Claims
- 1. A method for use in noninvasively analyzing a blood flow channel of an organism, comprising the steps of:
obtaining first information regarding a velocity profile of said blood flow channel at a first time; obtaining second information regarding a velocity profile of said blood flow channel at a second time; and using said first information and said second information to obtain processed information related to a dimension of said flow channel.
- 2. A method as set forth in claim 1, wherein at least one of said steps of obtaining first information and obtaining second information comprises performing a measurement using a sensor disposed external to said organism.
- 3. A method as set forth in claim 1, wherein said step of using comprises obtaining one of 1) dimension information regarding said flow channel, 2) first dimension related information derived from dimension information regarding said flow channel, and 3) second dimension related information dependent on dimension information regarding said flow channel.
- 4. A method as set forth in claim 1, wherein said step of using comprises processing said first and second information using a relationship that relates a first parameter associated with flow velocity, a second parameter associated with time and a third parameter associated with a channel dimension.
- 5. A method as set forth in claim 1, further comprising, after said steps of obtaining first information and obtaining second information, obtaining third information related to said blood flow channel and using said processed information and said third information to determine processed information related to one of said blood flow channel and said dimension.
- 6. A method as set forth in claim 1, wherein at least one of said steps of obtaining first information and obtaining said second information comprises receiving an input signal related to physiological material including said flow channel and processing said signal using a mathematical structure for modeling said input signal as a signal portion of interest and an undesired signal portion so as to account for said undesired signal portion in obtaining said processed information.
- 7. A method for use in analyzing physiological material within an organism, comprising the steps of:
obtaining flow characteristic information for a flow of a physiological fluid in a flow channel of said organism based on an analysis of said flow; and using said flow characteristic information to obtain processed information related to a dimension of said flow channel.
- 8. A method as set forth in claim 7, wherein said step of obtaining flow characteristic information comprises obtaining qualitative flow rate information regarding said flow.
- 9. A method as set forth in claim 7, wherein said step of obtaining flow characteristic information comprises obtaining information related to a velocity of said flow.
- 10. A method as set forth in claim 7, wherein said step of obtaining flow characteristic information comprises obtaining information related to at least one velocity profile of said flow channel, where said velocity profile defines a spatial velocity distribution within said flow channel.
- 11. A method as set forth in claim 7, wherein said step of obtaining flow characteristic information comprises receiving first flow characteristic information regarding said flow for a first time and second flow characteristic information regarding said flow for a second time different than said first time.
- 12. A method as set forth in claim 11, wherein said step of obtaining is performed such that a flow parameter of said flow is substantially the same at said first and second times.
- 13. A method as set forth in claim 12, wherein said flow parameter comprises one of a dimension of said flow channel and a pressure gradient of said flow channel.
- 14. A method as set forth in claim 12, wherein said flow channel is a blood vessel of said organism and said first and second times are separated by a time length that is much shorter than a pulse cycle.
- 15. A method as set forth in claim 7, wherein said step of obtaining flow characteristic information comprises obtaining a value related to a temporal change in a velocity profile of said channel.
- 16. A method as set forth in claim 7, wherein said step of obtaining flow characteristic information comprises performing a measurement using a sensor disposed external to said organism.
- 17. A method as set forth in claim 7, wherein said step of obtaining flow characteristic information comprises noninvasively sensing a flow parameter of said channel.
- 18. A method as set forth in claim 7, wherein said step of obtaining flow characteristic information comprises transmitting a signal to said flow channel.
- 19. A method as set forth in claim 7, wherein said step of obtaining flow characteristic information comprises receiving a signal from said flow channel.
- 20. A method as set forth in claim 19, wherein said signal comprises an ultrasound signal.
- 21. A method as set forth in claim 19, wherein said step of obtaining flow characteristic information comprises processing said signal to obtain frequency spectrum information related to a flow parameter.
