Patents by Inventor Paul Addison
Paul Addison 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: 20260085522Abstract: A sealing and connecting device for overlapping roof sheeting in which the sealing and connecting functions are physically separated, but still co-located so that neither are compromised. A series of guides attaches to the lower sheet from below and a resilient first seal is provided against the top end profile of the lower sheet. A series of clips attaches to the upper sheet from below, with a second seal acting on the upper sheet from below and third seal engaging with the rib of the upper sheet. Alternatively, for sheeting with straight sided ribs, a screw secures the top sheet to a slidable portion of the device. As the connecting elements are separated from the seal they can be made of metal and shaped optimally to provide maximum connecting strength. The separate seals are made of differing materials allowing the performance of each to be optimised.Type: ApplicationFiled: August 17, 2023Publication date: March 26, 2026Inventor: Paul ADDISON
-
Patent number: 10537289Abstract: Systems and methods are provided for determining respiration information from physiological signals such as PPG signals. A physiological signal is processed to generate at least one respiration information signal and an autocorrelation sequence is generated based on the at least one respiration information signal. In some embodiments, a respiration peak is identified based on the autocorrelation sequence and a composite peak is generated based on the identified peak and at least one previous respiration peak. Respiration information is calculated based on the composite peak. In some embodiments, a determination is made whether the autocorrelation sequence includes an undesired harmonic. When the autocorrelation sequence includes an undesired harmonic, the autocorrelation sequence may not be used in the calculation of respiration information.Type: GrantFiled: February 23, 2018Date of Patent: January 21, 2020Assignee: COVIDIEN LPInventors: James Ochs, Scott McGonigle, Paul Addison
-
Publication number: 20180177460Abstract: Systems and methods are provided for determining respiration information from physiological signals such as PPG signals. A physiological signal is processed to generate at least one respiration information signal and an autocorrelation sequence is generated based on the at least one respiration information signal. In some embodiments, a respiration peak is identified based on the autocorrelation sequence and a composite peak is generated based on the identified peak and at least one previous respiration peak. Respiration information is calculated based on the composite peak. In some embodiments, a determination is made whether the autocorrelation sequence includes an undesired harmonic. When the autocorrelation sequence includes an undesired harmonic, the autocorrelation sequence may not be used in the calculation of respiration information.Type: ApplicationFiled: February 23, 2018Publication date: June 28, 2018Inventors: James Ochs, Scott McGonigle, Paul Addison
-
Patent number: 9901308Abstract: Systems and methods are provided for determining respiration information from physiological signals such as PPG signals. A physiological signal is processed to generate at least one respiration information signal and an autocorrelation sequence is generated based on the at least one respiration information signal. In some embodiments, a respiration peak is identified based on the autocorrelation sequence and a composite peak is generated based on the identified peak and at least one previous respiration peak. Respiration information is calculated based on the composite peak. In some embodiments, a determination is made whether the autocorrelation sequence includes an undesired harmonic. When the autocorrelation sequence includes an undesired harmonic, the autocorrelation sequence may not be used in the calculation of respiration information.Type: GrantFiled: February 20, 2015Date of Patent: February 27, 2018Assignee: Covidien LPInventors: James Ochs, Scott McGonigle, Paul Addison
-
Patent number: 9597022Abstract: Methods and systems are discussed for determining venous oxygen saturation by calculating a ratio of ratios from respiration-induced baseline modulations. A calculated venous ratio of ratios may be compared with a look-up table value to estimate venous oxygen saturation. A calculated venous ratio of ratios is compared with an arterial ratio of ratios to determine whether baseline modulations are the result of a subject's respiration or movement. Such a determination is also made by deriving a venous ratio of ratios using a transform technique, such as a continuous wavelet transform. Derived venous and arterial saturation values are used to non-invasively determine a cardiac output of the subject.Type: GrantFiled: September 9, 2011Date of Patent: March 21, 2017Assignee: Nellcor Puritan Bennett IrelandInventors: Paul Addison, James Watson, James Ochs, Scott McGonigle
-
Patent number: 9370308Abstract: The present disclosure relates generally to patient monitoring systems and, more particularly, to signal analysis for patient monitoring systems. In one embodiment, a method of analyzing a detector signal of a physiological patient sensor includes obtaining the detector signal from the physiological patient sensor, and determining a ratio of the signal between two or more channels. A distribution of the angles between the points of the ratio over time may be used to determine a true ratio or a ratio of ratios for use in the determination of a physiological parameter.Type: GrantFiled: May 1, 2012Date of Patent: June 21, 2016Assignee: Nellcor Puritan Bennett IrelandInventors: Paul Addison, James Ochs, James Watson
-
