Patents by Inventor Lars Omlor

Lars Omlor 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: 20220058803
    Abstract: An OCT system includes a machine learning (ML) model trained to receive a single OCT scan/image and provide an image translation and/or denoise function. The ML model may be based on a neural network (NN) architecture including a series of encoding modules in a contracting path followed by a series of decoding modules in an expanding path leading to an output convolution module. An intermediate error module determines a deep error measure, e.g., between a training output image and at least one encoding module and/or decoding module, and an error from the output convolution module is combined with the deep error measure. The NN may be trained using true averaged images as ground truth, training outputs. Alternatively, the NN may be trained using randomly selected, individual OCT images/scans as training outputs.
    Type: Application
    Filed: February 12, 2020
    Publication date: February 24, 2022
    Inventors: Arindam BHATTACHARYA, Warren LEWIS, Sophie KUBACH, Lars OMLOR, Mary DURBIN
  • Publication number: 20210333091
    Abstract: A coordinate measuring machine has a measurement head having a point measurement device which measures first coordinates of only a single point on the surface of a workpiece at a given time. An area measurement device records images of a reference surface. A displacement device displaces the measurement head and/or the workpiece such that they assume different relative positions with respect to one another. An evaluation device calculates a shift between images that the area measurement device has recorded of the reference surface at different times at different relative positions, with a stitching algorithm. Based on this, second coordinates of the measurement head, which are defined relative to the reference surface, are determined. By linking the first coordinates with the second coordinates, third coordinates are determined, which define the points on the surface of the workpiece measured by the point measurement device relative to the reference surface.
    Type: Application
    Filed: April 28, 2021
    Publication date: October 28, 2021
    Inventors: Nils Haverkamp, Dominik Seitz, Tanja Teuber, Lars Omlor
  • Publication number: 20210148699
    Abstract: A method and a device for measuring the topography and/or the gradients and/or the curvature of an optically active surface of an object are disclosed. The device allows the object to be arranged in a receiving region with a contact surface for contact with the object. Inside the device, there is a plurality of point light sources that provide light that is reflected at the surface to be measured of an object arranged in the receiving region. The device includes at least one camera with an objective assembly and an image sensor for detecting a brightness distribution which is produced on a light sensor by the light of the point light sources reflected at the surface to be measured.
    Type: Application
    Filed: January 26, 2021
    Publication date: May 20, 2021
    Inventors: Lars Omlor, Carsten Glasenapp
  • Publication number: 20210116401
    Abstract: A collision avoidance system and method for an x-ray CT microscope processes image data of an object at different angles and generates a model of the object. This model is then used to configure the microscope for operation and possibly avoid collisions between the microscope and the object.
    Type: Application
    Filed: October 14, 2020
    Publication date: April 22, 2021
    Inventors: Lars Omlor, Hauyee Chang
  • Patent number: 10935372
    Abstract: A method and a device for measuring the topography and/or the gradients and/or the curvature of an optically active surface of an object are disclosed. The device allows the object to be arranged in a receiving region with a contact surface for contact with the object. Inside the device, there is a plurality of point light sources that provide light that is reflected at the surface to be measured of an object arranged in the receiving region. The device includes at least one camera with an objective assembly and an image sensor for detecting a brightness distribution which is produced on a light sensor by the light of the point light sources reflected at the surface to be measured.
    Type: Grant
    Filed: October 8, 2018
    Date of Patent: March 2, 2021
    Assignee: Carl Zeiss AG
    Inventors: Lars Omlor, Carsten Glasenapp
  • Publication number: 20210026126
    Abstract: Various approaches in which an image-recording parameter is varied between a plurality of images of an object and a stereo image pair is displayed on the basis of the images recorded thus are described. Here, in particular, the image-recording parameter can be a focal plane or an illumination direction.
    Type: Application
    Filed: January 24, 2017
    Publication date: January 28, 2021
    Inventors: Christoph HUSEMANN, Lars STOPPE, Tanja TEUBER, Lars OMLOR, Kai WICKER, Enrico GEISSLER, Senthil Kumar LAKSHMANAN
  • Patent number: 10755429
    Abstract: Methods and apparatuses in which a plurality of images are recorded at different illumination angles are provided. The plurality of images are combined in order to produce a results image with an increased depth of field.
