Patents by Inventor Hong Fu

Hong Fu 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).

  • Publication number: 20220042790
    Abstract: A measurement apparatus for measuring a laser focus spot size, which includes a two-dimensional image detector and an imaging system which forms a magnified image of a focus spot located an object plane onto the image detector. The imaging system includes at least an objective lens. A sealed liquid container is secured over a part of the objective lens such as the optical surface of the objective lens is immersed in the liquid (e.g. water) within the container. The liquid container has a window through which the laser beam enters. An image processing method is also disclosed which processes the image obtained by the image detector to obtain the focus spot size while implementing an algorithm that corrects for the effect of ambient vibration.
    Type: Application
    Filed: October 22, 2021
    Publication date: February 10, 2022
    Inventors: Zheng Sun, Daniel Bray, Zenon Witowski, Timothy Slotterback, Hong Fu
  • Publication number: 20220031508
    Abstract: Some embodiments disclosed here provide for a method fragmenting a cataractous lens of a patient's eye using an ultra-short pulsed laser. The method can include determining, within a lens of a patient's eye, a high NA zone where a cone angle of a laser beam with a high numerical aperture is not shadowed by the iris, and a low NA zone radially closer to the iris where the cone angle of the laser beam with a low numerical aperture is not shadowed by the iris. Laser lens fragmentation is accomplished by delivering the laser beam with the high numerical aperture to the high NA zone, and the laser beam with the low numerical aperture to the low NA zone. This can result in a more effective fragmentation of a nucleus of the lens without exposing the retina to radiation above safety standards.
    Type: Application
    Filed: October 21, 2021
    Publication date: February 3, 2022
    Inventors: Anthony W. Dennison, Michael A. Campos, Hong Fu
  • Patent number: 11215814
    Abstract: An ophthalmic laser system uses a non-confocal configuration to determine a laser beam focus position relative to the patient interface (PI) surface. The system includes a light intensity detector with no confocal lens or pinhole between the detector and the objective lens. When the objective focuses the light to a target focus point inside the PI lens at a particular offset from its distal surface, the light signal at the detector peaks. The offset value is determined by fixed system parameters, and can also be empirically determined by directly measuring the PI lens surface by observing the effect of plasma formation at the glass surface. During ophthalmic procedures, the laser focus is first scanned insider the PI lens, and the target focus point location is determined from the peak of the detector signal. The known offset value is then added to obtain the location of the PI lens surface.
    Type: Grant
    Filed: August 24, 2018
    Date of Patent: January 4, 2022
    Assignee: AMO Development, LLC
    Inventors: Mohammad Saidur Rahaman, Hong Fu, Roger W. Accurso, Zenon Witowski
  • Patent number: 11200070
    Abstract: Aspects of the present disclosure are directed to methods, systems, and computer program products for using dynamic-link library based on memory size. In the method, a request for calling a first function in a Dynamic-link library (DLL) at runtime is received first. A size of a memory allocated to the DLL is then determined. Then call relationship of functions in the DLL is obtained. At last, functions related to the first function in the DLL are loaded into the memory allocated to the DLL based on the size of the memory allocated to the DLL and call relationship of functions in the DLL.
    Type: Grant
    Filed: August 3, 2018
    Date of Patent: December 14, 2021
    Assignee: International Business Machines Corporation
    Inventors: Bao Zhang, Jing Lu, Jin Hong Fu, Shi Chong Ma, Xiao Ling Chen, Yuk L. Chan
  • Publication number: 20210346202
    Abstract: Embodiments generally relate to ophthalmic laser procedures and, more particularly, to systems and methods for lenticular laser incisions to form a top lenticular incision, a bottom lenticular incision of a lens in the subject's eye, an added shape between the top and bottom incisions where the added shape has no corrective power and a transition ring bisecting both the top and bottom lenticular incisions.
