Patents by Inventor PAUL FRANZ REDDER
PAUL FRANZ REDDER 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: 20240341657Abstract: A system (400) for monitoring a physiological parameter of a patient including a wireless signal unit (60, 500) having a transceiver (515) configured to transmit, by a communication link (CL), wireless data associated with the physiological parameter of the patient at a default transfer rate; a patient monitor (70) configured to receive the wireless data transmitted from the transceiver at the default transfer rate; and a processor (64, 505, 535) communicably coupled with the wireless signal unit. The processor is configured to: (i) receive and preprocess (650) an input signal comprising a signal corresponding to the physiological parameter of the patient and transient gradient signals from a gradient system; (ii) determine (650) a gradient signal activity value of the gradient system; and (iii) dynamically adjust (670) the default transfer rate of the wireless data transmitted from the transceiver to an adjusted transfer rate based on the gradient signal activity value.Type: ApplicationFiled: August 8, 2022Publication date: October 17, 2024Inventor: PAUL FRANZ REDDER
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Publication number: 20240319294Abstract: A device receives during an RF receive cycle a magnetic resonance signal (250) from an area of interest of a patient (20) which is generated in response to a RF transmit signal (350) of an MRI system (100) during an RF transmit cycle. The device includes: an RF receive coil (301); a detector (330); and a first coupling (840) device adapted to couple to an input of the detector (330) a signal (350) which is proportional to a current flowing through the RF receive coil (301) during the RF transmit cycle. The detector (330) outputs a signal (350), which indicates the magnitude and/or phase of the current flowing through the RF receive coil (301) during the RF transmit cycle. The digital signal (350) may be used to stop MR scanning, and/or to notify a system (100) operator, before harm can occur to the patient (20) due to excessive current in the RF receive coil (301) during the RF transmit cycle.Type: ApplicationFiled: July 4, 2022Publication date: September 26, 2024Inventors: Tracy Allyn Wynn, Scott Bradley King, Alton Keel, Timothy Caine Ortiz, Arne Reykowski, Paul Franz Redder, Olli Tapio Friman, Rodrigo Canderon Rico
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Publication number: 20240293025Abstract: An ECG measurement node for a patient electrode is provided, including an electrode interface and ECG processing circuitry electrically coupled to the electrode interface. The electrode interface is electrically and removably coupled to the patient electrode. The patient electrode is affixed to a patient. The ECG processing circuitry is configured to generate an ECG signal. The ECG measurement node further includes a transceiver configured to wirelessly transmit the ECG signal or a fiber optic interface configured to transmit the ECG signal via a fiber optic link. An ECG measurement network is also provided, including a first and second ECG measurement node. The first ECG measurement node and the second ECG measurement node are communicatively coupled to a patient monitor. The ECG measurement network may further include a central access point communicatively coupled to the first ECG measurement node, the second ECG measurement node, and the patient monitor.Type: ApplicationFiled: June 27, 2022Publication date: September 5, 2024Inventors: BRUCE GEOFFREY APPLETON, PAUL FRANZ REDDER
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Publication number: 20240242822Abstract: A method (100) for transferring a patient from a first healthcare environment to a second healthcare environment, comprising: (i) providing (110) a composite network configured to obtain and communicate first information about one or more healthcare assets associated with the patient, and monitoring information about the patient: (ii) receiving (120) a request for the first information and the monitoring information: (iii) communicating (130) the first information and the monitoring information: (iv) configuring (140) one or more healthcare assets in the second healthcare-environment in preparation for a transfer: (v) determining (150) whether the second healthcare environment is ready for the transfer of the patient from the first healthcare environment: (vi) communicating (160) a signal indicating a result of the determining step: and (vii) receiving (180) the patient at the second healthcare environment, or delaying the patient from being transferred to the second healthcare environment.Type: ApplicationFiled: May 18, 2022Publication date: July 18, 2024Inventors: PAUL FRANZ REDDER, MICHAEL ANGELO GEMMATI JR, MARK SHIH-CHIEH LIN
