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[미국특허] Fast estimation of weak bio-signals using novel algorithms for generating multiple additional data frames 원문보기

IPC분류정보
국가/구분 United States(US) Patent 등록
국제특허분류(IPC7판)
  • H04B-015/00
  • G10L-021/02
  • G10L-021/00
  • G10L-019/14
  • G10L-019/00
출원번호 US-0113425 (2002-03-29)
발명자 / 주소
  • Causevic,Elvir
  • Causevic,Eldar
출원인 / 주소
  • Everest Biomedical Instruments Co.
대리인 / 주소
    Finnegan, Henderson, Farabow, Garrett &
인용정보 피인용 횟수 : 85  인용 특허 : 8

초록

A method and apparatus for de-noising weak bio-signals having a relatively low signal to noise ratio utilizes an iterative process of de-noising a data set comprised of a new set of frames. The method separately performs a non-linear de-noising operation on each of the component frames and combines

대표청구항

What is claimed is: 1. A signal processor for de-noising an input signal, comprising: a memory for storing the input signal, wherein the input signal is divided into a plurality of frames of data points; and a processor configured to: separately perform a non-linear de-noising operation on each of

이 특허에 인용된 특허 (8) 인용/피인용 타임라인 분석

  1. Smith, Patrick D.; Uskali, Robert; Hart, William C., Adaptive threshold algorithm for real-time wavelet de-noising applications.
  2. Zaroubi Saleem,ILX ; Goelman Gadi,ILX ; Chisin Roland,ILX, MRI imaging with noise filtering in wavelet space.
  3. Neely Stephen T. (10619 N. 51st St. Omaha NE 68152) Pepe Margaret Sullivan (5726 26th Ave. NE. Seattle WA 98105), Method and apparatus for objective and automated analysis of auditory brainstem response to determine hearing capacity.
  4. Tran Vy ; Lei Sheau-Fang ; Hsueh Keng D., Method and apparatus for separation of impulsive and non-impulsive components in a signal.
  5. Benedetto John J. (Hyattsville MD) Teolis Anthony (Upper Marlboro MD), Nonlinear method and apparatus for coding and decoding acoustic signals with data compression and noise suppression usin.
  6. Cope, R. Bradley; Boemler, Stephen G., Speech recognition system and associated methods.
  7. Stegmann Joachim,DEX, Variable-subframe-length speech-coding classes derived from wavelet-transform parameters.
  8. Hwa Chen, Wide band video signal denoiser and method for denoising.