    Type: Application
    Filed: July 19, 2021
    Publication date: November 11, 2021
    Applicant: AMO Development, LLC
    Inventors: Alireza Malek Tabrizi, Hong Fu, James E. Hill
  • Publication number: 20210346195
    Abstract: A system and method for performing ophthalmic surgery using an ultra-short pulsed laser is provided. The system includes a laser engine configured to provide an ultra-short pulsed laser beam, optics configured to direct the laser beam to an undocked eye of a patient, an eye tracker configured to measure five degrees of freedom of movement of the undocked eye, an optical coherence tomography module configured to measure depth of the undocked eye, and a controller configured to control laser beam position on the undocked eye toward a desired laser pattern based on depth and the five degrees of freedom of movement of the undocked eye. Adaptive optics are also provided. Also disclosed are a scleral ring including fiducial markings and a compliant contact lens and fluid tillable contact lens configured to facilitate ultra-short pulsed laser surgery while reducing or eliminating eye docking requirements.
    Type: Application
    Filed: July 21, 2021
    Publication date: November 11, 2021
    Inventors: Hon M. Lee, Peter-Patrick De Guzman, Victor Kardos, Hong Fu, Robert G. Heitel, John M. Tamkin, Mikhail Levin, Bing Wang
  • Patent number: 11154425
    Abstract: Some embodiments disclosed here provide for a method fragmenting a cataractous lens of a patient's eye using an ultra-short pulsed laser. The method can include determining, within a lens of a patient's eye, a high NA zone where a cone angle of a laser beam with a high numerical aperture is not shadowed by the iris, and a low NA zone radially closer to the iris where the cone angle of the laser beam with a low numerical aperture is not shadowed by the iris. Laser lens fragmentation is accomplished by delivering the laser beam with the high numerical aperture to the high NA zone, and the laser beam with the low numerical aperture to the low NA zone. This can result in a more effective fragmentation of a nucleus of the lens without exposing the retina to radiation above safety standards.
    Type: Grant
    Filed: July 25, 2019
    Date of Patent: October 26, 2021
    Assignee: AMO Development, LLC
    Inventors: Anthony W. Dennison, Michael A. Campos, Hong Fu
  • Patent number: 11156453
    Abstract: A measurement apparatus for measuring a laser focus spot size, which includes a two-dimensional image detector and an imaging system which forms a magnified image of a focus spot located an object plane onto the image detector. The imaging system includes at least an objective lens. A sealed liquid container is secured over a part of the objective lens such as the optical surface of the objective lens is immersed in the liquid (e.g. water) within the container. The liquid container has a window through which the laser beam enters. An image processing method is also disclosed which processes the image obtained by the image detector to obtain the focus spot size while implementing an algorithm that corrects for the effect of ambient vibration.
    Type: Grant
    Filed: June 19, 2020
    Date of Patent: October 26, 2021
    Assignee: AMO Development, LLC
    Inventors: Zheng Sun, Daniel Bray, Zenon Witowski, Timothy Slotterback, Hong Fu
  • Publication number: 20210298958
    Abstract: Embodiments of this invention generally relate to ophthalmic laser procedures and, more particularly, to systems and methods for creating synchronized three-dimensional laser incisions. In an embodiment, an ophthalmic surgical laser system comprises a laser delivery system for delivering a pulsed laser beam to a target in a subject's eye, an XY-scan device to deflect the pulsed laser beam, a Z-scan device to modify a depth of a focus of the pulsed laser beam, and a controller configured to synchronize an oscillation of the XY-scan device and an oscillation of the Z-device to form an angled three-dimensional laser tissue dissection.
    Type: Application
    Filed: June 11, 2021
    Publication date: September 30, 2021
    Inventors: Hong Fu, Patrick De Guzman, Robert Heitel, Alireza Malek Tabrizi
  • Patent number: 11123224
    Abstract: A compact system for performing laser ophthalmic surgery is disclosed. The systems and methods may be used to measure corneal thickness or other anatomy to prepare a treatment plan for any of numerous treatments, such as LASIK, PRK, intra stromal lenticular lens incisions, cornea replacement, or any other treatment. By using a reduced power femtosecond laser backscatter may be measured to calculate distances such as distances between an interior boundary and an exterior boundary of a cornea or other tissue.
