Patents by Inventor Chwen-Yuan Ku
Chwen-Yuan Ku 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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Publication number: 20210228168Abstract: An X-ray imaging system using multiple pulsed X-ray sources in motion to perform high efficient and ultrafast 3D radiography is presented. There are multiple pulsed X-ray sources mounted on a structure in motion to form an array of sources. The multiple X-ray sources move simultaneously relative to an object on a pre-defined arc track at a constant speed as a group. Each individual X-ray source can also move rapidly around its static position in a small distance. When an X-ray source has a speed that is equal to group speed but with opposite moving direction, the X-ray source and X-ray flat panel detector are activated through an external exposure control unit so that source stay momentarily standstill. It results in much reduced source travel distance for each X-ray source. 3D scan can cover much wider sweep angle in much shorter time and image analysis can also be done in real-time.Type: ApplicationFiled: January 14, 2021Publication date: July 29, 2021Inventors: Jianqiang Liu, Linbo Yang, Manat Maolinbay, Xiaohui Tang, Chwen-yuan Ku, Yichin Liu
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Publication number: 20200234908Abstract: X-ray target element is comprised of a planar wafer. The planar wafer element includes a target layer and a substrate layer. The target layer is comprised of an element having a relatively high atomic number and the substrate layer is comprised of diamond. The substrate layer is configured to support the target layer and facilitate transfer of thermal energy away from the target layer.Type: ApplicationFiled: March 31, 2020Publication date: July 23, 2020Inventors: Kalman Fishman, Brian P. Wilfley, Christopher W. Ellenor, Donald Olgado, Chwen-Yuan Ku, Tobias Funk, Petre Vatahov, Christopher R. Mitchell
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Patent number: 10607802Abstract: Three dimensional beam forming X-ray source includes an electron beam generator (EBG) to generate an electron beam. A target element is disposed a predetermined distance from the EBG and positioned to intercept the electron beam. The target element is responsive to the electron beam to generate X-ray radiation. A beam former is disposed proximate to the target element and comprised of a material which interacts with the X-ray radiation to form an X-ray beam. An EBG control system controls at least one of a beam pattern and a direction of the X-ray beam by selectively varying a location where the electron beam intersects the target element to control an interaction of the X-ray radiation with the beam-former.Type: GrantFiled: March 30, 2018Date of Patent: March 31, 2020Assignee: SENSUS HEALTHCARE, INC.Inventors: Kalman Fishman, Brian P. Wilfley, Christopher W. Ellenor, Donald Olgado, Chwen-Yuan Ku, Tobias Funk, Petre Vatahov, Christopher R. Mitchell
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Publication number: 20200038691Abstract: Validation of a therapeutic radiation treatment involves using an applicator balloon surrounding an X-ray radiation source to support a plurality of X-ray sensor elements (XRSE). The XRSE are supported on the applicator balloon at distributed locations to sense applied radiation from the radiation source. At least one parameter of the applied radiation which has been sensed by the XRSE is compared to a corresponding parameter of a predetermined radiation treatment plan. Based on the comparing, a determination is made as to whether one or more requirements of the predetermined radiation treatment plan have been satisfied.Type: ApplicationFiled: October 7, 2019Publication date: February 6, 2020Inventors: Kalman Fishman, Brian P. Wilfley, Christopher W. Ellenor, Donald Olgado, Chwen-Yuan Ku, Tobias Funk, Petre Vatahov, Christopher R. Mitchell, Yonatan Vainer
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Publication number: 20180286623Abstract: Three dimensional beam forming X-ray source includes an electron beam generator (EBG) to generate an electron beam. A target element is disposed a predetermined distance from the EBG and positioned to intercept the electron beam. The target element is responsive to the electron beam to generate X-ray radiation. A beam former is disposed proximate to the target element and comprised of a material which interacts with the X-ray radiation to form an X-ray beam. An EBG control system controls at least one of a beam pattern and a direction of the X-ray beam by selectively varying a location where the electron beam intersects the target element to control an interaction of the X-ray radiation with the beam-former.Type: ApplicationFiled: March 30, 2018Publication date: October 4, 2018Inventors: Kalman Fishman, Brian P. Wilfley, Christopher W. Ellenor, Donald Olgado, Chwen-Yuan Ku, Tobias Funk, Petre Vatahov, Christopher R. Mitchell