    Type: Grant
    Filed: May 13, 2016
    Date of Patent: August 25, 2020
    Assignee: Carl Zeiss Microscopy GmbH
    Inventors: Lars Stoppe, Lars Omlor
  • Publication number: 20200258300
    Abstract: The generation of a 3D reconstruction of an object is disclosed, which includes illuminating the object, capturing image data in relation to the object, and calculating the 3D reconstruction of the object from the image data. The image data contains first image data and second image data, wherein the first image data are captured when the object is illuminated with illumination light, at least some of which, in relation to an object imaging beam path, is reflected light which illuminates the object, wherein the second image data are captured from different recording directions when the object is illuminated with illumination light, at least some of which is guided in the object imaging beam path, and wherein the 3D reconstruction of the object is calculated from the first image data and the second image data.
    Type: Application
    Filed: April 27, 2020
    Publication date: August 13, 2020
    Inventors: Oliver Schwarz, Lars Omlor
  • Publication number: 20200223146
    Abstract: Methods and devices for additive manufacturing of workpieces are provided. For analysis during production, a test is carried out using a selected test method. The test results are compared with simulated test results derived during a simulation of the manufacturing and testing. The test may use one or more of a laser ultrasound test unit, an electronic laser speckle interferometry test unit, an infrared thermography test unit, or an x-ray test unit.
    Type: Application
    Filed: December 20, 2019
    Publication date: July 16, 2020
    Inventors: Michael TOTZECK, Danny KRAUTZ, Diana SPENGLER, Uwe WOLF, Christoph-Hilmar Graf Vom HAGEN, Christian HOLZNER, Lars OMLOR
  • Patent number: 10706562
    Abstract: A method for operating a motion-measuring system of a machine, such as a coordinate-measuring device or a machine tool. An image-recording device arranged on a first part of the machine records at least one recorded image of a second part of the machine. The first part and the second part can be moved in relation to each other. A capturing structure, which is formed by the second part and/or which is arranged on the second part, is captured by the at least one recorded image, and, by using information about an actual appearance of the capturing structure, a speed of the relative motion of the first part and the second part is determined from differences of the at least one recorded image from the actual appearance of the capturing structure.
    Type: Grant
    Filed: September 28, 2017
    Date of Patent: July 7, 2020
    Assignee: CARL ZEISS INDUSTRIELLE MESSTECHNIK GMBH
    Inventors: Nils Haverkamp, Dominik Seitz, Tanja Teuber, Lars Omlor
  • Publication number: 20200114519
    Abstract: A system for determining the position of a movable object in space includes a marker which is to be applied to the object. The marker has a surface which is subdivided into a plurality of individual fields. The fields each have a statistical noise pattern. The system also includes an image capture unit which is remote from the object and is arranged to capture an image of the marker. The system further includes an image evaluation unit which stores a reference image of the noise patterns and is designed to locate at least one of the fields in the currently captured image of the marker by comparison with the reference image in order to determine a current position of the marker in space. There are corresponding methods for determining a position the object.
    Type: Application
    Filed: December 12, 2019
    Publication date: April 16, 2020
    Inventors: Jan Horn, Nils Haverkamp, Marc Schneider, Tanja Teuber, Lars Omlor
  • Patent number: 10568503
    Abstract: An optical coherence tomograph includes a wavelength tunable illuminating device, an illumination and measurement beam path with a dividing element and a scanner and a front optical unit and a reference beam path, a detection beam path and a flat panel detector. A beam splitter conducts the separated measurement radiation to the detection beam path and an optical element acts only on the illumination radiation. The optical element sets the numerical aperture of the illumination of the illumination field in the eye. An optical element acts only on the measurement radiation and sets the numerical aperture with which measurement radiation is collected in the eye. An aperture is arranged in front of the flat panel detector in an intermediate image plane and defines the size of an object field. The flat panel detector has a spatial resolution of 4 to 100 pixels in a direction.
    Type: Grant
    Filed: October 9, 2015
    Date of Patent: February 25, 2020
    Assignee: Carl Zeiss Meditec AG
    Inventors: Daniel Bublitz, Christoph Nieten, Lars Omlor, Kai Wicker
  • Publication number: 20200004003
    Abstract: A 3D calibration body for spatial calibration of an optical imaging system includes a transparent body and calibration marks embedded in a volume of the transparent body. At least some of the calibration marks are selectively activatable and deactivatable, wherein an activated calibration mark is visible in the visible spectral range and a deactivated calibration mark is not visible in the visible spectral range.
