Claims
- 1. A system for determining concentrations of chromophores in a physiological medium, comprising:
a source module to irradiate into said medium at least two sets of electromagnetic radiation having different wave characteristics; a detector module to detect electromagnetic radiation transmitted through said medium; and a processing module operatively coupled with said detector module to determine an absolute value of at least one of said concentrations from electromagnetic radiation irradiated from and detected by said source and detector modules, wherein said determination is based only on intensity measurements of continuous wave electromagnetic radiation from the source module.
- 2. A system according to claim 1, wherein said chromophores are hemoglobins including oxygenated hemoglobin and deoxygenated hemoglobin.
- 3. A system according to claim 1, wherein said physiological medium includes cells of at least one of organs, tissues, and body fluids.
- 4. A system according to claim 3, wherein at least some cells are abnormal.
- 5. A system according to claim 4, wherein said abnormal cells are tumor cells.
- 6. A system according to claim 4, wherein said cells are disposed in at least one of epidermis, and corium of an internal organ including at least one of a brain, heart, lung, liver, and kidney.
- 7. A system according to claim 4, wherein said cells are those of a transplanted organ.
- 8. A system according to claim 7, wherein said transplanted organ includes at least one of a brain, heart, lung, liver, and kidney.
- 9. A system according to claim 1, wherein said wave characteristics include at least one of wavelengths, phase angles, amplitudes and harmonics.
- 10. A system according to claim 9, wherein a first set of said electromagnetic waves has a first wavelength and a second set of said electromagnetic waves has a second wavelength, which is different from said first wavelength.
- 11. A system according to claim 9, wherein a first set of said electromagnetic waves includes a first carrier wave and a second set of said electromagnetic waves includes a second carrier wave which has wave characteristics different from those of said first carrier wave.
- 12. A system according to claim 11, wherein said wave characteristics include at least one of wavelengths, phase angles, amplitudes, harmonics, and a combination thereof.
- 13. A system according to claim 1, wherein said processing module determines said absolute value a parameter accounting for optical interaction properties of electromagnetic waves with said medium.
- 14. A system according to claim 13, wherein said processing module uses a mathematical expression including at least one parameter dependent on one of: optical properties of said medium and configuration of said source module and detector module.
- 15. A system according to claim 14, wherein said mathematical expression comprises a polynomial of at least one of said concentrations and said ratios thereof.
- 16. A system according to claim 13, wherein said mathematical expression includes a term substantially dependent on one or more of: optical properties of said medium and configuration of said source module and detector module, which term is approximated as a constant.
- 17. A system according to claim 1, wherein said processing module uses the mathematical expression:
- 18. A system according to claim 17, wherein said parameter B is a path length factor.
- 19. A system according to claim 17, wherein said parameter ε1 is at least one of a medium extinction coefficient, medium absorption coefficient, and medium scattering coefficient.
- 20. A system according to claim 1, wherein said source module includes at least one wave source and said detector module includes at least two wave detectors.
- 21. A system according to claim 1, wherein said source module includes at least two wave sources and said detector module includes at least one wave detector.
- 22. A system according to claim 1, wherein said source module and said detector module include, respectively, at least two wave sources and at least two wave detectors.
- 23. A system according to claim 22, wherein said processing module uses the mathematical expression:
- 24. A system according to claim 23, wherein said parameter Bmn is a path length factor associated with at least one of said m-th wave source, n-th wave detector, and medium.
- 25. A system according to claim 23, wherein said parameters γ and δ are configured to be substantially close to a unity so that said expression is simplified to
- 26. A system according to claim 22, wherein said source module includes a first wave source and a second wave source and wherein said detector module includes a first wave detector and a second wave detector,
said wave sources and wave detectors configured so that a distance between said first wave source and said first wave detector is substantially similar to that between said second wave source and said second wave detector, and that a distance between said first wave source and said second wave detector is substantially similar to that between said second wave source and said first wave detector.
- 27. A system according to claim 22, wherein said source module has at least M wave sources and said detector module has at least N wave detectors, and M and N are integers greater than 1,
said wave sources and wave detectors configured so that a distance between an M1-th wave source and an N1-th detector is substantially similar to that between an M2-th wave source and an N2-th wave detector, and that a distance between said M1-th wave source and said N2-th wave detector is substantially similar to that between said M2-th wave source and said N1-th wave detector, wherein said M1 and M2 are both integers between 1 and M, and wherein said N1 and N2 are both integers between 1 and N.