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Patent number: 9955900Abstract: A device for monitoring human feet can include: a transmissive sheet configured to bear at least 90 kg supported at a height of no more than 23 cm, and a foot image capture system below the sheet. An optical image sensor can capture a field of view including at least 250 cm2 of the surface of the sheet. The device can have a central reflective element positioned below the sheet directly above the sensor and two outer mirrors such that two fields of view at least 250 cm2 each can be focused onto the sensor by a lens. Foot sole images can be automatically captured when a patient stands on the device. Images can be transmitted to a database and associated with the patient by analyzing the images for a unique predetermined metric.Type: GrantFiled: May 21, 2013Date of Patent: May 1, 2018Assignee: QUAERIMUS, INC.Inventors: Richard W. O'Connor, Alan D. Baldwin, Chwen-Yuan Ku, Jivko M. Mihaylov, David E. Goodman, Lester J. Lloyd, Joseph A. Heanue
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Patent number: 9901298Abstract: The present invention pertains to a device and method for imaging of a human foot including a transmissive sheet with an upper surface configured to accommodate a sole of the foot, a light source positioned below the sheet for emitting light toward the sheet, and an optical path controller in the sheet or coupled to the sheet for altering a path of the light causing internal reflection of the light toward a predetermined region of the foot. The image can be analyzed for a predetermined characteristic associated with a human patient, and determination made whether the characteristic in the image matches the patient. Brightness in the image can be analyzed for tissue moisture information.Type: GrantFiled: November 1, 2013Date of Patent: February 27, 2018Assignee: QUAERIMUS MEDICAL INCORPORATEDInventors: Richard W. O'Connor, Alan D. Baldwin, Chwen-Yuan Ku, Jivko M. Mihaylov, David E. Goodman, Lester J. Lloyd, Joseph A. Heanue
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Patent number: 9733198Abstract: The present invention pertains to an apparatus and method for X-ray imaging wherein a radiation source comprising rows of discrete emissive locations can be positioned such that these rows are angularly offset relative to rows of sensing elements on a radiation sensor. A processor can process and allocate responses of the sensing elements in appropriate memory locations given the angular offset between source and sensor. This manner of allocation can include allocating the responses into data rows associated with unique positions along a direction of columns of discrete emissive locations on the source. Mapping coefficients can be determined that map allocated responses into an image plane.Type: GrantFiled: December 21, 2015Date of Patent: August 15, 2017Assignee: NOVARAY MEDICAL, INC.Inventors: Augustus Percival Lowell, Tobias Funk, Chwen-Yuan Ku, Josh Star-Lack, Edward Gerald Solomon, Winston Y. Sun
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Patent number: 9369646Abstract: Examples of systems and methods to provide estimates of dark current for pixels of a photosensor as a function of the temperature of the sensor and the gain applied to the photosensor are described. In various implementations, the dark current estimated for each pixel can depend at least partly on a global scale factor and a global bias that depend on temperature and gain and a temperature-independent and gain-independent offset value for each pixel. The scale, bias, and offsets may be determined from multiple dark field images taken by the sensor over a range of operating temperatures. In some cases, the scale and bias can be determined using a subset of less than all the image pixels. Scale and bias derived for a particular sensor can be used in the calibration of different sensors.Type: GrantFiled: June 29, 2015Date of Patent: June 14, 2016Assignee: Skybox Imaging, Inc.Inventors: Chwen-Yuan Ku, H. Keith Nishihara, M. Dirk Robinson
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Publication number: 20160123902Abstract: The present invention pertains to an apparatus and method for X-ray imaging wherein a radiation source comprising rows of discrete emissive locations can be positioned such that these rows are angularly offset relative to rows of sensing elements on a radiation sensor. A processor can process and allocate responses of the sensing elements in appropriate memory locations given the angular offset between source and sensor. This manner of allocation can include allocating the responses into data rows associated with unique positions along a direction of columns of discrete emissive locations on the source. Mapping coefficients can be determined that map allocated responses into an image plane.Type: ApplicationFiled: December 21, 2015Publication date: May 5, 2016Inventors: Augustus Percival Lowell, Tobias Funk, Chwen-Yuan Ku, Josh Star-Lack, Edward Gerald Solomon, Winston Y. Sun
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Patent number: 9217719Abstract: The present invention pertains to an apparatus and method for X-ray imaging wherein a radiation source comprising rows of discrete emissive locations can be positioned such that these rows are angularly offset relative to rows of sensing elements on a radiation sensor. A processor can process and allocate responses of the sensing elements in appropriate memory locations given the angular offset between source and sensor. This manner of allocation can include allocating the responses into data rows associated with unique positions along a direction of columns of discrete emissive locations on the source. Mapping coefficients can be determined that map allocated responses into an image plane.Type: GrantFiled: January 10, 2013Date of Patent: December 22, 2015Assignee: Novaray Medical, Inc.Inventors: Augustus Percival Lowell, Tobias Funk, Chwen-Yuan Ku, Josh Star-Lack, Edward Gerald Solomon, Winston Y. Sun