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Publication number: 20240159846Abstract: A magnetic resonance (MR) receive coil (18) includes at least one MR coil element (22) configured to receive MR signals excited in a subject disposed in an MR imaging device (10); an antenna (22, 28) comprising the at least one MR coil element (22) or another antenna (28) that is different from the at least one MR coil element; and electronics (24) configured to detect reception of an electromagnetic pulse of interest by the antenna and to perform a coil function based on the detection. The electromagnetic pulse of interest is a radio frequency (RF) pulse generated by the MR imaging device or a magnetic field gradient pulse generated by the MR imaging device.Type: ApplicationFiled: March 18, 2022Publication date: May 16, 2024Inventors: Scott Bradley King, Alton Keel, Arne Reykowski, Timothy Caine Ortiz, Paul Franz Redder, Rodrigo Calderon Rico, Tracy Allyn Wynn, Olli Tapio Friman
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Patent number: 11921177Abstract: An electronic device (10) includes an electronic component (14); at least one electrically conductive loop or winding (18) disposed around the electronic component; and an electronic controller (24) configured to: obtain (102) a magnetic field direction from a received ambient magnetic field measurement signal; determine (104) at least one magnetic field shim current based on the obtained magnetic field direction; and energize (106) the at least one electrically conductive loop or winding to flow the determined at least one magnetic field shim current.Type: GrantFiled: October 27, 2020Date of Patent: March 5, 2024Assignee: Koninklijke Philips N.V.Inventors: Arne Reykowski, Alton Keel, Timothy Ortiz, Scott King, Rodrigo Calderon Rico, Paul Franz Redder
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Publication number: 20220397620Abstract: An electronic device (10) includes an electronic component (14); at least one electrically conductive loop or winding (18) disposed around the electronic component; and an electronic controller (24) configured to: obtain (102) a magnetic field direction from a received ambient magnetic field measurement signal; determine (104) at least one magnetic field shim current based on the obtained magnetic field direction; and energize (106) the at least one electrically conductive loop or winding to flow the determined at least one magnetic field shim current.Type: ApplicationFiled: October 27, 2020Publication date: December 15, 2022Inventors: Arne REYKOWSKI, Alton KEEL, Timothy ORTIZ, Scott KING, Rodrigo CALDERON RICO, Paul Franz REDDER
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Patent number: 11454685Abstract: A wireless magnetic resonance (MR) signal receiving system comprises a wireless MR coil (20) and a base station (50). The wireless MR coil includes coil elements (22) tuned to receive an MR signal, and electronic modules (24) each including a transceiver (30) and a digital processor (32). Each electronic module is operatively connected to receive an MR signal from at least one coil element. The base station includes a base station transceiver (52) configured to wirelessly communicate with the transceivers of the electronic modules of the wireless MR coil, and a base station digital processor (54). The electronic modules form a configurable mesh network (60) to wirelessly transmit the MR signals received by the electronic modules to the base station. The base station digital processor is programmed to operate the base station transceiver to receive the MR signals wirelessly transmitted to the base station by the configurable mesh network.Type: GrantFiled: November 27, 2018Date of Patent: September 27, 2022Assignee: Koninklijke Philips N.V.Inventors: Paul Franz Redder, Arne Reykowski, Rodrigo Calderon Rico
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Patent number: 11320501Abstract: A clocked electronic device, such as a wireless magnetic resonance (MR) receive coil (20), comprises a wireless receiver or transceiver (30) configured to receive a propagation-delayed wireless clock synchronization signal (54) comprising first and second propagation-delayed carrier signals at respective first and second carrier frequencies separated by a frequency difference, a clock (60) comprising a local oscillator (62) driving a digital counter (64), and at least one electronic signal processing component (66) configured to perform clock synchronization. This includes determining a wrap count (k) from a phase difference (?1) between phases of the first and second propagation-delayed carrier signals, unwrapping a wrapped phase (?2,wrapped) of the propagation-delayed wireless clock synchronization signal using the wrap count to generate an unwrapped phase (?2,wrapped), and synchronizing the clock using the unwrapped phase.Type: GrantFiled: January 30, 2019Date of Patent: May 3, 2022Assignee: Koninklijke Philips N.V.Inventors: Arne Reykowski, Paul Franz Redder, Rodrigo Calderon Rico
