Patents by Inventor Stephen W. Farrer

Stephen W. Farrer 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: 9713421
    Abstract: Embodiments of this invention generally relate to systems and methods for wavefront interactive refraction display and more particularly to systems and methods for capturing and displaying eye wavefront interactive refraction data based on the desired refractive state of the patient's eye.
    Type: Grant
    Filed: January 14, 2016
    Date of Patent: July 25, 2017
    Assignee: AMO Wavefront Sciences, LLC
    Inventors: Daniel R. Neal, Stephen W. Farrer, Larry B. Voss, Thomas D. Raymond, Daniel R. Hamrick, John G. Dixson, Phillip Riera, Ron R. Rammage, Richard J. Copland
  • Publication number: 20170202455
    Abstract: A corneal topographer includes: a flat panel display configured to display a light pattern and to project the light pattern onto a cornea of an eye disposed on a first side of the flat panel display; an optical system disposed on a second side of the flat panel display, the optical system being configured to receive and process reflected light from the cornea that passes through the flat panel display from the cornea to the optical system; a camera configured to receive the processed reflected light from the optical system and to capture therefrom a reflected light pattern from the cornea produced in response to the projected light pattern; and one or more processors configured to execute an algorithm to compare the projected light pattern to the reflected light pattern from the cornea, and to produce a topographic map of the cornea based on a result of the comparison.
    Type: Application
    Filed: March 31, 2017
    Publication date: July 20, 2017
    Inventors: Stephen W. Farrer, W. Shea Powers, Daniel R. Neal, Larry B. Voss
  • Patent number: 9615739
    Abstract: A corneal topographer includes: a flat panel display configured to display a light pattern and to project the light pattern onto a cornea of an eye disposed on a first side of the flat panel display; an optical system disposed on a second side of the flat panel display, the optical system being configured to receive and process reflected light from the cornea that passes through the flat panel display from the cornea to the optical system; a camera configured to receive the processed reflected light from the optical system and to capture therefrom a reflected light pattern from the cornea produced in response to the projected light pattern; and one or more processors configured to execute an algorithm to compare the projected light pattern to the reflected light pattern from the cornea, and to produce a topographic map of the cornea based on a result of the comparison.
    Type: Grant
    Filed: June 30, 2015
    Date of Patent: April 11, 2017
    Assignee: AMO WAVEFRONT SCIENCES, LLC
    Inventors: Stephen W. Farrer, W. Shea Powers, Daniel R. Neal, Larry B. Voss
  • Publication number: 20170095147
    Abstract: An optical measurement system method for measuring a characteristic of a subject's eye use a probe beam having an infrared wavelength in the infrared spectrum to measure a refraction of the subject's eye at the infrared wavelength; capture at least two different Purkinje images at two different corresponding wavelengths from at least one surface of the lens of the subject's eye; determine from the at least two different Purkinje images a value for at least one parameter of the subject's eye; use the value of the at least one parameter to determine a customized chromatic adjustment factor for the subject's eye; and correct the measured refraction of the subject's eye at the infrared wavelength with the customized chromatic adjustment factor to determine a refraction of the subject's eye at a visible wavelength in the visible spectrum.
    Type: Application
    Filed: September 30, 2016
    Publication date: April 6, 2017
    Inventors: Richard J. Copland, Daniel R. Neal, Thomas D. Raymond, Stephen W. Farrer
  • Patent number: 9468369
    Abstract: A system includes a model eye and an optical measurement instrument, which includes: a corneal topography subsystem; a wavefront sensor subsystem; and an eye structure imaging subsystem. The subsystems may have a common fixation axis, and be operatively coupled to each other via a controller. The optical measurement instrument may perform measurements of the model eye to verify correct operation of the optical measurement instrument for measuring one or more characteristics of a subject's eye. The model eye may include an optically transmissive structure having a front curved surface and an opposite rear planar surface, and a material structure provided at the rear planar surface of the optically transmissive structure and having a characteristic to cause a speckle pattern of a portion of a coherent light beam that is directed back out the front curved surface of the optically transmissive structure to have a bright-to-dark ratio of less than 2:1.