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Publication number: 20150319385Abstract: Examples of systems and methods to provide estimates of dark current for pixels of a photosensor as a function of the temperature of the sensor and the gain applied to the photosensor are described. In various implementations, the dark current estimated for each pixel can depend at least partly on a global scale factor and a global bias that depend on temperature and gain and a temperature-independent and gain-independent offset value for each pixel. The scale, bias, and offsets may be determined from multiple dark field images taken by the sensor over a range of operating temperatures. In some cases, the scale and bias can be determined using a subset of less than all the image pixels. Scale and bias derived for a particular sensor can be used in the calibration of different sensors.Type: ApplicationFiled: June 29, 2015Publication date: November 5, 2015Inventors: Chwen-Yuan Ku, H. Keith Nishihara, M. Dirk Robinson
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Publication number: 20140192955Abstract: The present invention pertains to an apparatus and method for X-ray imaging wherein a radiation source comprising rows of discrete emissive locations can be positioned such that these rows are angularly offset relative to rows of sensing elements on a radiation sensor. A processor can process and allocate responses of the sensing elements in appropriate memory locations given the angular offset between source and sensor. This manner of allocation can include allocating the responses into data rows associated with unique positions along a direction of columns of discrete emissive locations on the source. Mapping coefficients can be determined that map allocated responses into an image plane.Type: ApplicationFiled: January 10, 2013Publication date: July 10, 2014Inventors: AUGUSTUS PERCIVAL LOWELL, TOBIAS FUNK, CHWEN-YUAN KU, JOSH STAR-LACK, EDWARD GERALD SOLOMON, WINSTON Y. SUN
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Publication number: 20140121532Abstract: The present invention pertains to a device and method for monitoring of human feet including a transmissive sheet configured to bear at least 90 kg supported at a height of no more than 23 cm and having a foot image capture system below the sheet wherein an optical image sensor can capture a field of view including at least 250 cm2 of the surface of the sheet. The device can have a central reflective element positioned below the sheet directly above the sensor and two outer mirrors such that two fields of view at least 250 cm2 each can be focused onto the sensor by a lens. Foot sole images can be automatically captured when the patient stands on the device. Images can be transmitted to a database and associated with a patient by analyzing the images for a unique predetermined metric.Type: ApplicationFiled: May 21, 2013Publication date: May 1, 2014Applicant: QUAERIMUS, INC.Inventors: RICHARD W. O'CONNOR, ALAN D. BALDWIN, CHWEN-YUAN KU, JIVKO M. MIHAYLOV, DAVID E. GOODMAN, LESTER J. LLOYD, JOSEPH A. HEANUE
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Publication number: 20140121479Abstract: The present invention pertains to a device and method for imaging of a human foot including a transmissive sheet with an upper surface configured to accommodate a sole of the foot, a light source positioned below the sheet for emitting light toward the sheet, and an optical path controller in the sheet or coupled to the sheet for altering a path of the light causing internal reflection of the light toward a predetermined region of the foot. The image can be analyzed for a predetermined characteristic associated with a human patient, and determination made whether the characteristic in the image matches the patient. Brightness in the image can be analyzed for tissue moisture information.Type: ApplicationFiled: November 1, 2013Publication date: May 1, 2014Applicant: QUAERIMUS, INC.Inventors: RICHARD W. O'CONNOR, ALAN D. BALDWIN, CHWEN-YUAN KU, JIVKO M. MIHAYLOV, DAVID E. GOODMAN, LESTER J. LLOYD, JOSEPH A. HEANUE
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Publication number: 20130271628Abstract: Examples of systems and methods to provide estimates of dark current for pixels of a photosensor as a function of the temperature of the sensor and the gain applied to the photosensor are described. In various implementations, the dark current estimated for each pixel can depend at least partly on a global scale factor and a global bias that depend on temperature and gain and a temperature-independent and gain-independent offset value for each pixel. The scale, bias, and offsets may be determined from multiple dark field images taken by the sensor over a range of operating temperatures. In some cases, the scale and bias can be determined using a subset of less than all the image pixels. Scale and bias derived for a particular sensor can be used in the calibration of different sensors.Type: ApplicationFiled: November 20, 2012Publication date: October 17, 2013Applicant: SKYBOX IMAGING, INC.Inventors: Chwen-Yuan Ku, H. Keith Nishihara, M. Dirk Robinson