이 특허를 인용한 특허 (85) 인용/피인용 타임라인 분석

  1. Fu, Chi Yung, Apparatus for treating a patient.
  2. Kayyali, Hani; Kolkowski, Brian M., Automatic continuous positive airway pressure treatment system with fast respiratory response.
  3. McKenna, Edward M., Bioimpedance system and sensor and technique for using the same.
  4. Wood, Lockett E., Certification apparatus and method for a medical device computer.
  5. Addison, Paul Stanley; Watson, James Nicholas, Detecting a probe-off event in a measurement system.
  6. Watson, James Nicholas; Addison, Paul Stanley, Detecting a signal quality decrease in a measurement system.
  7. Watson, James Nicholas; Addison, Paul Stanley, Detecting a signal quality decrease in a measurement system.
  8. McKenna, Edward M., Determination of a physiological parameter.
  9. McKenna, Edward M., Determination of a physiological parameter.
  10. Addison, Paul Stanley; Watson, James Nicholas; Van Slyke, Braddon M., Estimating transform values using signal estimates.
  11. Causevic,Elvir; Causevic,Eldar, Fast estimation of weak bio-signals using novel algorithms for generating multiple additional data frames.
  12. Causevic, Elvir, Field-deployable concussion detector.
  13. Mulvey, James; Gaalaas, Joseph, Filtering for detection of limited-duration distortion.
  14. Mannheimer, Paul D.; Hannula, Don L.; Bebout, Donald E.; O'Neil, Michael Patrick, Forehead sensor placement.
  15. Mannheimer, Paul D.; Hannula, Don; Bebout, Donald E.; O'Neil, Michael Patrick, Forehead sensor placement.
  16. Mannheimer, Paul D.; Hannula, Don; Bebout, Donald E.; O'Neil, Michael Patrick, Forehead sensor placement.
  17. Hannula, Don; Mannheimer, Paul, Hat-based oximeter sensor.
  18. Hannula, Don; Mannheimer, Paul, Hat-based oximeter sensor.
  19. Hannula, Don; Mannheimer, Paul, Hat-based oximeter sensor.
  20. Hannula, Don; Mannheimer, Paul, Hat-based oximeter sensor.
  21. Hannula, Don; Mannheimer, Paul, Hat-based oximeter sensor.
  22. Hannula, Don; Coakley, Joseph, Headband with tension indicator.
  23. Hannula, Don; Coakley, Joseph; Mannheimer, Paul D., Headband with tension indicator.
  24. Kayyali, Hani; Bishop, Dan; Kolkowski, Brian M., Integrated diagnostic and therapeutic system and method for improving treatment of subject with complex and central sleep apnea.
  25. Kayyali, Hani; Bishop, Daniel; Kolkowski, Brian M, Integrated diagnostic and therapeutic system and method for improving treatment of subject with complex and central sleep apnea.
  26. Watson, James Nicholas; Addison, Paul Stanley; McKenna, Edward M, Low perfusion signal processing systems and methods.
  27. Medina, Casey V., Medical sensor and technique for using the same.
  28. McKenna, Edward M.; Besko, David, Medical sensor with compressible light barrier and technique for using the same.
  29. Besko, David; McKenna, Edward M., Medical sensor with flexible components and technique for using the same.
  30. Choi, Yong-sun, Method and apparatus for measuring otoacoustic emission.
  31. Jacquin, Arnaud; Causevic, Elvir, Method and device for probabilistic objective assessment of brain function.
  32. Fu, Chi Yung, Method for processing brainwave signals.
  33. Fu, Chi Yung, Method for treating a patient.
  34. Addison, Paul Stanley; Watson, James Nicholas, Method of analyzing and processing signals.
  35. Addison, Paul Stanley; Watson, James Nicholas, Method of analyzing and processing signals.
  36. Addison, Paul Stanley; Watson, James Nicholas, Method of analyzing and processing signals.
  37. Addison, Paul Stanley; Watson, James Nicholas, Method of analyzing and processing signals.
  38. Addison, Paul Stanley; Watson, James Nicholas, Method of analyzing and processing signals.
  39. Addison, Paul Stanley; Watson, James Nicholas, Method of analyzing and processing signals.
  40. Addison, Paul Stanley; Watson, James N., Methods and apparatus for calibrating respiratory effort from photoplethysmograph signals.
  41. Addison, Paul Stanley; Cassidy, Andrew M.; Watson, James N., Methods and apparatus for determining breathing effort characteristics measures.
  42. Addison, Paul Stanley; Watson, James, Methods and apparatus for producing and using lightly filtered photoplethysmograph signals.
  43. Watson, James Nicholas; Addison, Paul Stanley, Methods and systems for determining whether to trigger an alarm.
  44. Addison, Paul Stanley; Watson, James; Clifton, David, Methods and systems for discriminating bands in scalograms.
  45. Addison, Paul Stanley; Watson, James; Clifton, David, Methods and systems for discriminating bands in scalograms.
  46. Watson, James Nicholas; Addison, Paul Stanley, Methods and systems for filtering a signal according to a signal model and continuous wavelet transform techniques.
  47. Watson, James Nicholas; Addison, Paul Stanley, Methods and systems for filtering a signal according to a signal model and continuous wavelet transform techniques.
