Patents by Inventor Xiaoyi Min

Xiaoyi Min 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).

  • Patent number: 10668289
    Abstract: A method and system are provided for controlling an adaptive pacing therapy using an implantable medical device (IMD). The method provides electrodes that are configured to be located proximate to an atrial (A) site, left ventricular (LV) site and right ventricular (RV) site of the heart. The method utilizes one or more processors to perform obtaining an intra-atrial conduction interval (IACI-LVPROX) between an atrial event and intrinsic conduction at an LV site that is proximal to a sinoatrial (SA) node and obtaining timing of a first heart sound S1. The processors determine whether the S1 occurs after the IACI-LVPROX, and calculates an S1-conduction lag ?S1_C between the IACI-LVPROX and the first heart sound S1. The processors set an atrial-ventricular pacing (AV) delay based on the IACI-LVPROX and the ?S1_C. The processors deliver a pacing therapy based on the AV delay.
    Type: Grant
    Filed: July 12, 2018
    Date of Patent: June 2, 2020
    Assignee: Pacesetter, Inc.
    Inventor: Xiaoyi Min
  • Publication number: 20200155863
    Abstract: A method and system are provided. The method and system sense cardiac events of a heart. The method and system utilizes one or more processors. The processors detect a ventricular fibrillation (VF) episode based on the cardiac events and identify a pace-assisted VF therapy based on the ventricular fibrillation episode. The pace assisted VF therapy includes a burst pacing therapy and a high voltage (HV) shock. The method and system deliver the burst pacing therapy at one or more pacing sites in a coordinated manner before or during the HV shock. The one or more pacing sites includes at least one of a left ventricular (LV) site or a right ventricular (RV) site. The method and system deliver the HV shock along a shocking vector between shocking electrodes.
    Type: Application
    Filed: November 19, 2018
    Publication date: May 21, 2020
    Inventor: Xiaoyi Min
  • Publication number: 20200086129
    Abstract: Embodiments described herein relate to implantable medical devices (IMDs) and methods for use therewith. Such a method includes using an accelerometer of an IMD (e.g., a leadless pacemaker) to produce one or more accelerometer outputs indicative of the orientation of the IMD. The method can also include controlling communication pulse parameter(s) of one or more communication pulses (produced by pulse generator(s)) based on accelerator output(s) indicative of the orientation of the IMD. The communication pulse parameter(s) that is/are controlled can be, e.g., communication pulse amplitude, communication pulse width, communication pulse timing, and/or communication pulse morphology. Such embodiments can be used to improve conductive communications between IMDs whose orientation relative to one another may change over time, e.g., due to changes in posture and/or due to cardiac motion over a cardiac cycle.
    Type: Application
    Filed: October 25, 2018
    Publication date: March 19, 2020
    Inventors: XIAOYI MIN, DAVID LIGON, WEIQUN YANG, SHAWN CHEN, MATTHEW G. FISHLER
  • Patent number: 10589100
    Abstract: Methods and devices are is provided for controlling a pacing therapy utilizing left ventricular multi-point pacing (MPP). The method and device provide electrodes configured to be located proximate to an atrial (A) site, a right ventricular (RV) site and multiple left ventricular (LV) sites of the heart. The method and device utilizes one or more processors. The processors determine atrial-ventricular conduction delays (AVCD) between the A site and multiple corresponding LV sites and determines pacing latencies at the LV sites. The processors adjusts the AVCDs, based on the pacing latency at the corresponding LV sites, to form atrial-ventricular latency adjusted (ARPL) conduction delays for the corresponding LV sites, calculates interventricular pacing (VV) delays for combinations of the LV sites based on the corresponding ARPL conduction delays and manages pacing therapy, that utilizes left ventricular MPP, based on the VV delays for the corresponding LV sites.
    Type: Grant
    Filed: September 12, 2017
    Date of Patent: March 17, 2020
    Assignee: Pacesetter, Inc.
    Inventors: Xiaoyi Min, Kyungmoo Ryu, Stuart Rosenberg, David Muller
  • Publication number: 20200078591
    Abstract: Systems and methods are provided for detecting arrhythmias in cardiac activity is provided. The systems and methods include measuring conduction delays between an atria (A) and multiple left ventricular (LV) electrodes to obtain multiple intrinsic A/LV intervals, measuring conduction delays between a right ventricular (RV) and the multiple LV electrodes to obtain multiple intrinsic VV intervals. The systems and methods include calculating a first atrial ventricular (AV) delay based on at least one of the intrinsic A/LV intervals, and calculating a second AV delay based on at least one of the intrinsic VV intervals. The systems and methods include selecting a biventricular (BiV) pacing mode or an LV only pacing mode based on a relation between the first and second AV delays, and delivering a pacing therapy based on the selecting operation.