- 22. A method as set forth in claim 7, wherein said step of obtaining flow characteristic information comprises synchronizing a measurement of a flow parameter of said channel to a physiological process of said organism.
- 23. A method as set forth in 22, wherein said synchronizing comprises performing a measurement of said physiological process, generating a timing signal based on said measurement and obtaining said flow characteristic information responsive to said timing signal.
- 24. A method as set forth in claim 7, wherein said step of using said flow characteristic information comprises obtaining one of 1) dimension information regarding said flow channel, 2) first dimension related information derived from dimension information regarding said flow channel, and 3) second dimension related information dependent on dimension information regarding said flow channel.
- 25. A method as set forth in claim 7, wherein said step of using said flow characteristic information comprises determining a dimension of said flow channel.
- 26. A method as set forth in claim 7, wherein said step of using said flow characteristic information comprises determining an area of said flow channel.
- 27. A method as set forth in claim 7, wherein said step of using said flow characteristic information comprises determining a quantitative flow rate of said flow channel.
- 28. A method as set forth in claim 27, wherein said quantitative flow rate comprises one of a volumetric flow rate and a mass flow rate.
- 29. A method as set forth in claim 7, wherein said step of using said flow characteristic information comprises determining a pressure gradient of said channel.
- 30. A method as set forth in claim 7, wherein said step of using said flow characteristic information comprises determining an elasticity of said channel.
- 31. A method as set forth in claim 7, wherein said step of using said flow characteristic information comprises using first information derived from said flow characteristic information together with second information derived from said flow characteristic information to obtain said processed information.
- 32. A method as set forth in claim 31, wherein said first information is representative of a velocity in said flow channel and said second information is representative of an area of said flow channel.
- 33. A method as set forth in claim 31, wherein said first information relates to a pressure gradient of said channel and said second information relates to a dimension of said channel.
- 34. A method as set forth in claim 7, wherein said step of using flow characteristic information comprises identifying a time dependent characteristic of said flow.
- 35. A method as set forth in claim 34, wherein said time dependent characteristic of said flow is one of a periodic and a non-periodic flow rate behavior.
- 36. A method as set forth in claim 7, wherein said step of using flow characteristic information comprises determining a value related to an operation of an organ of said organism.
- 37. A method as set forth in claim 7, wherein said step of using flow characteristic information comprises determining a value related to a fluid volume that flowed through said flow channel during a time period.
- 38. A method as set forth in claim 7, wherein said step of using flow characteristic information comprises determining a value related to a fluid volume delivered per predefined cyclical parameter related to operation of an organ of said organism.
- 39. A method as set forth in claim 7, wherein said step of using flow characteristic information comprises determining a value related to ejection fraction of a heart of said organism.
- 40. A method as set forth in claim 7, wherein said step of using said flow characteristic information comprises processing said flow characteristic information using a relationship that relates a first parameter associated with flow velocity, a second parameter associated with time and a third parameter associated with a channel dimension.
- 41. A method as set forth in claim 7, wherein said step of using said flow characteristic information comprises using inputs regarding flow velocity and time to determine information related to channel dimension.
- 42. A method as set forth in claim 7, wherein said step of using said flow characteristic information comprises processing said flow characteristic information using a relationship including a dimensionless variable related to one of channel velocity, time and channel dimension.
- 43. A method as set forth in claim 7, wherein said step of using said flow characteristic information comprises using a first flow characteristic measurement for a first time and a second flow characteristic measurement for a second time.
- 44. A method as set forth in claim 43, wherein said step of using said flow characteristic measurement further comprises using said first and second measurements to obtain a value of dimensionless time characteristic of a parameter of said flow channel.
- 45. A method as set forth in claim 44, wherein said step of using said flow characteristic information further comprises using said dimensionless time value to calculate said dimension of said flow channel.
- 46. A method as set forth in claim 7, wherein said step of using said flow characteristic information comprises obtaining said processed information using first information regarding a first velocity profile of said flow at a first time, second information regarding a second velocity profile of said flow at a second time, and a mathematical structure for deriving said processed information from said first and second information including for a case where each of said first and second velocity profiles is associated with a nonzero flow velocity.