    Type: Application
    Filed: June 29, 2019
    Publication date: January 2, 2020
    Inventors: Lars Omlor, Carsten Glasenapp
  • Publication number: 20190049238
    Abstract: A method and a device for measuring the topography and/or the gradients and/or the curvature of an optically active surface of an object are disclosed. The device allows the object to be arranged in a receiving region with a contact surface for contact with the object. Inside the device, there is a plurality of point light sources that provide light that is reflected at the surface to be measured of an object arranged in the receiving region. The device includes at least one camera with an objective assembly and an image sensor for detecting a brightness distribution which is produced on a light sensor by the light of the point light sources reflected at the surface to be measured.
    Type: Application
    Filed: October 8, 2018
    Publication date: February 14, 2019
    Inventors: Lars Omlor, Carsten Glasenapp
  • Publication number: 20180122092
    Abstract: Methods and apparatuses in which a plurality of images are recorded at different illumination angles are provided. The plurality of images are combined in order to produce a results image with an increased depth of field.
    Type: Application
    Filed: May 13, 2016
    Publication date: May 3, 2018
    Inventors: Lars Stoppe, Lars Omlor
  • Publication number: 20180018778
    Abstract: A method for operating a motion-measuring system of a machine, such as a coordinate-measuring device or a machine tool. An image-recording device arranged on a first part of the machine records at least one recorded image of a second part of the machine. The first part and the second part can be moved in relation to each other. A capturing structure, which is formed by the second part and/or which is arranged on the second part, is captured by the at least one recorded image, and, by using information about an actual appearance of the capturing structure, a speed of the relative motion of the first part and the second part is determined from differences of the at least one recorded image from the actual appearance of the capturing structure.
    Type: Application
    Filed: September 28, 2017
    Publication date: January 18, 2018
    Inventors: Nils HAVERKAMP, Dominik SEITZ, Tanja TEUBER, Lars OMLOR
  • Patent number: 9797804
    Abstract: The spatial structure of an optical element is determined. The optical element has a first optically active surface and a second optically active surface. The optical element is arranged in a holding device. The position of a point (P) on the first optically active surface and the position of a point (P?) on the second optically active surface are referenced in a coordinate system fixed to the holding device. The topography of the first optically active surface is determined in a coordinate system referenced to the holding device by the position of point (P) and the spatial structure of the optical element is calculated from the topography of the first optically active surface and from a data set as to the topography of the second optically active surface. The data set is referenced to the fixed coordinate system of the holding device by the position of point (P?).
    Type: Grant
    Filed: November 2, 2015
    Date of Patent: October 24, 2017
    Assignees: Carl Zeiss Vision International GmbH, Carl Zeiss AG
    Inventors: Carsten Glasenapp, Matthias Hornauer, Adalbert Hanssen, Yvonne Schleitzer, Lars Omlor
  • Publication number: 20170224208
    Abstract: An optical coherence tomograph includes a wavelength tunable illuminating device, an illumination and measurement beam path with a dividing element and a scanner and a front optical unit and a reference beam path, a detection beam path and a flat panel detector. A beam splitter conducts the separated measurement radiation to the detection beam path and an optical element acts only on the illumination radiation. The optical element sets the numerical aperture of the illumination of the illumination field in the eye. An optical element acts only on the measurement radiation and sets the numerical aperture with which measurement radiation is collected in the eye. An aperture is arranged in front of the flat panel detector in an intermediate image plane and defines the size of an object field. The flat panel detector has a spatial resolution of 4 to 100 pixels in a direction.
    Type: Application
    Filed: October 9, 2015
    Publication date: August 10, 2017
    Applicant: CARL ZEISS MEDITEC AG
    Inventors: Daniel Bublitz, Christopher Nieten, Lars Omlor, Kai Wicker
  • Publication number: 20160054196
    Abstract: The spatial structure of an optical element is determined. The optical element has a first optically active surface and a second optically active surface. The optical element is arranged in a holding device. The position of a point (P) on the first optically active surface and the position of a point (P?) on the second optically active surface are referenced in a coordinate system fixed to the holding device. The topography of the first optically active surface is determined in a coordinate system referenced to the holding device by the position of point (P) and the spatial structure of the optical element is calculated from the topography of the first optically active surface and from a data set as to the topography of the second optically active surface. The data set is referenced to the fixed coordinate system of the holding device by the position of point (P?).
    Type: Application
    Filed: November 2, 2015
    Publication date: February 25, 2016
    Inventors: Carsten Glasenapp, Matthias Hornauer, Adalbert Hanssen, Yvonne Schleitzer, Lars Omlor