    Type: Application
    Filed: September 11, 2018
    Publication date: March 12, 2020
    Inventors: Xiaoyi Min, Kyungmoo Ryu, Stephanie C. Sun
  • Publication number: 20200046991
    Abstract: The present disclosure provides systems and methods for applying anti-tachycardia pacing (ATP) using subcutaneous implantable cardioverter-defibrillators (SICDs). An SICD implantable in a subject includes a case including a controller, and at least one conductive lead extending from the case. The at least one conductive lead includes a plurality of coil electrodes, wherein the SICD is configured, via the controller, to apply anti-tachycardia pacing (ATP) to the subject using the at least one conductive lead.
    Type: Application
    Filed: August 7, 2018
    Publication date: February 13, 2020
    Inventors: Gene A. Bornzin, Xiaoyi Min, Wenwen Li, Stuart Rosenberg, Kyungmoo Ryu, Alexander Bornzin, Leyla Sabet, Shubha Asopa, Xing Pei
  • Publication number: 20200046982
    Abstract: A computer implemented method and system for detecting arrhythmias in cardiac activity are provided. The method is under control of one or more processors configured with specific executable instructions. The method obtains cardiac activity (CA) signals at the electrodes of an implantable medical device (IMD) in connection multiple cardiac beats and with different IMD orientations relative to gravitational force. The method obtains acceleration signatures at a sensor of the IMD that are indicative of heart sounds generated during the cardiac beats. The method obtains device location information at the IMD, with respect to the gravitational force during the cardiac beats. The method groups the acceleration signatures associated with the first and second set of cardiac beats into the corresponding one of first and second posture bins based on the device location information.
    Type: Application
    Filed: August 9, 2018
    Publication date: February 13, 2020
    Inventors: Xiaoyi Min, Kyungmoo Ryu, Thanh Tieu, Bornzin Gene, Stuart Rosenberg
  • Publication number: 20200046312
    Abstract: Methods and implantable medical devices (IMDs) are provided for monitoring a cardiac function of a heart. A heart sound sensor is configured to sense heart sound signals of the subject. The IMD includes a memory to store program instructions. The IMD includes a processor that, when executing the program instructions, is configured to identify S2 signal segment from the heart sound signals, analyze the S2 signal segment to identify a pulmonary valve signal (P2 signal) and an aortic valve signal (A2 signal) within an S2 signal segment of the heart sound signals. The processor is configured to determine a time interval between the A2 and P2 signals, characterize the S2 signal segment to exhibit a first type of S2 split based on the time interval, and identify a cardiac condition based on a comparison of the first type of S2 split and a cardiac condition matrix.
    Type: Application
    Filed: August 7, 2018
    Publication date: February 13, 2020
    Inventors: Xiaoyi Min, Kyungmoo Ryu, Stephanie C. Sun
  • Publication number: 20200016410
    Abstract: A method and system are provided for controlling an adaptive pacing therapy using an implantable medical device (MD). The method provides electrodes that are configured to be located proximate to an atrial (A) site, left ventricular (LV) site and right ventricular (RV) site of the heart. The method utilizes one or more processors to perform obtaining an intra-atrial conduction interval (IACI-LVPROX) between an atrial event and intrinsic conduction at an LV site that is proximal to a sinoatrial (SA) node and obtaining timing of a first heart sound S1. The processors determine whether the S1 occurs after the IACI-LVPROX, and calculates an S1-conduction lag ?S1_C between the IACI-LVPROX and the first heart sound S1. The processors set an atrial-ventricular pacing (AV) delay based on the IACI-LVPROX and the ?S1_C. The processors deliver a pacing therapy based on the AV delay.
    Type: Application
    Filed: July 12, 2018
    Publication date: January 16, 2020
    Inventor: Xiaoyi Min
  • Publication number: 20190357959
    Abstract: An apparatus for providing therapy to tissue comprising a flexible shaft with distal and proximal ends, and a planar therapy structure, where the planar therapy structure is coupled with the distal end of the flexible shaft, where the planar therapy structure comprises an inlet to receive a pressurized coolant from a supply line, a plurality of openings to provide the pressurized coolant to an expansion chamber, and an outlet to receive a de-pressurized coolant from the expansion chamber. A system comprising a coolant source, a coolant control, a catheter, and a planar therapy structure. A method for cooling tissue comprising circulating a coolant through a portion of the catheter, inputting the coolant through an inlet, dispensing the coolant from the inlet through a plurality of openings into an expansion chamber, cooling a tissue proximate the distal end portion of the catheter, and outputting the coolant from the expansion chamber.