- 47. A method as set forth in claim 7, wherein said step of using said flow characteristic information comprises calculating a first value based on said flow characteristic information, calculating a second value based on said flow characteristic information and calculating said processed information based on said first and second values.
- 48. A method as set forth in claim 47, wherein said first value relates to a mean flow velocity, said second value relates to a channel cross-sectional area and said processed information relates to a volumetric flow rate.
- 49. A method as set forth in claim 7, wherein said step of using said flow characteristic information comprises establishing an algorithm for determining said processed information based on said flow characteristic information, performing measurements under known conditions to develop an empirical model related to at least one term of said algorithm, storing information related to said empirical model and using said empirical model and said said flow characteristic information to calculate said processed information.
- 50. A method as set forth in claim 7, further comprising, after said step of obtaining processed information related to a dimension of said flow channel, obtaining additional flow characteristic information for said flow of said physiological fluid in said flow channel and second using said processed information and said additional flow characteristic information to determine second processed information related to one of said flow and said flow channel.
- 51. A method as set forth in claim 50, wherein said dimension of said flow channel varies depending on flow parameters and said step of obtaining additional flow characteristic information is performed at a time when said dimension is substantially the same as for said step of obtaining flow characteristic information.
- 52. A method as set forth in claim 51, wherein said step of obtaining additional flow characteristic information is performed sufficiently close in time to said step of obtaining flow characteristic information that said dimension is substantially unchanged therebetween.
- 53. A method as set forth in claim 51, wherein said dimension changes in response to a cyclical physiological process and said steps of obtaining flow characteristic information and obtaining additional flow characteristic information are substantially phase synchronized relative to said cyclical physiological process.
- 54. A method as set forth in claim 7, wherein said step of obtaining comprises receiving an input signal related to physiological material including said flow channel and processing said signal using a mathematical structure for modeling said input signal as a signal portion of interest and an undesired signal portion so as to account for said undesired signal portion in obtaining said flow characteristic information.
- 55. A method as set forth in claim 54, wherein said processing comprises ameliorating an effect of said undesired signal portion free from frequency dependent filtering of said input signal.
- 56. A method as set forth in claim 54, wherein said mathematical structure reflects a multi-parameter model for use in distinguishing said signal portion of interest from said undesired signal portion.
- 57. A method as set forth in claim 54, wherein said undesired signal portion relates to a portion of said input signal associated with physiological material outside of said flow channel.
- 58. A method as set forth in claim 54, wherein said undesired signal portion includes noise associated with a portion of said input signal related to said flow channel.
- 59. A method as set forth in claim 54, wherein said mathematical structure includes an error absorption function having parameters that characterize the undesired signal portion.
- 60. A method as set forth in claim 54, wherein said mathematical structure includes multi-parameter functions including first parameters for a velocity spectral density associated with the signal portion of interest and second parameters for an error absorption function associated with the undesired signal portion.
- 61. A method as set forth in claim 54, wherein said mathematical structure includes multi-parameter functions including first parameters for a cumulative velocity spectrum associated with the signal portion of interest and second parameters for an error absorption function associated with the undesired signal portion.
- 62. A method as set forth in claim 54, wherein said mathematical structure includes multi-parameter functions including first parameters for said signal portion of interest and second parameters for said undesired signal portion, and said first mathematical structure includes an algorithm for iteratively solving for said first parameters and said second parameters so as to achieve a desired fit of said first parameters to measured values.
- 63. A method as set forth in claim 54, wherein said mathematical structure includes a first absorption function for addressing a first component of said undesired signal portion and a second absorption function for addressing a second component of said undesired signal portion.
- 64. A method as set forth in claim 62, wherein said first component relates to a portion of said input signal associated physiological material outside of said flow channel and said second component relates to a portion of said input signal associated with physiological material including material inside said flow channel.