Publication number: 20150342478Abstract: Systems and methods for detecting and monitoring arrhythmias from a signal are provided. A signal processing system may transform a signal using a wavelet transformation and analyze changes in features of the transformed signal to detect pulse rhythm abnormalities. For example, the system may detect pulse rhythm abnormalities by analyzing energy parameters, morphology changes, and pattern changes in the scalogram of a PPG signal. Further, the system may detect pulse rhythm abnormalities by analyzing both the PPG signal and its corresponding scalogram. Physiological information, such as cardiac arrhythmia, may be derived based on the detected pulse rhythm abnormality.Type: ApplicationFiled: August 10, 2015Publication date: December 3, 2015Inventors: Peter Galen, Paul Addison, James Watson, Scott McGonigle
-
Patent number: 9179876Abstract: A patient monitoring system may determine portions of a PPG signal that correspond to artifacts, to a baseline shift that exceeds a threshold, or to a pulse-to-pulse variability that exceeds a threshold. The patient monitoring system may identify a contiguous portion of the PPG signal that does not include the determined portions. The contiguous portion of the PPG signal may be used to determine physiological information.Type: GrantFiled: April 30, 2012Date of Patent: November 10, 2015Assignee: Nellcor Puritan Bennett IrelandInventors: James Ochs, Scott McGonigle, Paul Addison, James Watson
-
Patent number: 9113830Abstract: Systems and methods for detecting and monitoring arrhythmias from a signal are provided. A signal processing system may transform a signal using a wavelet transformation and analyze changes in features of the transformed signal to detect pulse rhythm abnormalities. For example, the system may detect pulse rhythm abnormalities by analyzing energy parameters, morphology changes, and pattern changes in the scalogram of a PPG signal. Further, the system may detect pulse rhythm abnormalities by analyzing both the PPG signal and its corresponding scalogram. Physiological information, such as cardiac arrhythmia, may be derived based on the detected pulse rhythm abnormality.Type: GrantFiled: May 31, 2011Date of Patent: August 25, 2015Assignee: Nellcor Puritan Bennett IrelandInventors: Peter Galen, Paul Addison, James Watson, Scott McGonigle
-
Publication number: 20150230759Abstract: Systems and methods are provided for determining respiration information from physiological signals such as PPG signals. A physiological signal is processed to generate at least one respiration information signal and an autocorrelation sequence is generated based on the at least one respiration information signal. In some embodiments, a respiration peak is identified based on the autocorrelation sequence and a composite peak is generated based on the identified peak and at least one previous respiration peak. Respiration information is calculated based on the composite peak. In some embodiments, a determination is made whether the autocorrelation sequence includes an undesired harmonic. When the autocorrelation sequence includes an undesired harmonic, the autocorrelation sequence may not be used in the calculation of respiration information.Type: ApplicationFiled: February 20, 2015Publication date: August 20, 2015Inventors: James Ochs, Scott McGonigle, Paul Addison
-
Patent number: 9050043Abstract: Methods and systems are disclosed for producing a plurality of archetype signals in wavelet space at a plurality of wavelet scales. A signal is transformed using a continuous wavelet transform based at least in part on a wavelet function. A scale dependent archetype transformed signal is computed based at least in part on the transformed signal and based at least in part on a natural periodicity of the wavelet function used to transform the signal. Information may be derived about the signal from the archetype transform signal, and stored in memory.Type: GrantFiled: May 4, 2010Date of Patent: June 9, 2015Assignee: Nellcor Puritan Bennett IrelandInventors: Paul Addison, James Ochs, James Watson
-
Publication number: 20130296659Abstract: The present disclosure relates generally to patient monitoring systems and, more particularly, to signal analysis for patient monitoring systems. In one embodiment, a method of analyzing a detector signal of a physiological patient sensor includes obtaining the detector signal from the physiological patient sensor, and determining a ratio of the signal between two or more channels. A distribution of the angles between the points of the ratio over time may be used to determine a true ratio or a ratio of ratios for use in the determination of a physiological parameter.Type: ApplicationFiled: May 1, 2012Publication date: November 7, 2013Applicant: Nellcor Puritan Bennett IrelandInventors: Paul Addison, James Ochs, James Watson
-
Publication number: 20130289413Abstract: A patient monitoring system may determine portions of a PPG signal that correspond to artifacts, to a baseline shift that exceeds a threshold, or to a pulse-to-pulse variability that exceeds a threshold. The patient monitoring system may identify a contiguous portion of the PPG signal that does not include the determined portions. The contiguous portion of the PPG signal may be used to determine physiological information.Type: ApplicationFiled: April 30, 2012Publication date: October 31, 2013Applicant: Nellcor Puritan Bennett IrelandInventors: James Ochs, Scott McGonigle, Paul Addison, James Watson
-