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Patent number: 11277808Abstract: A base station operating with a system clock includes a transmitter, a receiver, a phase error detector and a controller. The transmitter sends a first RF signal modulated onto a first RF carrier having a first phase over a first channel having a first variable phase delay to a mobile station. The mobile station recovers the first RF carrier, generates a second RF carrier, and synchronizes a local clock using the recovered first RF carrier and/or the second RF carrier. The receiver receives a second RF signal modulated onto the second RF carrier having a second phase over a second channel having a second variable phase delay. The phase error detector determines a phase error signal based on the first and second phases, and the controller generates a control signal based on the phase error signal. The control signal is applied to first and second inverse channel models.Type: GrantFiled: January 8, 2019Date of Patent: March 15, 2022Assignee: Koninklijke Philips N.V.Inventors: Arne Reykowski, Paul Franz Redder, Rodrigo Calderon Rico
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Patent number: 11275134Abstract: In MRI system, acquired MR signals that will have a greater impact on the quality of the final reconstructed MRI image if a data link error occurs are encoded with a higher, or more robust, level of encoding prior to being transmitted over a data communications link. Conversely, acquired MR signals that will have a lesser impact on the quality of the final reconstructed MRI image if a data link error occurs are encoded with a lower, or less robust, level of encoding prior to being transmitted over the data communications link. The overall result is improved data link robustness and efficiency for data being sent over the data link.Type: GrantFiled: September 29, 2017Date of Patent: March 15, 2022Assignee: Koninklijke Philips N.V.Inventors: Paul Franz Redder, Arne Reykowski, Filips Van Liere
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Patent number: 11119167Abstract: A magnetic resonance imaging system (100, 200, 300, 400) includes a wireless communication station (600) which: receives via a receive antenna element (630) at least one first clock signal among two or more first clock signals which are synchronized with a first clock (510); transmits two or more second clock signals from two or more transmit antenna elements (620-1) of a phased array antenna (620); transmits data representing a sensed magnetic resonance signal from at least two of the transmit antenna elements; outputs a clock synchronization signal in response to the received first clock signal(s); and synchronizes a second clock (610) to the first clock signal in response to the clock synchronization signal. The first clock signals are transmitted by a phased array antenna (520) of another wireless communication station (500).Type: GrantFiled: October 24, 2018Date of Patent: September 14, 2021Assignee: Koninklijke Philips N.V.Inventors: Rodrigo Calderon Rico, Arne Reykowski, Paul Franz Redder
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Patent number: 10928470Abstract: An image acquisition system (100, 500, 600, 700). The image acquisition system may include at least one processor (110, 502-2, 610, 710) configured to control: a transmitter (112, 612) to form packets for transmission over a high-data-rate (HDR) wireless communication link (HDR-WCL) (124, 624), an image acquisition device (120, 631) to acquire image data and form HDR data, and a scheduler (114, 614) to acquire control information for controlling at least one function of the image acquisition system during the image acquisition, determine a restricted packet size for the packets of the HDR-WCL in accordance with at least deterministic timing requirements of the system, and determine a schedule for transmitting the control information in a corresponding packet of the packets in accordance with the deterministic timing requirements of the image acquisition system and the restricted packet size.Type: GrantFiled: November 18, 2016Date of Patent: February 23, 2021Assignee: Koninklijke Philips N.V.Inventors: Paul Franz Redder, Arne Reykowski, Timothy Ortiz, George Randall Duensing
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Publication number: 20200408862Abstract: A clocked electronic device, such as a wireless magnetic resonance (MR) receive coil (20), comprises a wireless receiver or transceiver (30) configured to receive a propagation-delayed wireless clock synchronization signal (54) comprising first and second propagation-delayed carrier signals at respective first and second carrier frequencies separated by a frequency difference, a clock (60) comprising a local oscillator (62) driving a digital counter (64), and at least one electronic signal processing component (66) configured to perform clock synchronization. This includes determining a wrap count (k) from a phase difference (?1) between phases of the first and second propagation-delayed carrier signals, unwrapping a wrapped phase (?2,wrapped) of the propagation-delayed wireless clock synchronization signal using the wrap count to generate an unwrapped phase (?2,wrapped), and synchronizing the clock using the unwrapped phase.Type: ApplicationFiled: January 30, 2019Publication date: December 31, 2020Inventors: ARNE REYKOWSKI, PAUL FRANZ REDDER, RODRIGO CALDERON RICO