- 65. A method as set forth in claim 54, wherein said input signal defines a frequency spectrum and said mathematical model distinguishes between a first component associated with physiological material inside said flow channel and a second component associated with physiological material outside said flow channel on a basis independent of frequency.
- 66. A method as set forth in claim 7, wherein said step of obtaining flow characteristic information comprises receiving an input for initiating said analysis of said flow.
- 67. A method as set forth in claim 66, wherein said input is received from a user via a user interface.
- 68. A method as set forth in claim 7, wherein at least one of said steps of obtaining flow characteristic information and using said flow characteristic information comprises using a timing signal from a machine.
- 69. A method as set forth in claim 68, wherein said step of using a timing signal comprises controlling said analysis of said flow based on said timing signal.
- 70. A method as set forth in claim 68, wherein said step of using a timing signal comprises correlating one of said flow characteristic information and said processed information to a physiological process of said organism.
- 71. A method as set forth in claim 68, wherein said step of using a timing signal comprises receiving a signal indicative of activity of an organ of said organism.
- 72. A method as set forth in claim 7, wherein at least one of said steps of obtaining flow information and using said flow characteristic information comprises using an input from a user including patient-specific information.
- 73. A method as set forth in claim 7, wherein said step of obtaining comprises disposing a sensor external to said flow channel and using said sensor to receive a signal that includes information regarding said flow.
- 74. A method as set forth in claim 7, wherein said step of obtaining comprises disposing a sensor external to said organism and using said sensor to receive a signal that includes information regarding said flow.
- 75. A method as set forth in claim 74, wherein said flow channel comprises an ascending aorta of said organism and said step of disposing comprises positioning said sensor adjacent a suprasternal notch of said organism.
- 76. A method as set forth in claim 7, further comprising the step of providing an output based on said processed information.
- 77. A method as set forth in claim 76, wherein said output comprises a display reflecting one or more values related to said processed information.
- 78. A method for use in analyzing physiological material within an organism, comprising the steps of:
obtaining flow characteristic information for a flow of a physiological fluid in a flow channel of said organism based on an analysis of said flow; and using said flow characteristic information independent of any separate dimensional measurement of said flow channel to determine quantitative flow rate related information regarding said physiological fluid.
- 79. A method as set forth in claim 78, wherein said step of obtaining flow characteristic information comprises obtaining information related to a velocity of said flow.
- 80. A method as set forth in claim 78, wherein said step of obtaining flow characteristic information comprises obtaining information related to at least one velocity profile of said flow channel, where said velocity profile defines a spatial velocity distribution within said flow channel.
- 81. A method as set forth in claim 78, wherein said step of obtaining flow characteristic information comprises receiving first flow characteristic information regarding said flow for a first time and second flow characteristic information regarding said flow for a second time different than said first time.
- 82. A method as set forth in claim 78, wherein said step of obtaining flow characteristic information comprises obtaining a value related to a temporal change in a velocity profile of said channel.
- 83. A method as set forth in claim 78, wherein said step of obtaining flow characteristic information comprises performing a measurement using a sensor disposed external to said organism.
- 84. A method as set forth in claim 78, wherein said step of using said flow characteristic information comprises obtaining one of 1) dimension information regarding said flow channel, 2) first dimension related information derived from dimension information regarding said flow channel, and 3) second dimension related information dependent on dimension information regarding said flow channel.
- 85. A method as set forth in claim 78, wherein said step of using said flow characteristic information comprises processing said flow characteristic information using a relationship that relates a first parameter associated with flow velocity, a second parameter associated with time and a third parameter associated with a channel dimension.
- 86. A method as set forth in claim 78, further comprising, after said step of using said flow characteristic information, obtaining additional flow characteristic information for said flow of said physiological fluid in said flow channel and using said quantitative flow rate related information and said additional flow characteristic information to determine second quantitative flow rate related information related to one of said flow and said flow channel.
