two different physiological parameters for a geometric surface, corresponding to tissue of a patient, using different color components of a multi-dimensional color model such that each of the different physiological parameters is encoded by at least one of the different color components.Type: GrantFiled: October 21, 2019Date of Patent: January 23, 2024Assignee: CARDIOINSIGHT TECHNOLOGIES INC.Inventors: Qingguo Zeng, Charulatha Ramanathan, Venkatesh Vasudevan, Rémi Dubois, Ping Jia
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Publication number: 20230414276Abstract: A method and a pulsed electric field (PEF) ablation instrument are provided. According to one aspect, a method in a PFA generator includes receiving electrical responses for each of at least one non-therapeutic waveform. The process also includes determining an electric field distribution based at least in part on the received electrical responses. The process further includes selecting a non-therapeutic waveform that produces an electric field distribution that satisfies criteria. The process also includes mapping the selected non-therapeutic waveform to an ablative waveform.Type: ApplicationFiled: June 21, 2023Publication date: December 28, 2023Inventors: Timothy G. Laske, Qingguo Zeng, Qing Lou, Mark T. Stewart, Brian T. Howard, Anthony W. Rorvick, Gregory S. Brumfield
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Patent number: 11832927Abstract: A method includes placing a set of electrodes on a body surface of a patient's body. The method also includes digitizing locations for the electrodes across the body surface based on one or more image frames using range imaging and/or monoscopic imaging. The method also includes estimating locations for hidden ones of the electrodes on the body surface not visible during the range imaging and/or monoscopic imaging. The method also includes registering the location for the electrodes on the body surface with predetermined geometry information that includes the body surface and an anatomical envelope within the patient's body. The method also includes storing geometry data in non-transitory memory based on the registration to define spatial relationships between the electrodes and the anatomical envelope.Type: GrantFiled: October 14, 2021Date of Patent: December 5, 2023Assignee: CARDIOINSIGHT TECHNOLOGIES INC.Inventors: Glenn D. Raudins, Qingguo Zeng, Charulatha Ramanathan, Ryan M. Bokan
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Publication number: 20230321446Abstract: An example method includes establishing a communications link between an electrophysiology (EP) monitoring system and an implantable medical device (IMD). IMD electrical data is received at the monitoring system via the communications link. The IMD electrical data may be synchronized with EP measurement data to provide synchronized electrical data based on timing of a synchronization signal sensed by an IMD electrode and/or EP electrodes. The method also includes computing reconstructed electrical signals for locations on a surface of interest within the patient's body based on the synchronized electrical data and geometry data. The geometry data represents locations of the EP electrodes, a location of the IMD electrode within the patient's body and the surface of interest.Type: ApplicationFiled: May 16, 2023Publication date: October 12, 2023Inventors: William E. ROWLAND, Timothy G. LASKE, Qing LOU, Qingguo ZENG
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Publication number: 20230226361Abstract: A computer-implemented method includes accessing electrophysiological data and generating an electroanatomic map for a surface of interest based on the electrophysiological data acquired during or after application of a first intervention to temporarily perturb electrical properties of a region of interest on or within the patient’s heart. The method also includes determining changes in the map or information derived from the map responsive to application of a first intervention. The first intervention can include including applying a non-lethal energy and/or a bioactive agent to induce or inhibit conduction of electrical activity for the region of interest. The method also includes controlling a second intervention to permanently alter the electrical properties of the region of interest based on the determination indicating a desired change in cardiac electrical activity responsive to the first intervention.Type: ApplicationFiled: November 21, 2022Publication date: July 20, 2023Inventors: Qing LOU, Qingguo ZENG, TIMOTHY G. LASKE