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Publication number: 20200355766Abstract: A wireless magnetic resonance (MR) signal receiving system comprises a wireless MR coil (20) and a base station (50). The wireless MR coil includes coil elements (22) tuned to receive an MR signal, and electronic modules (24) each including a transceiver (30) and a digital processor (32). Each electronic module is operatively connected to receive an MR signal from at least one coil element. The base station includes a base station transceiver (52) configured to wirelessly communicate with the transceivers of the electronic modules of the wireless MR coil, and a base station digital processor (54). The electronic modules form a configurable mesh network (60) to wirelessly transmit the MR signals received by the electronic modules to the base station. The base station digital processor is programmed to operate the base station transceiver to receive the MR signals wirelessly transmitted to the base station by the configurable mesh network.Type: ApplicationFiled: November 27, 2018Publication date: November 12, 2020Applicant: KONINKLIJKE PHILIPS N.V.Inventors: PAUL FRANZ REDDER, ARNE REYKOWSKI, RODRIGO CALDERON RICO
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Publication number: 20200344706Abstract: A base station operating with a system clock includes a transmitter, a receiver, a phase error detector and a controller. The transmitter sends a first RF signal modulated onto a first RF carrier having a first phase over a first channel having a first variable phase delay to a mobile station. The mobile station recovers the first RF carrier, generates a second RF carrier, and synchronizes a local clock using the recovered first RF carrier and/or the second RF carrier. The receiver receives a second RF signal modulated onto the second RF carrier having a second phase over a second channel having a second variable phase delay. The phase error detector determines a phase error signal based on the first and second phases, and the controller generates a control signal based on the phase error signal. The control signal is applied to first and second inverse channel models.Type: ApplicationFiled: January 8, 2019Publication date: October 29, 2020Inventors: ARNE REYKOWSKI, PAUL FRANZ REDDER, RODRIGO CALDERON RICO
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Publication number: 20200292649Abstract: An image acquisition system (100, 500, 600, 700). The image acquisition system may include at least one processor (110, 502-2, 610, 710) configured to control: a transmitter (112, 612) to form packets for transmission over a high-data-rate (HDR) wireless communication link (HDR-WCL) (124, 624), an image acquisition device (120, 631) to acquire image data and form HDR data, and a scheduler (114, 614) to acquire control information for controlling at least one function of the image acquisition system during the image acquisition, determine a restricted packet size for the packets of the HDR-WCL in accordance with at least deterministic timing requirements of the system, and determine a schedule for transmitting the control information in a corresponding packet of the packets in accordance with the deterministic timing requirements of the image acquisition system and the restricted packet size.Type: ApplicationFiled: November 18, 2016Publication date: September 17, 2020Inventors: PAUL FRANZ REDDER, ARNE REYKOWSKI, TIMOTHY ORTIZ, GEORGE RANDALL DUENSING
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Publication number: 20200256938Abstract: A magnetic resonance imaging system (100, 200, 300, 400) includes a wireless communication station (600) which: receives via a receive antenna element (630) at least one first clock signal among two or more first clock signals which are synchronized with a first clock (510); transmits two or more second clock signals from two or more transmit antenna elements (620-1) of a phased array antenna (620); transmits data representing a sensed magnetic resonance signal from at least two of the transmit antenna elements; outputs a clock synchronization signal in response to the received first clock signal(s); and synchronizes a second clock (610) to the first clock signal in response to the clock synchronization signal. The first clock signals are transmitted by a phased array antenna (520) of another wireless communication station (500).Type: ApplicationFiled: October 24, 2018Publication date: August 13, 2020Inventors: RODRIGO CALDERON RICO, ARNE REYKOWSKI, PAUL FRANZ REDDER
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Publication number: 20190212402Abstract: In MRI system, acquired MR signals that will have a greater impact on the quality of the final reconstructed MRI image if a data link error occurs are encoded with a higher, or more robust, level of encoding prior to being transmitted over a data communications link. Conversely, acquired MR signals that will have a lesser impact on the quality of the final reconstructed MRI image if a data link error occurs are encoded with a lower, or less robust, level of encoding prior to being transmitted over the data communications link. The overall result is improved data link robustness and efficiency for data being sent over the data link.Type: ApplicationFiled: September 29, 2017Publication date: July 11, 2019Inventors: PAUL FRANZ REDDER, ARNE REYKOWSKI, FILIPS VAN LIERE