- 87. A method as set forth in claim 78, wherein said step of obtaining comprises receiving an input signal related to physiological material including said flow channel and processing said signal using a mathematical structure for modeling said input signal as a signal portion of interest and an undesired signal portion so as to account for said undesired signal portion in obtaining said flow characteristic information.
- 88. A method for use in noninvasively determining a blood flow rate through a blood flow channel of an organism, comprising the steps of:
first noninvasively determining a first substantially real-time value related to blood flow velocity of said channel for a first time based on a signal received from said channel at substantially said first time; second determining a second value related to a dimension of said channel; and third determining a third substantially real-time value related to a quantitative flow rate of said flow channel at substantially said first time based on said first and second values.
- 89. A method as set forth in claim 88, wherein said step of second determining comprises noninvasively determining said second value based on a second signal received from said channel.
- 90. A method as set forth in claim 89, wherein said first signal is the same as said second signal.
- 91. A method as set forth in claim 88, wherein said step of second determining comprises determining said second value substantially in real time based on a signal received from said channel at substantially said first time.
- 92. A method as set forth in claim 88, wherein said step of first noninvasively determining comprises obtaining information related to at least one velocity profile of said flow channel, where said velocity profile defines a spatial velocity distribution within said flow channel.
- 93. A method as set forth in claim 88, wherein said step of first noninvasively determining comprises receiving first flow characteristic information regarding a flow of said flow channel for a first time and second flow characteristic information regarding said flow for a second time different than said first time.
- 94. A method as set forth in claim 88, wherein said step of first noninvasively determining comprises obtaining a value related to a temporal change in a velocity profile of said channel.
- 95. A method as set forth in claim 88, wherein said step of first noninvasively determining comprises performing a measurement using a sensor disposed external to said organism.
- 96. A method as set forth in claim 88, wherein said step of second determining comprises obtaining one of 1) dimension information regarding said flow channel, 2) first dimension related information derived from dimension information regarding said flow channel, and 3) second dimension related information dependent on dimension information regarding said flow channel.
- 97. A method as set forth in claim 88, wherein said step of second determining comprises processing said substantially real-time value related to blood flow velocity using a relationship that relates a first parameter associated with flow velocity, a second parameter associated with time and a third parameter associated with a channel dimension.
- 98. A method as set forth in claim 88, further comprising, after said step of first noninvasively determining, obtaining a second substantially real time value related to blood flow velocity of said channel and using said substantially real time value related to a dimension of said channel and said second substantially real time value to determine processed information related to one of said blood flow rate and said flow channel.
- 99. A method as set forth in claim 88, wherein said step of first noninvasively determining comprises receiving an input signal related to physiological material including said flow channel and processing said signal using a mathematical structure for modeling said input signal as a signal portion of interest and an undesired signal portion so as to account for said undesired signal portion in determining said substantially real time value related to blood flow velocity.
- 100. A method for use in analyzing physiological material within an organism, comprising the steps of:
receiving an input signal that has been modulated based on interaction with said physiological material so as to include modulated information, said signal including a first modulated signal component related to a first portion of said physiological material and a second modulated signal component related to a second portion of said physiological material, where said first portion is in motion relative to said second portion so as to define a relative velocity therebetween; first processing said modulated signal to provide a digital signal including a first digital component corresponding to said first modulated signal component and a second digital component corresponding to said second modulated signal component; providing a mathematical structure for modeling the digital signal as a signal portion of interest and an undesired signal portion; and second processing the first modulated signal component and the second modulated signal component using the mathematical structure to obtain information regarding a parameter related to motion of said first portion of said physiological material.
- 101. A method as set forth in claim 100, wherein said second processing comprises ameliorating an effect of said undesired signal portion free from frequency dependent filtering of said input signal.
- 102. A method as set forth in claim 100, wherein said mathematical structure reflects a multi-parameter model for use in distinguishing said signal portion of interest from said undesired signal portion.