    Type: Application
    Filed: February 9, 2018
    Publication date: November 28, 2019
    Inventors: Wenbo HOU, Xiaoyi MIN
  • Publication number: 20190336754
    Abstract: Methods for implanting a puke generator (PG) within a pectoral region of a chest of a patient and devices having the PG. The PG has a housing that includes a PG electrode. Methods also include implanting at least one lead having first and second electrode segments with the first electrode segment positioned along an anterior of the chest of the patient and the second electrode segment positioned along at least one of a posterior of the patient or a side of the patient. The first and second electrode segments are positioned subcutaneously at or below an apex of a heart of the patient, wherein the PG electrode and the first and second electrode segments are configured to provide electrical shocks for antiarrhythmic therapy.
    Type: Application
    Filed: May 7, 2018
    Publication date: November 7, 2019
    Applicant: Pacesetter, Inc.
    Inventors: Xiaoyi Min, Avi Fischer, Kyungmoo Ryu, Gabriel A. Mouchawar
  • Publication number: 20190336747
    Abstract: Methods and devices include making an incision at a single site of a patient. The single site located at an anterior of a chest or abdomen. The method also includes inserting a tunneling tool through the incision at the single site and preparing a first tunnel to a subcutaneous posterior location. A path of the first tunnel at least one of i) extends over a plurality of Intercostal gaps of the chest or ii) extends along and within one of the intercostal gaps. The method also includes positioning a first lead having an electrode within the first tunnel and preparing a second tunnel to a subcutaneous parasternal location along the chest. The method also includes positioning a second lead having an electrode within the second tunnel and positioning a pulse generator within a subcutaneous pocket and operatively coupling the first and second leads to the pulse generator.
    Type: Application
    Filed: May 7, 2018
    Publication date: November 7, 2019
    Applicant: Pacesetter, Inc.
    Inventors: Avi Fischer, Xiaoyi Min, Kyungmoo Ryu, Gene A. Bornzin, Keith Victorine, Stuart Rosenberg, Shubha Asopa
  • Publication number: 20190336753
    Abstract: A subcutaneous implantable medical device and method (SIMD) provided. A pulse generator (PG) is configured to be positioned subcutaneously within a lateral region of a chest of a patient. The PG has a housing that includes a PG electrode. The PG has an electronics module. An elongated lead is electrically coupled to the pulse generator. The elongated lead includes a first electrode that is configured to be positioned along a first parasternal region proximate a sternum of the patient and a second electrode that is configured to be positioned at an anterior region of the patient. The first and second electrodes are coupled to be electrically common with one another. The electronics module is configured to provide electrical shocks for antiarrhythmic therapy along at least one shocking vector between the PG electrode and the first and second electrodes.
    Type: Application
    Filed: May 7, 2018
    Publication date: November 7, 2019
    Applicant: Pacesetter, Inc.
    Inventors: Xiaoyi Min, Kyungmoo Ryu, Keith Victorine, Stuart Rosenberg, Gene A. Bornzin
  • Publication number: 20190336026
    Abstract: Computer implemented methods and systems for detecting arrhythmias in cardiac activity are provided. The method is under control of one or more processors configured with specific executable instructions. The method obtains a far field cardiac activity (CA) data set that includes far field CA signals for beats. The method applies a feature enhancement function to the CA signals to form an enhanced feature in the CA data set. The method calculates an adaptive sensitivity level and sensitivity limit based on the enhanced feature from one or more beats within the CA data set and automatically iteratively analyzes a beat segment of interest by comparing the beat segment of interest to the current sensitivity level to determine whether one or more R-waves are present within the beat segment of interest.
    Type: Application
    Filed: May 7, 2018
    Publication date: November 7, 2019
    Inventors: Fady Dawoud, Fujian Qu, Stuart Rosenberg, Gene A. Bornzin, Jong Gill, Neha Malhotra, Xiaoyi Min
  • Patent number: 10398332
    Abstract: Methods, systems, and apparatus for signal detection are described. In one example, a detection assembly includes a signal detector. The signal detector is configured to receive a sensor signal having a peak magnitude and a first frequency and generate an output signal having a magnitude proportional to the peak magnitude of the sensor signal and having a second frequency less than the first frequency of the sensor signal.