    Type: Grant
    Filed: June 28, 2019
    Date of Patent: September 21, 2021
    Assignee: AMO Development, LLC
    Inventors: Alireza Malek Tabrizi, Harvey I. Liu, Hong Fu
  • Patent number: 11076990
    Abstract: A system and method for performing ophthalmic surgery using an ultra-short pulsed laser is provided. The system includes a laser engine configured to provide an ultra-short pulsed laser beam, optics configured to direct the laser beam to an undocked eye of a patient, an eye tracker configured to measure five degrees of freedom of movement of the undocked eye, an optical coherence tomography module configured to measure depth of the undocked eye, and a controller configured to control laser beam position on the undocked eye toward a desired laser pattern based on depth and the five degrees of freedom of movement of the undocked eye. Adaptive optics are also provided. Also disclosed are a scleral ring including fiducial markings and a compliant contact lens and fluid tillable contact lens configured to facilitate ultra-short pulsed laser surgery while reducing or eliminating eye docking requirements.
    Type: Grant
    Filed: December 19, 2017
    Date of Patent: August 3, 2021
    Assignee: AMO Development, LLC
    Inventors: Hon M. Lee, Peter-Patrick De Guzman, Victor Kardos, Hong Fu, Robert G. Heitel, John M. Tamkin, Mikhail Levin, Bing Wang
  • Patent number: 11065156
    Abstract: Embodiments generally relate to ophthalmic laser procedures and, more particularly, to systems and methods for lenticular laser incisions to form a top lenticular incision, a bottom lenticular incision of a lens in the subject's eye, an added shape between the top and bottom incisions where the added shape has no corrective power and a transition ring bisecting both the top and bottom lenticular incisions.
    Type: Grant
    Filed: June 29, 2017
    Date of Patent: July 20, 2021
    Assignee: AMO DEVELOPMENT, LLC
    Inventors: Alireza Malek Tabrizi, Hong Fu, James E. Hill
  • Publication number: 20210196518
    Abstract: An ophthalmic surgical laser system includes a laser beam delivery system having multiple moving components for scanning a laser focal spot in a target eye tissue, where the motors that actuate some of the moving components are equipped with respective digital encoders that measure actual motor positions. A controller controls the laser beam delivery system to perform a treatment scan, while recording the actual motor positions from the encoders. Using the actual motor positions and a calibration relationship between actual motor positions and delivered laser focal spot positions in a target tissue, a laser cutting pattern is digitally reconstructed, which represents the incisions actually achieved by the treatment scan. The reconstructed laser cutting pattern may be visually inspected and further analyzed, e.g. to compare it to the intended laser cutting pattern used to execute the treatment scan, to calculate the achieved refractive correction, or to simulate tissue resetting.
    Type: Application
    Filed: November 23, 2020
    Publication date: July 1, 2021
    Inventors: Paul Gray, Guangming Dai, Alireza Malek Tabrizi, Hong Fu
  • Patent number: 11039959
    Abstract: An ophthalmic laser procedure for forming a lenticule in a cornea and extracting the lenticule from the cornea to accomplish vision correction. An ophthalmic laser system is used to form top and bottom lenticule incisions defining a lenticule in between, and further to form top and/or bottom entry cuts that respectively end unambiguously near the top or bottom lenticule surface. The bottom entry cut intersects both the top and bottom lenticule incisions but ends near the bottom lenticule incision. The entry cuts allow the surgeon to insert a surgical tool which reaches the intended top or bottom lenticule surface without ambiguity. The lenticule has an optical zone in the center that defines the optical power of the lenticule, and a transition zone in the periphery, where the end points of the entry cuts are located in the transition zone.
    Type: Grant
    Filed: September 4, 2018
    Date of Patent: June 22, 2021
    Assignee: AMO Development, LLC
    Inventors: Hong Fu, Alireza Malek Tabrizi, Nima Khatibzadeh, James Hill
  • Patent number: 11033431
    Abstract: Embodiments of this invention generally relate to ophthalmic laser procedures and, more particularly, to systems and methods for creating synchronized three-dimensional laser incisions. In an embodiment, an ophthalmic surgical laser system comprises a laser delivery system for delivering a pulsed laser beam to a target in a subject's eye, an XY-scan device to deflect the pulsed laser beam, a Z-scan device to modify a depth of a focus of the pulsed laser beam, and a controller configured to synchronize an oscillation of the XY-scan device and an oscillation of the Z-device to form an angled three-dimensional laser tissue dissection.
    Type: Grant
    Filed: October 28, 2019
    Date of Patent: June 15, 2021
    Assignee: AMO Development, LLC
    Inventors: Hong Fu, Patrick De Guzman, Robert Heitel, Alireza Malek Tabrizi
  • Publication number: 20210139506
    Abstract: Provided are certain TRK inhibitors, pharmaceutical compositions thereof, and methods of use thereof.