- 103. A method as set forth in claim 100, wherein said undesired signal portion relates to a portion of said input signal related to said second portion of said physiological material.
- 104. A method as set forth in claim 100, wherein said undesired signal portion includes noise associated with a portion of said input signal related to said first portion of said physiological material.
- 105. A method as set forth in claim 100, wherein said mathematical structure includes an error absorption function having parameters that characterize the undesired signal portion.
- 106. A method as set forth in claim 100, wherein said mathematical structure includes multi-parameter functions including first parameters for a velocity spectral density associated with the signal portion of interest and second parameters for an error absorption function associated with the undesired signal portion.
- 107. A method as set forth in claim 100, wherein said mathematical structure includes multi-parameter functions including first parameters for a cumulative velocity spectrum associated with the signal portion of interest and second parameters for an error absorption function associated with the undesired signal portion.
- 108. A method as set forth in claim 100, wherein said mathematical structure includes a first absorption function for addressing a first component of said undesired signal portion and a second absorption function for addressing a second component of said undesired signal portion.
- 109. A method as set forth in claim 108, wherein said first component relates to a portion of said input signal associated with said first portion of said physiological material and said second component relates to a portion of said input signal associated with said second portion of said physiological material.
- 110. A method as set forth in claim 100, wherein said input signal defines a frequency spectrum and said mathematical model distinguishes between a first component associated with said first portion of said physiological material and a second component associated with said second portion of said physiological material.
- 111. A method as set forth in claim 100, wherein said mathematical structure includes multi-parameter functions including first parameters for said signal portion of interest and second parameters for said undesired signal portion, and said first mathematical structure includes an algorithm for iteratively solving for said first parameters and said second parameters so as to achieve a desired fit of said first parameters to measured values.
- 112. A method for use in analyzing physiological material within an organism, comprising the steps of:
receiving an input signal that has been modulated based on interaction with physiological material including a flow of physiological fluid in a flow channel of said organism; first processing said input signal to provide a digital signal; providing a mathematical structure for modeling the digital signal as including a signal portion of interest regarding a parameter of said flow and an undesired signal portion; and performing an analysis based on said digital signal and said mathematical structure to determine a value of said parameter.
- 113. A method as set forth in claim 112, wherein said undesired signal portion relates to a portion of said input signal associated with physiological material outside of said flow channel.
- 114. A method as set forth in claim 112, wherein said undesired signal portion includes noise associated with a portion of said input signal from said flow channel.
- 115. A method as set forth in claim 112, wherein said mathematical structure includes an error absorption function having parameters that characterize the undesired signal portion.
- 116. A method as set forth in claim 112, wherein said mathematical structure includes multi-parameter functions including first parameters for a velocity spectral density associated with the flow and second parameters for an error absorption function associated with the undesired signal portion.
- 117. A method as set forth in claim 112, wherein said mathematical structure includes multi-parameter functions including first parameters for a cumulative velocity spectrum associated with the flow and second parameters for an error absorption function associated with the undesired signal portion.
- 118. A method as set forth in claim 112, wherein said mathematical structure includes a first absorption function for addressing a first component of said undesired signal portion and a second absorption function for addressing a second component of said undesired signal portion.
- 119. A method as set forth in claim 118, wherein said first component relates to a portion of said input signal associated with physiological material outside of said flow channel and said second component relates to a portion of said input signal associated with said physiological fluid inside said flow channel.
- 120. A method as set forth in claim 112, wherein said input signal defines a frequency spectrum and said mathematical model distinguishes between a first component associated with said physiological fluid inside said flow channel and a second component associated with physiological material outside said flow channel on a basis independent of frequency.
- 121. A method as set forth in claim 112, wherein said mathematical structure includes multi-parameter functions including first parameters for said signal portion of interest and second parameters for said undesired signal portion, and said first mathematical structure includes an algorithm for iteratively solving for said first parameters and said second parameters so as to achieve a desired fit of said first parameters to measured values.