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Patent number: 11691018Abstract: An example method includes establishing a communications link between an electrophysiology (EP) monitoring system and an implantable medical device (IMD). IMD electrical data is received at the monitoring system via the communications link. The IMD electrical data may be synchronized with EP measurement data to provide synchronized electrical data based on timing of a synchronization signal sensed by an IMD electrode and/or EP electrodes. The method also includes computing reconstructed electrical signals for locations on a surface of interest within the patient's body based on the synchronized electrical data and geometry data. The geometry data represents locations of the EP electrodes, a location of the IMD electrode within the patient's body and the surface of interest.Type: GrantFiled: February 19, 2021Date of Patent: July 4, 2023Assignee: CARDIOINSIGHT TECHNOLOGIES INC.Inventors: William Rowland, Timothy G. Laske, Qing Lou, Qingguo Zeng
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Publication number: 20230190104Abstract: A computer-implemented method includes identifying respective heartbeat intervals based on electrophysiological data representative of cardiac electrophysiological signals measured over a time interval. The method includes analyzing the cardiac electrophysiological signals over at least a portion of the time interval. The method also includes generating a map on a surface of interest and/or performing automated signal processing based on the cardiac electrophysiological signals for heartbeat intervals, in which the map is generated and/or the automated signal processing is performed automatically responsive to the analysis of the cardiac electrophysiological signals.Type: ApplicationFiled: November 10, 2022Publication date: June 22, 2023Inventors: QINGGUO ZENG, QING LOU, RAHSEAN K. ELLIS, TIMOTHY G. LASKE
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Patent number: 11666242Abstract: An example method includes applying a localization signal to a source electrode positioned within a conductive volume and a ground electrode at a known location. Electrical activity is sensed at a plurality of sensor electrodes distributed across an outer surface of the conductive volume. The locations of each of the sensor electrodes and the location of the ground electrode being stored in memory as part of geometry data. The electrical activity sensed at each of the sensor electrodes is stored in the memory as electrical measurement data. The method also includes computing a location of the source electrode by minimizing a difference between respective pairs of source voltages determined for the plurality of sensor electrodes. The source voltage for each of the sensor electrodes is determined based on the electrical measurement data and the geometry data.Type: GrantFiled: February 11, 2020Date of Patent: June 6, 2023Assignee: CARDIOINSIGHT TECHNOLOGIES, INC.Inventors: Ping Jia, Qingguo Zeng, Charulatha Ramanathan, Ryan Bokan
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Publication number: 20230148936Abstract: The present disclosure provides a system that includes an arrangement of body surface electrodes on one or more patches adapted to be placed an outer surface of a patient's body. A computing apparatus includes non-transitory memory to store data and instructions executable by a processor thereof. The data includes anatomical geometry data, electrode geometry data and electrical data. The instructions can be programmed to register the anatomical geometry data and the electrode geometry data to provide co-registered geometry data representing the anatomy of the patient and the locations of the body surface electrodes in a common three-dimensional space. Electrophysiological signals can be reconstructed on a cardiac envelope of the heart based on the co-registered geometry data and the electrical data.Type: ApplicationFiled: September 29, 2022Publication date: May 18, 2023Inventors: Timothy G. LASKE, Kevin D. GOLLON, Qingguo ZENG, Qing LOU
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Publication number: 20230138492Abstract: A computer-implemented method includes storing location data for at least one invasive electrode that is movable within a patient’s body. The method also includes storing electrophysiological measurement data representing the electrophysiological signals measured at the outer surface of a patient’s body by body surface electrodes and within the patient’s body by the at least one invasive electrode. The method also includes storing geometry data representing anatomy of the patient spatially, and locations of the respective body surface electrodes and the at least one invasive electrode in three-dimensional space. The geometry data for the at least one invasive electrode can vary based on movement of the at least one invasive electrode within the patient’s body. The method also includes reconstructing electrophysiological signals on a surface of interest within the patient’s body based on the electrophysiological measurement data and the geometry data.Type: ApplicationFiled: September 28, 2022Publication date: May 4, 2023Inventors: TIMOTHY G. LASKE, QINGGUO ZENG, QING LOU