Publication number: 20130066173Abstract: Methods and systems are discussed for determining venous oxygen saturation by calculating a ratio of ratios from respiration-induced baseline modulations. A calculated venous ratio of ratios may be compared with a look-up table value to estimate venous oxygen saturation. A calculated venous ratio of ratios is compared with an arterial ratio of ratios to determine whether baseline modulations are the result of a subject's respiration or movement. Such a determination is also made by deriving a venous ratio of ratios using a transform technique, such as a continuous wavelet transform. Derived venous and arterial saturation values are used to non-invasively determine a cardiac output of the subject.Type: ApplicationFiled: September 9, 2011Publication date: March 14, 2013Applicant: Nellcor Puritan Bennett IrelandInventors: Paul Addison, James Watson, Paul Mannheimer
-
Publication number: 20130066176Abstract: Methods and systems are discussed for determining venous oxygen saturation by calculating a ratio of ratios from respiration-induced baseline modulations. A calculated venous ratio of ratios may be compared with a look-up table value to estimate venous oxygen saturation. A calculated venous ratio of ratios is compared with an arterial ratio of ratios to determine whether baseline modulations are the result of a subject's respiration or movement. Such a determination is also made by deriving a venous ratio of ratios using a transform technique, such as a continuous wavelet transform. Derived venous and arterial saturation values are used to non-invasively determine a cardiac output of the subject.Type: ApplicationFiled: September 9, 2011Publication date: March 14, 2013Applicant: Nellcor Puritan Bennett IrelandInventors: Paul Addison, James Watson, James Ochs
-
Publication number: 20130066175Abstract: Methods and systems are discussed for determining venous oxygen saturation by calculating a ratio of ratios from respiration-induced baseline modulations. A calculated venous ratio of ratios may be compared with a look-up table value to estimate venous oxygen saturation. A calculated venous ratio of ratios is compared with an arterial ratio of ratios to determine whether baseline modulations are the result of a subject's respiration or movement. Such a determination is also made by deriving a venous ratio of ratios using a transform technique, such as a continuous wavelet transform. Derived venous and arterial saturation values are used to non-invasively determine a cardiac output of the subject.Type: ApplicationFiled: September 9, 2011Publication date: March 14, 2013Applicant: Nellcor Puritan Bennett IrelandInventors: Paul Addison, James Watson
-
Publication number: 20130024123Abstract: A patient monitoring system may be configured to use template matching in determining physiological parameters. A physiological signal may be monitored, and a wavelet transform may be performed. The wavelet transform, or parameters derived thereof such as energy distribution or relative phase difference, may be compared with one or more templates using template matching. Templates may be based on, for example, physiological data, mathematical models, or look-up tables, and may be pre-computed and stored. Physiological parameters may be determined based on the template matching results. Scale variability, confidence metrics, or both, may be used to aid in determining the physiological parameter.Type: ApplicationFiled: July 21, 2011Publication date: January 24, 2013Applicant: Nellcor Puritan Bennett IrelandInventors: James Ochs, Paul Addison, James Watson
-
Publication number: 20130007083Abstract: Methods and systems are disclosed for computing one or more continuous wavelet transforms on a dedicated integrated circuit. The systems comprise an integrated circuit having a receiver, memory, and processing circuitry. The receiver receives input data corresponding to an input signal. The memory stores information corresponding to one or more wavelet functions scaled over a set of scales. The processing circuitry is configured to compute, in-parallel, various portions of a single continuous wavelet transform of the input signal based on the received input data and the stored information corresponding to a single wavelet function computed over a set of scales.Type: ApplicationFiled: June 30, 2011Publication date: January 3, 2013Applicant: Nellcor Puritan Bennett IrelandInventors: Peter Galen, James Ochs, James Watson, Tom Wilmering, Paul Addison
-
Publication number: 20120310100Abstract: Systems and methods for detecting and monitoring arrhythmias from a signal are provided. A signal processing system may transform a signal using a wavelet transformation and analyze changes in features of the transformed signal to detect pulse rhythm abnormalities. For example, the system may detect pulse rhythm abnormalities by analyzing energy parameters, morphology changes, and pattern changes in the scalogram of a PPG signal. Further, the system may detect pulse rhythm abnormalities by analyzing both the PPG signal and its corresponding scalogram. Physiological information, such as cardiac arrhythmia, may be derived based on the detected pulse rhythm abnormality.Type: ApplicationFiled: May 31, 2011Publication date: December 6, 2012Applicant: Nellcor Puritan Bennett IrelandInventors: Peter Galen, Paul Addison, James Watson, Scott McGonigle
-
Publication number: 20120310051Abstract: Methods and systems are disclosed for defining a physiological parameter. A first physiological signal is transformed into in a complex transform space, the transformed signal having a magnitude and a phase. The transformed signal is rotated by altering its phase. The rotated signal is inverted, and the inverted signal is aligned in phase with a second physiological signal. The aligned inverted signal and the second physiological signal are combined to form a combined signal indicative of the physiological parameter.Type: ApplicationFiled: May 31, 2011Publication date: December 6, 2012Applicant: Nellcor Puritan Bennett IrelandInventors: Paul Addison, Scott McGonigle, James Watson