- 122. An apparatus for use in analyzing physiological material within an organism, comprising:
input structure for receiving input information regarding a qualitative flow parameter of a physiological fluid in a flow channel of an organism based on an analysis of a flow in said flow channel; logic for deriving channel dimension related information based on said input information independent of any separately obtained dimensional information regarding said flow channel; and output structure for providing an output based on said channel dimension related information.
- 123. An apparatus as set forth in claim 122, wherein said input structure is operative for obtaining information related to at least one velocity profile of said flow channel, where said velocity profile defines a spatial velocity distribution within said flow channel.
- 124. An apparatus as set forth in claim 122, wherein said input structure is operative for receiving first flow characteristic information regarding said flow for a first time and second flow characteristic information regarding said flow for a second time different than said first time.
- 125. An apparatus as set forth in claim 122, wherein said input structure is operative for obtaining a value related to a temporal change in a velocity profile of said channel.
- 126. An apparatus as set forth in claim 122, wherein said logic is operative for obtaining one of dimension information regarding said flow channel, first dimension related information derived from dimension information regarding said flow channel, and second dimension related information dependent on dimension information regarding said flow channel.
- 127. An apparatus as set forth in claim 122, wherein said logic is operative for processing said flow characteristic information using a relationship that relates a first parameter associated with flow velocity, a second parameter associated with time and a third parameter associated with a channel dimension.
- 128. An apparatus as set forth in claim 122, wherein said input structure is operative for obtaining, after said logic derives said channel dimension related information, second flow characteristic information for said flow of said physiological fluid in said flow channel and said logic is operative for using said processed information and said second flow characteristic information to determine second processed information related to one of said flow and said flow channel.
- 129. An apparatus as set forth in claim 122 wherein said input structure is operative for receiving an input signal related to physiological material including said flow channel and processing said signal using a mathematical structure for modeling said input signal as a signal portion of interest and an undesired signal portion so as to account for said undesired signal portion in obtaining said flow characteristic information.
- 130. An apparatus for use in noninvasively analyzing a blood flow channel of an organism, comprising:
a user interface system for receiving input commands and providing output information regarding said organism for use by a health care professional; a probe, operatively associated with said user interface system, including a sensor for receiving a signal from at least said blood flow channel and providing sensor information based on said received signal; a processing system for processing said sensor information to obtain first processed information regarding a qualitative flow parameter of said blood flow channel and second processed information related to a channel dimension of said channel; wherein said output information is based on at least one of said first information and said second information.
- 131. An apparatus as set forth in claim 130, wherein said processing system is operative for obtaining information, based on said sensor information, related to a velocity of a flow of said flow channel.
- 132. An apparatus as set forth in claim 130, wherein said processing system is operative for obtaining information, based on said sensor information, related to at least one velocity profile of said flow channel, where said velocity profile defines a spatial velocity distribution within said flow channel.
- 133. An apparatus as set forth in claim 130, wherein said processing system is operative for obtaining first flow characteristic information regarding a flow of said flow channel for a first time and second flow characteristic information regarding said flow for a second time different than said first time.
- 134. An apparatus as set forth in claim 130, wherein said processing system is operative for obtaining a value related to a temporal change in a velocity profile of said channel.
- 135. An apparatus as set forth in claim 130, wherein said probe is operative for performing a measurement using a sensor disposed external to said organism.
- 136. An apparatus as set forth in claim 130, wherein said probe is operative for transmitting a signal to said flow channel.
- 137. An apparatus as set forth in claim 130, wherein said processing system is operative for obtaining one of 1) dimensional information regarding said flow channel, 2) first dimension related information derived from dimensional information regarding said flow channel, and 3) second dimension related information dependent on dimension information regarding said flow channel.
- 138. An apparatus as set forth in claim 130, wherein said processing system is operative for processing an input based on said sensor information using a relationship that relates a first parameter associated with flow velocity, a second parameter associated with time and a third parameter associated with a channel dimension.