    Type: Application
    Filed: March 27, 2019
    Publication date: May 13, 2021
    Applicants: Fochon Pharmaceuticals, Ltd., Shanghai Fochon Pharmaceutical Co., LTD.
    Inventors: Huajie ZHANG, Qihong LIU, Chengxi HE, Weipeng ZHANG, Rui TAN, Bin LIU, Hong FU, Haohan TAN, Lijun YANG, Hongbin LIU, Yunling WANG, Yuwei GAO, Zongyao ZOU, Yanxin LIU, Shu LIN, Tongshuang LI, Xingdong ZHAO, Weibo WANG
  • Publication number: 20210128358
    Abstract: An ophthalmic surgical laser system and method for forming a lenticule in a subject's eye using “fast-scan-slow-sweep” scanning scheme. A high frequency scanner forms a fast scan line, which is placed by the XY and Z scanners at a location tangential to a parallel of latitude of the surface of the lenticule. The XY and Z scanners then move the scan line in a slow sweep trajectory along a meridian of longitude of the surface of the lenticule in one sweep. Multiple sweeps are performed along different meridians to form the entire lenticule surface, and a prism is used to change the orientation of the scan line of the high frequency scanner between successive sweeps. In each sweep, the sweeping speed along the meridian is variable, being the slowest at the edge of the lenticule and the fastest near the apex.
    Type: Application
    Filed: November 11, 2020
    Publication date: May 6, 2021
    Inventors: Hong Fu, Alireza Malek Tabrizi, Nima Khatibzadeh
  • Patent number: 10973688
    Abstract: An ophthalmic laser surgical system uses a confocal detector assembly to continuously detect a confocal signal during laser treatment, and based on the confocal signal, detects in real time a loss of tissue contact with the patient interface (PI) output surface. The detection is partly based on the change of reflectivity at the PI output surface when the optical interface changes from a lens-tissue interface to a lens-air interface. The behavior of the confocal signal upon loss of tissue contact is dependent on the treatment laser scan pattern being performed at the time of tissue contact loss. Thus, different confocal signal analysis algorithms are applied to detect tissue contact loss during different scans, such as the bed cut and side cut for a corneal flap. The real time confocal signal may also be used during eye docking to detect the establishment of tissue contact with the PI output surface.
    Type: Grant
    Filed: March 15, 2019
    Date of Patent: April 13, 2021
    Assignee: AMO Development, LLC
    Inventors: Harvey I. Liu, Mohammad Saidur Rahaman, Hong Fu, Griffith E. Altmann
  • Patent number: 10977101
    Abstract: Systems, methods, and computer-readable media are described for interoperability between programs associated with different addressing modes. A caller program associated with a first addressing mode (e.g., a 32-bit program or a 64-bit program) that is executing within a parent runtime environment makes a call to an external interface to execute a target callee program that is associated with a second addressing mode different from the first addressing mode. The target callee program is then executed in a pre-initialized secondary runtime environment that executes on the same task or thread as the parent runtime environment.
    Type: Grant
    Filed: December 12, 2018
    Date of Patent: April 13, 2021
    Assignee: INTERNATIONAL BUSINESS MACHINES CORPORATION
    Inventors: Naijie Li, Bao Zhang, Jing Lu, Jin Hong Fu, Kershaw Mehta
  • Publication number: 20210082109
    Abstract: Systems, methods, apparatuses, and computer program products for contact-free heart rate monitoring and/or measurement are provided. One method may include receiving video(s) that include visual frame(s) of individual s) performing exercises, detecting some exposed skin from the video(s), and performing motion compensation to generate color signals for the exposed skin to precisely align frames of the exposed skin. The method may also include generating the color signals by estimating a skin color for each frame by taking a spatial average over pixels of a cheek of the face(s) for R, G, and B channels, respectively, applying an operation to remove remaining motion traces from the frames such that the heart rate traces dominate, and extracting and/or outputting the heart rate of the individuals using a frequency estimator of the skin color signals.
    Type: Application
    Filed: September 17, 2018
    Publication date: March 18, 2021
    Inventors: Min WU, Chau-Wai WONG, Qiang ZU, Chang-Hong FU, Jiahao SU