  48. Addison, Paul S.; Watson, James N., Non-stationary feature relationship parameters for awareness monitoring.
  49. Causevic, Elvir; Combs, Arthur H., Portable automatic brain state assessment apparatus.
  50. Watson, James Nicholas; Addison, Paul Stanley, Processing and detecting baseline changes in signals.
  51. Watson, James; Addison, Paul Stanley, Processing and detecting baseline changes in signals.
  52. Addison, Paul S.; Watson, James, Pulse rate determination using Gaussian kernel smoothing of multiple inter-fiducial pulse periods.
  53. Fu, Chi Yung, Signal processing method and apparatus.
  54. Addison, Paul Stanley; Watson, James Nicholas; McKenna, Edward M., Signal processing systems and methods for analyzing multiparameter spaces to determine physiological states.
  55. Watson, James Nicholas; Addison, Paul Stanley, Signal processing systems and methods using basis functions and wavelet transforms.
  56. Addison, Paul Stanley; Watson, James Nicholas, Signal processing systems and methods using multiple signals.
  57. McGonigle, Scott; Addison, Paul S.; Watson, James N., Signal processing techniques for aiding the interpretation of respiration signals.
  58. Causevic, Elvir, System and method for signal processing using fractal dimension analysis.
  59. Causevic, Elvir, System and methods for management of disease over time.
  60. Causevic, Elvir, System and methods for neurologic monitoring and improving classification and treatment of neurologic states.
  61. Iyer, Darshan Ramesh, Systems and methods for EEG monitoring.
  62. Watson, James; Addison, Paul Stanley, Systems and methods for artifact detection in signals.
  63. Galen, Peter; Addison, Paul; Watson, James; McGonigle, Scott, Systems and methods for detecting and monitoring arrhythmias using the PPG.
  64. McGonigle, Scott; Ochs, James, Systems and methods for detecting held breath events.
  65. Watson, James Nicholas; Addison, Paul Stanley, Systems and methods for determining oxygen saturation.
  66. Van Slyke, Braddon M.; Addison, Paul Stanley; Watson, James Nicholas; McGonigle, Scott, Systems and methods for determining physiological information using selective transform data.
  67. Addison, Paul Stanley; Watson, James N., Systems and methods for determining respiratory effort.
  68. Watson, James Nicholas; Addison, Paul Stanley; McKenna, Edward M.; Ochs, James P., Systems and methods for determining signal quality of a physiological signal using a wavelet transform and an identified noise floor.
  69. Watson, James Nicholas; Addison, Paul Stanley; Van Slyke, Braddon M., Systems and methods for estimating values of a continuous wavelet transform.
  70. Watson, James Nicholas; Addison, Paul Stanley; Van Slyke, Braddon M., Systems and methods for estimating values of a continuous wavelet transform.
  71. Watson, James Nicholas; Addison, Paul Stanley; McKenna, Edward M.; Ochs, James P., Systems and methods for evaluating a physiological condition using a wavelet transform and identifying a band within a generated scalogram.
  72. Watson, James Nicholas; Addison, Paul Stanley, Systems and methods for filtering a signal using a continuous wavelet transform.
  73. Stoughton, Robert; Addison, Paul S.; Watson, James N., Systems and methods for gating an imaging device.
  74. Addison, Paul Stanley; Watson, James Nicholas, Systems and methods for identifying pulse rates.
  75. Addison, Paul Stanley; Watson, James, Systems and methods for non-invasive determination of blood pressure.
  76. Ochs, James P.; Addison, Paul Stanley; Watson, James Nicholas, Systems and methods for processing physiological signals in wavelet space.
  77. Addison, Paul Stanley; Watson, James Nicholas, Systems and methods for pulse processing.
  78. Van Slyke, Braddon M.; Addison, Paul Stanley; Watson, James Nicholas, Systems and methods for resolving the continuous wavelet transform of a signal.
  79. Watson, James Nicholas; Addison, Paul Stanley; Clifton, David, Systems and methods for ridge selection in scalograms of signals.
  80. Watson, James Nicholas; Addison, Paul Stanley; Clifton, David, Systems and methods for ridge selection in scalograms of signals.
  81. Watson, James; Addison, Paul Stanley; Clifton, David, Systems and methods for ridge selection in scalograms of signals.
  82. Addison, Paul; Ochs, James; Watson, James, Systems and methods for wavelet transform scale-dependent multiple-archetyping.
  83. Sethi, Rakesh; Addison, Paul Stanley; Watson, James Nicholas, Systems and methods using induced perturbation to determine physiological parameters.
  84. Addison, Paul Stanley; Watson, James Nicholas, Using a continuous wavelet transform to generate a reference signal.
  85. Addison, Paul; Watson, James; Ochs, James; McGonigle, Scott, Venous oxygen saturation systems and methods.

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