    Type: Grant
    Filed: December 3, 2014
    Date of Patent: October 18, 2016
    Assignee: AMO WaveFront Sciences, LLC
    Inventors: Richard J. Copland, Daniel R. Neal, Thomas D. Raymond, Wei Xiong, Paul D. Pulaski, Stephen W. Farrer, Carmen Canovas Vidal, Daniel R. Hamrick
  • Publication number: 20160227997
    Abstract: An optical coherence tomography (OCT) system includes: a light source; a multi-focal delay line; and a light detector. The multi-focal delay line includes: a positive lens; and an optical switch configured to: receive a light from the light source; selectively direct the sample light to the positive lens via a selected one of a plurality of light interfaces each located a different distance from the focal plane of the positive lens; and direct the sample light to an object to be measured. The light detector is configured to receive return light returned from the object to be measured in response to the sample light, and to receive a reference light produced from the light from the light source, and in response thereto to detect at least one interference signal. An associated OCT method may be performed with the OCT system.
    Type: Application
    Filed: December 14, 2015
    Publication date: August 11, 2016
    Inventors: Paul Pulaski, Daniel R. Neal, Thomas D. Raymond, Stephen W. Farrer, Daniel R. Hamrick, Richard J. Copland
  • Publication number: 20160227996
    Abstract: A system for predicting optical power for an intraocular lens based upon measured biometric parameters in a patient's eye includes: a biometric reader capable of measuring at least one biometric parameter and a representation of a corneal topography of the patient's eye; a processor coupled to a computer readable medium having stored thereon a program that upon execution causes the processor to receive the at least one biometric parameter and obtain corneal spherical aberration based upon the representation of the corneal topography, and the processor calculates an optimized optical power to obtain a desired postoperative condition by applying the received value and obtained corneal spherical aberration to a modified regression, wherein the modified regression is of the form: optical power=Regression+constant0*(corneal spherical aberration) or optical power=constant1*(biometric parameter)+constant0*(corneal spherical aberration).
    Type: Application
    Filed: April 13, 2016
    Publication date: August 11, 2016
    Inventors: Daniel R. Neal, Thomas D. Raymond, Richard J. Copland, Wei Xiong, Stephen W. Farrer, Paul D. Pulaski, Daniel R. Hamrick, Carmen Canovas Vidal, Pablo Artal
  • Publication number: 20160150952
    Abstract: Improved devices, systems, and methods for planning cataract surgery on an eye of a patient incorporate results of prior corrective surgeries into a planned cataract surgery of a particular patient by driving an effective surgery vector function based on data from the prior corrective surgeries. The exemplary effective surgery vector employs an influence matrix which may allow improved refractive corrections to be generated so as to increase the overall efficacy of a cataract surgery by specifying one or more parameters of an intraocular lens (IOL) to be implanted during the cataract surgery.
    Type: Application
    Filed: November 23, 2015
    Publication date: June 2, 2016
    Inventors: Thomas D. Raymond, Daniel R. Neal, Richard J. Copland, Wei Xiong, Paul Pulaski, Stephen W. Farrer, Carmen Canovas, Daniel R. Hamrick
  • Publication number: 20160128563
    Abstract: Embodiments of this invention generally relate to systems and methods for wavefront interactive refraction display and more particularly to systems and methods for capturing and displaying eye wavefront interactive refraction data based on the desired refractive state of the patient's eye.
    Type: Application
    Filed: January 14, 2016
    Publication date: May 12, 2016
    Inventors: Daniel R. Neal, Stephen W. Farrer, Larry B. Voss, Thomas D. Raymond, Daniel R. Hamrick, John G. Dixson, Phillip Riera, Ron R. Rammage, Richard J. Copland
  • Publication number: 20160074125
    Abstract: Improved devices, systems, and methods for planning cataract surgery on an eye of a patient incorporate results of prior corrective surgeries into a planned cataract surgery of a particular patient by driving an effective surgery vector function based on data from the prior corrective surgeries. The exemplary effective surgery vector employs an influence matrix which may allow improved refractive corrections to be generated so as to increase the overall efficacy of a cataract surgery by specifying one or more parameters of an intraocular lens (IOL) to be implanted during the cataract surgery.