    Type: Grant
    Filed: October 1, 2014
    Date of Patent: September 3, 2019
    Assignee: St. Jude Medical, Inc.
    Inventors: Xiaoyi Min, Stuart Rosenberg, Gabriel Mouchawar
  • Publication number: 20190255338
    Abstract: A system and method for controlling non-paresthesia stimulation of neural tissue of a patient. The method delivers a non-paresthesia stimulation waveform, senses sensory action potential (SAP) signals from the neural tissue of interest and analyzes the SAP signals to obtain SAP activity data for at least one of an SAP C-fiber component or an SAP A-delta fiber component. The method determines whether the SAP activity data satisfies a criteria of interest and adjusts at least one of the therapy parameters to change the non-paresthesia stimulation waveform when the SAP activity data does not satisfy the criteria of interest.
    Type: Application
    Filed: April 30, 2019
    Publication date: August 22, 2019
    Applicant: PACESETTER, INC.
    Inventors: Wenbo Hou, Melanie Goodman Keiser, Xiaoyi Min, Bruce A. Morley
  • Patent number: 10376689
    Abstract: The present disclosure generally relates to extraforaminal electrical stimulation systems and leads for electrical stimulation of the dorsal root and dorsal root ganglion (DRG), minimally invasive implantation methods therefore, and related methods of providing extraforaminal electrical stimulation of the dorsal root and DRG for the treatment of a medical condition. In accordance with certain aspects, the extraforaminal electrical stimulation leads and methods are particularly suited for stimulation of dorsal roots and DRG of the cervical and thoracic spine.
    Type: Grant
    Filed: December 21, 2016
    Date of Patent: August 13, 2019
    Assignee: PACESETTER, INC.
    Inventors: Alexander Kent, William Cusack, Xiaoyi Min, Gene A. Bornzin
  • Patent number: 10369368
    Abstract: An exemplary method for optimizing pacing configuration includes providing distances between electrodes of a series of three or more ventricular electrodes associated with a ventricle; selecting a ventricular electrode from the series; delivering energy to the ventricle via the selected ventricular electrode, the energy sufficient to cause an evoked response; acquiring signals of cardiac electrical activity associated with the evoked response via non-selected ventricular electrodes of the series; based on signals of cardiac electrical activity acquired via the non-selected ventricular electrodes and the distances, determining conduction velocities; based on the conduction velocities, deciding if the selected ventricular electrode is an optimal electrode for delivery of a cardiac pacing therapy; and, if the selected ventricular electrode comprises an optimal electrode for delivery of the cardiac pacing therapy, calling for delivery of the cardiac pacing therapy using the selected ventricular electrode.
    Type: Grant
    Filed: June 3, 2016
    Date of Patent: August 6, 2019
    Assignee: Pacesetter, Inc.
    Inventors: Kyungmoo Ryu, Xiaoyi Min
  • Publication number: 20190142325
    Abstract: A system and method for modeling patient-specific spinal cord stimulation (SCS) is disclosed. The system and method acquire impedance and evoked compound action potential (ECAP) signals from a lead positioned proximate to a spinal cord (SC). The lead includes at least one electrode. The system and method determine a patient-specific anatomical model based on the impedance and ECAP signals, and transform a dorsal column (DC) map template based on a DC boundary of the patient-specific anatomical model. Further, the system and method map the transformed DC map template to the patient-specific anatomical model. The system and method may also include the algorithms to solve extracellular and intracellular domain electrical fields and propagation along neurons. The system and method may also include the user interfaces to collect patient responses and compare with the patient-specific anatomical model as well as using the patient-specific anatomical model for guiding SCS programming.
    Type: Application
    Filed: January 15, 2019
    Publication date: May 16, 2019
    Inventors: Xiaoyi Min, Alexander Kent
  • Publication number: 20190133457
    Abstract: Computer implemented methods, systems and devices are provided to monitor for potential heart failure (HF). Cardiac activity (CA) data is obtained and filtered to obtain respiration data indicative of a respiration pattern. The respiration data is analyzed to determine one or more respiration characteristics of interest (COI) that are recorded along with collection time information to form an HF monitoring log. Additionally or alternatively, the CA data is analyzed to detect an event of interest. The cardiac activity data is filtered to obtain respiration data indicative of a respiration pattern, and the respiration data is analyzed for respiration induced under detection of the event of interest from the CA data.
    Type: Application
    Filed: November 3, 2017
    Publication date: May 9, 2019
    Inventors: Stephanie C. Sun, Xiaoyi Min, Alan B. Vogel, Fujian Qu, Stuart Rosenberg