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Publication number: 20230036977Abstract: In an example, a signal segment evaluator can be programmed to evaluate a morphology of at least one electrophysiological signal to identify a signal segment of interest. The morphology of the signal segment of interest can be indicative of an electrophysiological event of a patient during a respective time interval. A reconstruction engine can be programmed to reconstruct electrophysiological signals on a surface of interest within a body of the patient based on the electrophysiological signals measured from an outer surface of the patient and geometry data representing an anatomy of the patient. A map generator can be programmed to generate a map representing the reconstructed electrophysiological signals on the surface of interest for the respective time interval of the signal segment of interest. A target generator can be programmed to identify a target site within the patient's body based on the map for the electrophysiological event.Type: ApplicationFiled: June 14, 2022Publication date: February 2, 2023Inventors: Qingguo Zeng, Timothy G. Laske, Qing Lou
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Patent number: 11504046Abstract: Systems and methods for graph total variation (GTV) based reconstruction of electrical potentials on a cardiac surface are disclosed. GTV-based systems and methods incorporate information about the graph structure of the heart surface as well as imposing sparsity constraints on neighboring nodes. To this end, the present disclosure uses a novel way of calculating derivatives on irregular meshes, and provides a fast solver to compute an inverse solution more efficiently than in previous systems and methods. Moreover, fast-changing signals can be recovered with less smoothing and thus greater fidelity to the original signals.Type: GrantFiled: November 19, 2019Date of Patent: November 22, 2022Assignees: CARDIOINSIGHT TECHNOLOGIES, INC., CASE WESTERN RESERVE UNIVERSITYInventors: Qingguo Zeng, Richard N. Lartey, Weihong Guo
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Publication number: 20220287615Abstract: In a described example, a method includes identifying, by a processor, negative deflections of at least one unipolar signal representing cardiac electrical activity on a surface of interest during a respective interval of the at least one signal. The method also includes determining, by a processor, an activation time for a last identified negative deflection in the respective interval. The method also includes detecting, by the processor, an instance of late activation based on comparing the activation time to a temporal threshold.Type: ApplicationFiled: February 11, 2022Publication date: September 15, 2022Inventors: QING LOU, TIMOTHY G. LASKE, QINGGUO ZENG, RYAN M. BOKAN, KOONLAWEE NADEMANEE
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Publication number: 20220266009Abstract: An example method includes establishing a communications link between an electrophysiology (EP) monitoring system and an implantable medical device (IMD). IMD electrical data is received at the monitoring system via the communications link. The IMD electrical data may be synchronized with EP measurement data to provide synchronized electrical data based on timing of a synchronization signal sensed by an IMD electrode and/or EP electrodes. The method also includes computing reconstructed electrical signals for locations on a surface of interest within the patient's body based on the synchronized electrical data and geometry data. The geometry data represents locations of the EP electrodes, a location of the IMD electrode within the patient's body and the surface of interest.Type: ApplicationFiled: February 19, 2021Publication date: August 25, 2022Inventors: WILLIAM ROWLAND, TIMOTHY G. LASKE, QING LOU, QINGGUO ZENG
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Publication number: 20220160307Abstract: Systems and methods are described herein for estimating and filtering electrophysiological signals. In some examples, a noise filtering system can be employed to receive at least one electrophysiological signal. A signal segment extractor of the system can extract a signal segment of interest from the electrophysiological signal. The system employs a signal segment noise calculator to evaluate the extracted signal segment of interest to estimate a noise in the signal segment of interest. The estimated noise can be provided to a signal segment filter of the system to determine a surrogate noise estimate for at least one remaining signal segment of the electrophysiological signal for noise filtering the at least one remaining signal segment. The signal segment noise calculator can be configured to filter the signal segment of interest based on the estimated noise and the filtered signal segments can be combined to provide a filtered electrophysiological signal.Type: ApplicationFiled: June 9, 2021Publication date: May 26, 2022Inventors: QINGGUO ZENG, JEFFREY B. ADAIR, BRIAN P. GEORGE, QING LOU, TIMOTHY G. LASKE