    Type: Application
    Filed: November 23, 2015
    Publication date: March 17, 2016
    Inventors: Thomas D. Raymond, Daniel R. Neal, Richard J. Copland, Wei Xiong, Paul Pulaski, Stephen W. Farrer, Carmen Canovas, Daniel R. Hamrick
  • Publication number: 20160073868
    Abstract: Improved devices, systems, and methods for planning cataract surgery on an eye of a patient incorporate results of prior corrective surgeries into a planned cataract surgery of a particular patient by driving an effective surgery vector function based on data from the prior corrective surgeries. The exemplary effective surgery vector employs an influence matrix which may allow improved refractive corrections to be generated so as to increase the overall efficacy of a cataract surgery by specifying one or more parameters of an intraocular lens (IOL) to be implanted during the cataract surgery.
    Type: Application
    Filed: November 23, 2015
    Publication date: March 17, 2016
    Inventors: Thomas D. Raymond, Daniel R. Neal, Richard J. Copland, Wei Xiong, Paul Pulaski, Stephen W. Farrer, Carmen Canovas, Daniel R. Hamrick
  • Patent number: 9271646
    Abstract: Embodiments of this invention generally relate to systems and methods for wavefront interactive refraction display and more particularly to systems and methods for capturing and displaying eye wavefront interactive refraction data based on the desired refractive state of the patient's eye.
    Type: Grant
    Filed: March 6, 2014
    Date of Patent: March 1, 2016
    Assignee: AMO WaveFront Sciences, LLC
    Inventors: Daniel Neal, Stephen W. Farrer, Larry B. Voss, Thomas D Raymond, Daniel Hamrick, John Dixson, Phillip Riera, Ron Rammage, Richard J. Copland
  • Publication number: 20160000322
    Abstract: A corneal topographer includes: a flat panel display configured to display a light pattern and to project the light pattern onto a cornea of an eye disposed on a first side of the flat panel display; an optical system disposed on a second side of the flat panel display, the optical system being configured to receive and process reflected light from the cornea that passes through the flat panel display from the cornea to the optical system; a camera configured to receive the processed reflected light from the optical system and to capture therefrom a reflected light pattern from the cornea produced in response to the projected light pattern; and one or more processors configured to execute an algorithm to compare the projected light pattern to the reflected light pattern from the cornea, and to produce a topographic map of the cornea based on a result of the comparison.
    Type: Application
    Filed: June 30, 2015
    Publication date: January 7, 2016
    Applicant: AMO WAVEFRONT SCIENCES, LLC
    Inventors: STEPHEN W. FARRER, W. SHEA POWERS, DANIEL R. NEAL, LARRY B. VOSS
  • Publication number: 20150131053
    Abstract: A system includes a model eye and an optical measurement instrument, which includes: a corneal topography subsystem; a wavefront sensor subsystem; and an eye structure imaging subsystem. The subsystems may have a common fixation axis, and be operatively coupled to each other via a controller. The optical measurement instrument may perform measurements of the model eye to verify correct operation of the optical measurement instrument for measuring one or more characteristics of a subject's eye. The model eye may include an optically transmissive structure having a front curved surface and an opposite rear planar surface, and a material structure provided at the rear planar surface of the optically transmissive structure and having a characteristic to cause a speckle pattern of a portion of a coherent light beam that is directed back out the front curved surface of the optically transmissive structure to have a bright-to-dark ratio of less than 2:1.
    Type: Application
    Filed: December 3, 2014
    Publication date: May 14, 2015
    Inventors: Richard J. Copland, Daniel R. Neal, Thomas D. Raymond, Wei Xiong, Paul D. Pulaski, Stephen W. Farrer, Carmen Canovas Vidal
  • Publication number: 20140268056
    Abstract: Embodiments of this invention generally relate to systems and methods for wavefront interactive refraction display and more particularly to systems and methods for capturing and displaying eye wavefront interactive refraction data based on the desired refractive state of the patient's eye.
