Patents by Inventor Peter Forthmann
Peter Forthmann 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: 20180197337Abstract: An augmented reality device used in a medical imaging laboratory housing a medical imaging device (10) includes a headset (30), cameras (32, 33) mounted in the medical imaging laboratory, and directional sensors (34, 35, 36, 37) mounted on the headset. The cameras generate a panorama image (54). Data collected by the directional sensors is processed to determine the viewing direction (60). The panorama image and the determined viewing direction are processed to generate an augmented patient view image (80) in which the medical imaging device is removed, replaced, or made partially transparent, the augmented image is presented on a display (40) of the headset. The directional sensors may include a headset camera (34) that provides a patient view image (50), which is augmented by removing or making partially transparent any portion of the medical imaging device in the patient view image by substituting corresponding portions of the panorama image.Type: ApplicationFiled: January 11, 2017Publication date: July 12, 2018Inventors: PETER FORTHMANN, GLEN PFLEIDERER
-
Patent number: 9891298Abstract: The invention provides for magnetic resonance imaging system (600) comprising a superconducting magnet (100) with a first current lead (108) and a second current lead (110) for connecting to a current ramping system (624). The magnet further comprises a vacuum vessel (104) penetrated by the first current lead and the second current lead. The magnet further comprises a magnet circuit (106) within the vacuum vessel. The magnet circuit has a first magnet circuit connection (132) and a second magnet circuit connection (134). The magnet further comprises a first switch (120) between the first magnet connection and the first current lead and a second switch (122) between the second magnet connection and the second current lead. The magnet further comprises a first current shunt (128) connected across the first switch and a second current shunt (130) connected across the second switch. The magnet further comprises a first rigid coil loop (124) operable to actuate the first switch.Type: GrantFiled: August 28, 2017Date of Patent: February 13, 2018Assignee: KONINKLIJKE PHILIPS N.V.Inventors: Johannes Adrianus Overweg, Thomas Erik Amthor, Peter Forthmann, Falk Uhlemann, Bernd David
-
Publication number: 20180014745Abstract: A contact-free method of determining biometric parameters and physiological parameters of a subject of interest (20) to be examined by a medical imaging modality (10), comprising steps of taking (72) a picture by a first digital camera (52) including a total view of an examination table (44); applying (74) a computer vision algorithm or an image processing algorithm to the picture for determining a biometric parameter of the subject of interest (20) in relation to the examination table (44); taking (78) at least one picture with a second digital camera (58), whose field of view (60) includes a region of the subject of interest (20) that is related to the at least one determined biometric parameter; using data indicative of the determined biometric parameter to identify (82) a subset of pixels of the at least one picture taken by the second digital camera (58) that define a region of interest (64) from which at least one physiological parameter of the subject of interest (20) is to be determined, taking (84) aType: ApplicationFiled: January 14, 2016Publication date: January 18, 2018Inventors: JULIEN SENEGAS, DANIEL WIRTZ, SASCHA KRUEGER, VINCENT JEANNE, THIRUKUMARAN THANGARAJ KANAGASABAPATHI, JOERG SABCZYNSKI, PETER FORTHMANN
-
Publication number: 20170356970Abstract: The invention provides for magnetic resonance imaging system (600) comprising a superconducting magnet (100) with a first current lead (108) and a second current lead (110) for connecting to a current ramping system (624). The magnet further comprises a vacuum vessel (104) penetrated by the first current lead and the second current lead. The magnet further comprises a magnet circuit (106) within the vacuum vessel. The magnet circuit has a first magnet circuit connection (132) and a second magnet circuit connection (134). The magnet further comprises a first switch (120) between the first magnet connection and the first current lead and a second switch (122) between the second magnet connection and the second current lead. The magnet further comprises a first current shunt (128) connected across the first switch and a second current shunt (130) connected across the second switch. The magnet further comprises a first rigid coil loop (124) operable to actuate the first switch.Type: ApplicationFiled: August 28, 2017Publication date: December 14, 2017Inventors: Johannes Adrianus Overweg, Thomas Erik Amthor, Peter Forthmann, Falk Uhlemann, Bernd David
-