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Patent number: 11324433Abstract: A method can include storing input electrical signal data representing at least a given electrophysiological signal acquired from a patient. A non-local mean filter can be applied to the given electrophysiological signal, the non-local mean filter including a spatial filter component and an intensity filter component. The method can also include controlling parameters to establish weighting of each of the spatial filter component and the intensity filter component in response to a control input. Filtered signal data can be stored based on the applying and the controlling.Type: GrantFiled: April 27, 2018Date of Patent: May 10, 2022Assignee: CARDIOINSIGHT TECHNOLOGIES, INC.Inventors: Qingguo Zeng, Venkatesh Vasudevan, Charulatha Ramanathan, Ping Jia
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Publication number: 20220104749Abstract: Systems and methods for cardiac fast firing (e.g., atrial fast firing) detection perform frequency analysis on channels of collected cardiac waveform data and test the data for outlier frequency complex content that is of higher frequency than baseline frequency complex content associated with cardiac fibrillation (e.g., atrial fibrillation) or other arrhythmogenic activity. Anatomical regions from whence the cardiac fast firing originates can be displayed in real time on an epicardial surface map via a graphical display, aiding administration of therapy. Prior to such detection, QRST complex removal can be performed to ensure that ventricular activity does not infect the atrial fast firing analysis. A frequency-based method for QRST complex removal is also disclosed.Type: ApplicationFiled: December 16, 2021Publication date: April 7, 2022Inventors: PING JIA, QINGGUO ZENG, TIMOTHY G. LASKE, QING LOU
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Patent number: 11284830Abstract: An example method includes analyzing morphology and/or amplitude of each of a plurality of electrophysiological signals across a surface of a patient's body to identify candidate segments of each signal satisfying predetermined conduction pattern criteria. The method also includes determining a conduction timing parameter for each candidate segment in each of the electrophysiological signals.Type: GrantFiled: January 28, 2020Date of Patent: March 29, 2022Assignee: CARDIOINSIGHT TECHNOLOGIES, INC.Inventors: Qing Lou, Meredith E. Stone, Qingguo Zeng, Jeffrey B. Adair, Connor S. Edel, Ping Jia, Kevin R. Ponziani, Brian P. George, Ryan M. Bokan, Matthew J. Sabo, Vladimir A. Turovskiy, Ketal C. Patel, Charulatha Ramanathan
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Publication number: 20220036583Abstract: A method includes placing a set of electrodes on a body surface of a patient's body. The method also includes digitizing locations for the electrodes across the body surface based on one or more image frames using range imaging and/or monoscopic imaging. The method also includes estimating locations for hidden ones of the electrodes on the body surface not visible during the range imaging and/or monoscopic imaging. The method also includes registering the location for the electrodes on the body surface with predetermined geometry information that includes the body surface and an anatomical envelope within the patient's body. The method also includes storing geometry data in non-transitory memory based on the registration to define spatial relationships between the electrodes and the anatomical envelope.Type: ApplicationFiled: October 14, 2021Publication date: February 3, 2022Inventors: GLENN D. RAUDINS, QINGGUO ZENG, CHARULATHA RAMANATHAN, RYAN M. BOKAN
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Patent number: 11229392Abstract: Systems and methods for cardiac fast firing (e.g., atrial fast firing) detection perform frequency analysis on channels of collected cardiac waveform data and test the data for outlier frequency complex content that is of higher frequency than baseline frequency complex content associated with cardiac fibrillation (e.g., atrial fibrillation) or other arrhythmogenic activity. Anatomical regions from whence the cardiac fast firing originates can be displayed in real time on an epicardial surface map via a graphical display, aiding administration of therapy. Prior to such detection, QRST complex removal can be performed to ensure that ventricular activity does not infect the atrial fast firing analysis. A frequency-based method for QRST complex removal is also disclosed.Type: GrantFiled: March 14, 2019Date of Patent: January 25, 2022Assignee: CARDIOINSIGHT TECHNOLOGIES, INC.Inventors: Ping Jia, Qingguo Zeng, Timothy G. Laske, Qing Lou