    Type: Application
    Filed: March 6, 2014
    Publication date: September 18, 2014
    Inventors: Daniel Neal, Stephen W. Farrer, Larry B. Voss, Thomas D. Raymond, Daniel Hamrick, John Dixson, Phillip Riera, Ron Rammage, Richard J. Copland
  • Publication number: 20140253878
    Abstract: Systems and methods for modifying an eye including a light source with light elements, a photodetector producing a signal representing images of the light elements and corresponding to locations on an ocular surface, an optical system directing light from the light elements reflected by the ocular surface onto the photodetector, a memory including code for processing the signal, and a processor for executing the code and outputting shape data for use in calculating a treatment plan for the eye. The code includes instructions for determining the shape data based on a combination of zonal reconstruction and polynomial fitting using the plurality of images.
    Type: Application
    Filed: March 10, 2014
    Publication date: September 11, 2014
    Inventor: Stephen W. Farrer
  • Patent number: 8709002
    Abstract: Systems and methods for modifying an eye including a light source with light elements, a photodetector producing a signal representing images of the light elements and corresponding to locations on an ocular surface, an optical system directing light from the light elements reflected by the ocular surface onto the photodetector, a memory including code for processing the signal, and a processor for executing the code and outputting shape data for use in calculating a treatment plan for the eye. The code includes instructions for determining the shape data based on a combination of zonal reconstruction and polynomial fitting using the plurality of images.
    Type: Grant
    Filed: December 3, 2010
    Date of Patent: April 29, 2014
    Assignee: AMO Wavefront Sciences, LLC
    Inventor: Stephen W. Farrer
  • Patent number: 8622546
    Abstract: An algorithm locates valid light spots produced on an image detector by a wavefront of interest. The algorithm includes sequentially examining pixels of the image detector to determine for each of the pixels whether the light intensity detected by the pixel is greater than a threshold, When the pixel's detected light intensity is determined to be greater than the threshold, the algorithm includes: determining whether the pixel belongs to a valid light spot; and when the pixel is determined to belong to a valid light spot; saving data indicating a location for the valid light spot; and masking out a group of pixels of the image detector at the determined location such that the masked pixels are considered to have a light intensity less than the threshold for a remainder of the sequential examination.
    Type: Grant
    Filed: June 8, 2011
    Date of Patent: January 7, 2014
    Assignee: AMO Wavefront Sciences, LLC
    Inventors: Stephen W. Farrer, Thomas D. Raymond, Wei Xiong, John Dixson, Daniel R. Neal
  • Patent number: 8517535
    Abstract: A phase diversity wavefront sensor includes an optical system including at least one optical element for receiving a light beam; a diffractive optical element having a diffractive pattern defining a filter function, the diffractive optical element being arranged to produce, in conjunction with the optical system, images from the light beam associated with at least two diffraction orders; and a detector for detecting the images and outputting image data corresponding to the detected images. In one embodiment, the optical system, diffractive optical element, and detector are arranged to provide telecentric, pupil plane images of the light beam. A processor receives the image data from the detector, and executes a Gerchberg-Saxton phase retrieval algorithm to measure the wavefront of the light beam.
    Type: Grant
    Filed: November 18, 2011
    Date of Patent: August 27, 2013
    Assignee: AMO Wavefront Sciences, LLC.
    Inventors: Thomas D Raymond, Paul Pulaski, Stephen W Farrer, Daniel R Neal, Alan H Greenaway, David M Faichnie, Heather I Campbell Dalgarno, Graham N Craik
  • Publication number: 20120293769
    Abstract: A phase diversity wavefront sensor includes an optical system including at least one optical element for receiving a light beam; a diffractive optical element having a diffractive pattern defining a filter function, the diffractive optical element being arranged to produce, in conjunction with the optical system, images from the light beam associated with at least two diffraction orders; and a detector for detecting the images and outputting image data corresponding to the detected images. In one embodiment, the optical system, diffractive optical element, and detector are arranged to provide telecentric, pupil plane images of the light beam. A processor receives the image data from the detector, and executes a Gerchberg-Saxton phase retrieval algorithm to measure the wavefront of the light beam.
    Type: Application
    Filed: November 18, 2011
    Publication date: November 22, 2012
    Applicant: AMO Wavefront Sciences, LLC.
    Inventors: Thomas D. Raymond, Paul Pulaski, Stephen W. Farrer, Daniel R. Neal, Alan H. Greenaway, David M. Faichnie, Heather I. Campbell Dalgarno, Graham N. Craik