Patent number: 9753111Abstract: A system and method determines an isocenter for an imaging scan. The method includes receiving, by a control panel, patient data generated by at least one sensor, the patient data corresponding to dimensions of a body of a patient. The method includes generating, by the control panel, model data as a function of the patient data, the model data representing the body of the patient. The method includes receiving, by the control panel, a target location on the model data, the target location corresponding to a desired position on the body of the patient for performing the imaging scan. The method includes determining, by the control panel, an isocenter for the imaging scan as a function of the target location.Type: GrantFiled: June 7, 2014Date of Patent: September 5, 2017Assignee: KONINKLIJKE PHILIPS N.V.Inventors: Peter Forthmann, Sascha Krueger, Tim Nielsen, Jurgen Erwin Rahmer, Peter Vernickel, Peter Boernert, Ulrich Katscher
-
Patent number: 9746533Abstract: The invention provides for magnetic resonance imaging system (600) comprising a superconducting magnet (100) with a first current lead (108) and a second current lead (110) for connecting to a current ramping system (624). The magnet further comprises a vacuum vessel (104) penetrated by the first current lead and the second current lead. The magnet further comprises a magnet circuit (106) within the vacuum vessel. The magnet circuit has a first magnet circuit connection (132) and a second magnet circuit connection (134). The magnet further comprises a first switch (120) between the first magnet connection and the first current lead and a second switch (122) between the second magnet connection and the second current lead. The magnet further comprises a first current shunt (128) connected across the first switch and a second current shunt (130) connected across the second switch. The magnet further comprises a first rigid coil loop (124) operable to actuate the first switch.Type: GrantFiled: January 14, 2013Date of Patent: August 29, 2017Assignee: KONINKLIJKE PHILIPS N.V.Inventors: Johannes Adrianus Overweg, Thomas Erik Amthor, Peter Forthmann, Falk Uhlemann, Bernd David
-
Patent number: 9478050Abstract: The invention relates to an imaging system for imaging an object. Projection data of the object are acquired by using a radiation source emitting primary radiation (14) from a primary focal spot (15) and unwanted secondary radiation (16) from secondary focal spots (17). A first image of the object is reconstructed from the acquired projection data, a forward projection of the secondary radiation through the first image is simulated for generating secondary projection data, and a second image is generated based on the acquired projection data and the secondary projection data. Since the secondary projection data, which can generally cause image artifacts, are determined, the reconstruction unit can consider these unwanted secondary projection data while reconstructing the second image, in order to reduce the influence of the secondary projection data on the reconstructed second image, thereby improving the image quality.Type: GrantFiled: January 4, 2012Date of Patent: October 25, 2016Assignee: KONINKLIJKE PHILIPS N.V.Inventors: Peter Forthmann, Thomas Koehler
-
Publication number: 20160256712Abstract: The invention provides for a medical apparatus (100, 300, 400, 800) comprising a magnetic resonance imaging system (104), a radiation therapy device (102) comprising a gantry (106) and a radiation source (110), and a radiation detection system (102) operable for measuring radiation detection data (174) descriptive of the path and intensity of the radiation beam at the intersection of the radiation beam with at least one surface (144, 144?, 144?) surrounding the subject using at least one radiation detector (144, 144?, 144?).Type: ApplicationFiled: October 8, 2014Publication date: September 8, 2016Inventors: ERKKI TAPANI VAHALA, THOMAS ERIK AMTHOR, PETER FORTHMANN
-
Publication number: 20160109545Abstract: A system and method determines an isocenter for an imaging scan. The method includes receiving, by a control panel, patient data generated by at least one sensor, the patient data corresponding to dimensions of a body of a patient. The method includes generating, by the control panel, model data as a function of the patient data, the model data representing the body of the patient. The method includes receiving, by the control panel, a target location on the model data, the target location corresponding to a desired position on the body of the patient for performing the imaging scan. The method includes determining, by the control panel, an isocenter for the imaging scan as a function of the target location.Type: ApplicationFiled: June 7, 2014Publication date: April 21, 2016Inventors: PETER FORTHMANN, SASCHA KRUEGER, TIM NIELSEN, JURGEN ERWIN RAHMER, PETER VERNICKEL, PETER BOERNERT, ULRICH KATSCHER
-
Patent number: 9107591Abstract: An imaging system includes a radiation source that emits radiation that traverses an examination region. A controller activates the radiation source to emit radiation and deactivates the radiation source to stop radiation emission. The controller selectively activates the radiation source to emit radiation at one or more pre-determined angles. In another embodiment, the imaging system includes a data processing component that generates a virtual three dimensional image of an object of interest of the scanned subject based on the image data. In another embodiment, the imaging system is in a communication with a data manipulation and packaging component that generates at least a two dimensional or a three dimensional data set based on the volumetric image data and packages the data set in an object provided to a remote system that manipulates and navigates through the data set.Type: GrantFiled: October 1, 2012Date of Patent: August 18, 2015Assignee: Koninklijke Philips N.V.Inventors: Shlomo Gotman, Udo Van Stevendaal, Peter Forthmann, Holger Schmitt