- 139. An apparatus as set forth in claim 130, wherein said processing system is operative for, after processing said sensor information, obtaining second sensor information from said probe and processing said first and second processed information and said second sensor information to determine third processed information related to said flow channel.
- 140. An apparatus as set forth in claim 130, wherein said processing system is operative for receiving an input signal based on said sensor information related to physiological material including said flow channel and processing said signal using a mathematical structure for modeling said input signal as a signal portion of interest and an undesired signal portion so as to account for said undesired signal portion.
- 141. An apparatus as set forth in claim 130, wherein said processing system is operative for using a timing signal from a machine.
- 142. An apparatus as set forth in claim 141, wherein said processing system uses said timing signal to control said probe based on said timing signal.
- 143. An apparatus as set forth in claim 141, wherein said processing system uses said timing signal to correlate one of said first and second processed information to a physiological process of said organism.
- 144. An apparatus as set forth in claim 130, wherein said output information comprises a display reflecting one or more values related to at least one of said first and second processed information.
- 145. A computer program device for enabling a computer to analyze physiological material within an organism, comprising:
logical instructions for enabling the computer to perform predetermined operations; and a computer readable medium bearing the logical instructions; said predetermined operations including:
obtaining flow characteristic information for a flow of a physiological fluid in a flow channel of said organism based on an analysis of said flow; and using said flow characteristic information to obtain processed information related to a dimension of said flow channel.
- 146. A device as set forth in claim 145, wherein said operation of obtaining flow characteristic information comprises obtaining information related to a velocity of said flow.
- 147. A device as set forth in claim 145, wherein said operation of obtaining flow characteristic information comprises obtaining information related to at least one velocity profile of said flow channel, where said velocity profile defines a spatial velocity distribution within said flow channel.
- 148. A device as set forth in claim 145, wherein said operation of obtaining flow characteristic information comprises receiving first flow characteristic information regarding said flow for a first time and second flow characteristic information regarding said flow for a second time different than said first time.
- 149. A device as set forth in claim 145, wherein said operation of obtaining flow characteristic information comprises obtaining a value related to a temporal change in a velocity profile of said channel.
- 150. A device as set forth in claim 145, wherein said operation of obtaining flow characteristic information comprises performing a measurement using a sensor disposed external to said organism.
- 151. A device as set forth in claim 145, wherein said operation of using said flow characteristic information comprises obtaining one of dimension information regarding said flow channel, first dimension related information derived from dimension information regarding said flow channel, and second dimension related information dependent on dimension information regarding said flow channel.
- 152. A device as set forth in claim 145, wherein said operation of using said flow characteristic information comprises processing said flow characteristic information using a relationship that relates a first parameter associated with flow velocity, a second parameter associated with time and a third parameter associated with a channel dimension.
- 153. A device as set forth in claim 145, wherein said predetermined operations further include, after said operation of obtaining processed information related to a dimension of said flow channel, second obtaining second flow characteristic information for said flow of said physiological fluid in said flow channel and second using said processed information and said second flow characteristic information to determine second processed information related to one of said flow and said flow channel.
- 154. A device as set forth in claim 145, wherein said operation of obtaining comprises receiving an input signal related to physiological material including said flow channel and processing said signal using a mathematical structure for modeling said input signal as a signal portion of interest and an undesired signal portion so as to account for said undesired signal portion in obtaining said flow characteristic information.
RELATED APPLICATION INFORMATION
[0001] This application claims priority from U.S. Provisional Patent Application Serial No. 60/345,700, filed Jan. 4, 2002, and U.S. Provisional Patent Application Serial No. 60/328,625, filed on Oct. 10, 2001 and which are incorporated herein by reference in their entireties.
Provisional Applications (2)
|
Number |
Date |
Country |
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60345700 |
Jan 2002 |
US |
|
60328625 |
Oct 2001 |
US |