-
Publication number: 20150092999Abstract: A method includes determining at least one characteristic about a stenosis in a vessel of a patient from image data of the stenosis, mapping the characteristic to a predefined stenosis characteristic to fractional flow reserve value look up table, identifying the fractional flow reserve value in the look up table corresponding to the characteristic, and visually presenting the image data and the identified fractional flow reserve value. A system includes memory storing a pre-defined stenosis characteristic to fractional flow reserve value look up table, a metric determiner (118) that maps at least one characteristic about a stenosis in a vessel of a patient, which is determined from image data of the stenosis, to a characteristic in the look up table and identifies a fractional flow reserve value corresponding to the characteristic, and a display (116) that visually presents the image data and the identified fractional flow reserve value.Type: ApplicationFiled: May 10, 2013Publication date: April 2, 2015Applicant: Koninklijke Philips N.V.Inventors: Holger Schmitt, Peter Forthmann, Michael Grass
-
Publication number: 20150045226Abstract: The invention provides for magnetic resonance imaging system (600) comprising a superconducting magnet (100) with a first current lead (108) and a second current lead (110) for connecting to a current ramping system (624). The magnet further comprises a vacuum vessel (104) penetrated by the first current lead and the second current lead. The magnet further comprises a magnet circuit (106) within the vacuum vessel. The magnet circuit has a first magnet circuit connection (132) and a second magnet circuit connection (134). The magnet further comprises a first switch (120) between the first magnet connection and the first current lead and a second switch (122) between the second magnet connection and the second current lead. The magnet further comprises a first current shunt (128) connected across the first switch and a second current shunt (130) connected across the second switch. The magnet further comprises a first rigid coil loop (124) operable to actuate the first switch.Type: ApplicationFiled: January 14, 2013Publication date: February 12, 2015Inventors: Johannes Adrianus Overweg, Thomas Erik Amthor, Peter Forthmann, Falk Uhlemann, Bernd David
-
Publication number: 20140249401Abstract: The invention provides an apparatus (1) for magnetic resonance (MR) examination of a subject (S), comprising: an examination region (3) for accommodating the subject (S) during the MR examination; a radio-frequency system (5) for transmission of a radio-frequency (RF) signal or field into the examination region (3) during the MR examination; and a temperature control system (6) for controlling the temperature of the subject (S) in the examination region (3) during the examination. The temperature control system (6) is configured to actively control or regulate an environment of the subject (S), and thereby the temperature or thermal comformt of the subject (S) based upon a detected and/or an expected temperature of the subject (S) during the MR examination.Type: ApplicationFiled: October 3, 2012Publication date: September 4, 2014Applicant: KONINKLIJKE PHILIPS N.V.Inventors: Johan Samuel Van Den Brink, Paul Royston Harvey, Peter Forthmann, Christoph Leussler, Peter Vernickel, Jan Hendrik Wülbern, Ingmar Graesslin
-
Publication number: 20140128721Abstract: A medical imaging system comprises an image data acquisition module to acquire imaging data and a motion detection module to acquire motion information. A reconstruction module reconstructs image datasets from the imaging data and with use of the motion information to correct for motion. The motion detection module is provided with a shape-sensing photonic fibre system to provide a photonic output representative of the spatial shape of the photonic fibre and an arithmetic unit to compute the motion information on the basis of the photonic output.Type: ApplicationFiled: June 6, 2012Publication date: May 8, 2014Applicant: KONINKLIJKE PHILIPS N.V.Inventors: Peter Forthmann, Thomas Erik Amthor, Sascha Krueger, Michael Harald Kuhn
-
Patent number: 8693621Abstract: A medical imaging system includes a generally stationary gantry (102) and a rotating gantry (106), rotatably supported by the generally stationary gantry (102), that rotates about a longitudinal axis around an examination region. The medical imaging system further includes a radiation source (112) that emits a radiation beam that traverses the examination region. The radiation source (112) is moveably affixed to the rotating gantry (106) so as to translate in a direction of the longitudinal axis with respect to the rotating gantry (106) while scanning a subject in the examination region. The medical imaging system further includes a detector array (120) that detects the radiation beam that traverses the examination region and generates a signal indicative thereof. The detector array (120) is moveably affixed to the rotating gantry (106) so as to move in coordination with the radiation source (112) while scanning the subject in the examination region.Type: GrantFiled: April 30, 2009Date of Patent: April 8, 2014Assignee: Koninklijke Philips N. V.Inventors: Axel Thran, Claas Bontus, Peter Forthmann, Roland Proksa, Ronald B. Sharpless, Dominic J. Heuscher, Felix Peeters, Johannes Bathazar Maria Soetens
-
Patent number: 8666020Abstract: A method and apparatus are provided to filter x-ray beams generated using a CT apparatus or other x-ray based system with displaced acquisition geometry. A CT apparatus may be used having a source (102), a detector (104) transversely displaced from a center (114) of a field of view (118) during acquisition of the projection data, and a filter (146). The filter may absorb at least a portion of overlapping radiation emitted by the source at opposing angular positions. The amount of transverse displacement may be determined for a desired field of view configuration and amount of overlapping radiation. The detector may be adjusted to correspond to the amount of determined transverse displacement. The size and location of the filter may be determined based on the amount of overlapping radiation. The filter may be adjusted to correspond to the determined size and location of the filter.Type: GrantFiled: December 9, 2009Date of Patent: March 4, 2014Assignee: Koninklijke Philips N.V.Inventors: Holger Schmitt, Peter Forthmann, Udo Van Stevendaal
-
Publication number: 20130279778Abstract: The invention relates to an imaging system for imaging an object. Projection data of the object are acquired by using a radiation source emitting primary radiation (14) from a primary focal spot (15) and unwanted secondary radiation (16) from secondary focal spots (17). A first image of the object is reconstructed from the acquired projection data, a forward projection of the secondary radiation through the first image is simulated for generating secondary projection data, and a second image is generated based on the acquired projection data and the secondary projection data. Since the secondary projection data, which can generally cause image artifacts, are determined, the reconstruction unit can consider these unwanted secondary projection data while reconstructing the second image, in order to reduce the influence of the secondary projection data on the reconstructed second image, thereby improving the image quality.Type: ApplicationFiled: January 4, 2012Publication date: October 24, 2013Applicant: KONINKLIJKE PHILIPS ELECTRONICS N.V.Inventors: Peter Forthmann, Thomas Koehler
-
Patent number: 8526757Abstract: The invention relates to an imaging system for imaging a region of interest, in particular to a computed tomography system. First data for generating an image of the region of interest are provided, which are used by a reconstruction unit (12) for reconstructing an image of the region of interest using an adaptable artefact correction method. Second data are provided by simulating the providing of the first data using the reconstructed image of the region of interest by a second data providing unit (13). A deviation determination unit (14) determines a deviation between the first and second data. An adaptation unit (15) adapts the artefact correction method such that the deviation between the first and second data is reduced and the reconstruction unit (12) reconstructs an image of the region of interest from first the data using the adapted artefact correction method.Type: GrantFiled: May 13, 2008Date of Patent: September 3, 2013Assignee: Koninklijke Philips N.V.Inventors: Thomas Koehler, Peter Forthmann
-
Patent number: 8483443Abstract: A method is provided for using CT imaging data to characterize the movement of a moving object. The method calculates one or more motion values based on motion vectors which are representative of the object's movement. The moving object may be, for example, a beating heart.Type: GrantFiled: October 6, 2009Date of Patent: July 9, 2013Assignee: Koninklijke Philips Electronics N.V.Inventors: Peter Forthmann, Holger Schmitt, Udo van Stevendaal
-
Patent number: 8442184Abstract: An imaging system includes a radiation source (106, T1, T2, T3) that rotates about an examination region and emits radiation that traverses the examination region. The radiation source (106, T1, T2, T3) emits radiation having an energy spectrum that is selectively alternately switched between at least two different energy spectra during an imaging procedure. The system further includes an energy-resolving detector array (116, D1, D2, D3) that detects radiation traversing the examination region. The energy-resolving detector array (116, D1, D2, D3) resolves the detected radiation over at least two different energy ranges and produces energy-resolved output signals as a function of both emission energy spectrum and energy range. The system further includes a reconstructor (126) that performs a spectral reconstruction of the energy-resolved output signals. In another embodiment, the detector array (116) includes a photon-counting detector array (116).Type: GrantFiled: June 1, 2009Date of Patent: May 14, 2013Assignee: Koninklijke Philips Electronics N.V.Inventors: Peter Forthmann, Udo Van Stevendaal, Ewald Roessl, Michael Grass, Roland Proksa, Jens-Peter Schlomka