- 28. A system according to claim 22, wherein two or more wave detectors are disposed substantially along a straight line, and two wave sources are disposed on opposite sides of the straight line.
- 29. A system according to claim 28, wherein all wave detectors are disposed substantially along said straight line.
- 30. A system according to claim 22, wherein said detector module includes at least three wave detectors disposed substantially along a straight line.
- 31. A system for determining concentrations of chromophores in a physiological medium, comprising:
one or more sources irradiating into said medium at least two sets of near-infrared electromagnetic waves having different wave characteristics; one or more detectors detecting electromagnetic waves transmitted through said medium; input means for entering input parameter data; and a processing module determining absolute values of at least one of said concentrations, wherein said determination is not based on measuring phase characteristics of the electromagnetic radiation received from said one or more detectors, or the response of the medium to an electromagnetic impulse from said one or more sources.
- 32. A system for determining concentrations of chromophores in a physiological medium, comprising:
at least one source for irradiating into said medium at least two sets of electromagnetic waves having different wave characteristics; at least one detector for detecting electromagnetic waves transmitted through said medium; a processor coupled to the at least one detector computing one of: absolute values of said concentrations and ratios of said concentrations, wherein said computation is based only on intensity measurements of continuous wave electromagnetic radiation from the source module
- 33. A method for determining concentrations of chromophores in a physiological medium using a system having at least one wave source and at least one wave detector, wherein electromagnetic waves are irradiated by said wave source, transmitted through the physiological medium, and detected by said wave detector, the method comprising the steps of:
irradiating at least two sets of electromagnetic waves having different wave characteristics to obtain a plurality of measurements; providing a mathematical expression relating said plurality of measurements to parameters of the system, and parameters associated with said medium; eliminating source-dependent and detector-dependent parameters from the provided mathematical expression; and determining an absolute value of at least one of said concentrations, wherein said determination is based only on intensity measurements of continuous wave electromagnetic radiation and pre-determined chromophore-dependent parameters.
- 34. The method of claim 33, wherein the mathematical expression includes a wave equation is expressed as:
- 35. A method for determining concentrations of chromophores in a physiological medium using a system having at least one wave source and at least one wave detector by application of a wave equation having a form:
- 36. The method of claim 35 further comprising the steps of:
applying said system to said physiological medium including cells of at least one of organs, tissues, and body fluids; and measuring said absolute value of at least one of said concentrations based on said values of Imn, Io,m, and ε1.
- 37. The method of claim 36, wherein said measuring step comprises the step of:
monitoring at least one of oxygenated hemoglobin concentration, deoxygenated hemoglobin concentration, and a ratio thereof.
- 38. The method of claim 37 further comprising the step of determining a presence of tumor cells over a finite area of said medium.
- 39. The method of claim 37 further comprising the step of determining a presence of an ischemic condition over a finite area of said medium.
- 40. The method of claim 35 further comprising the steps of applying said system to said physiological medium including transplanted cells of at least one of organs and tissues; and
measuring said absolute value of at least one of said concentrations and said ratios thereof based on said Imn, Io,m, and εi.
- 41. The method of claim 40 further comprising the step of determining a presence of an ischemic condition over a finite area of said medium.
- 42. The method of claim 35, wherein said eliminating step comprises the step of: approximating unknown equation parameters as constants.
- 43. The method of claim 35, wherein said obtaining step comprises the step of irradiating said first and second set of electromagnetic waves having at least one of different wavelengths, phase angles, amplitudes and harmonics.
- 44. The method according to claim 43, wherein said irradiating step comprises the steps of:
providing said first set of electromagnetic waves with a first wavelength; and providing said second set of electromagnetic waves with a second wavelength which is different from said first wavelength.
- 45. The method of claim 35, wherein said eliminating step comprises the step of:
taking at least one first ratio of two wave equations both selected from one of said first and second sets of wave equations.
- 46. The method of claim 45, wherein said eliminating step comprises the step of:
solving said wave equations for the same wave source with different wave detectors, thereby eliminating αn, γ, and σ from said first ratio.
- 47. The method of claim 45, wherein said eliminating step comprises the step of:
solving said wave equations for at least two different wave sources and one wave detector, thereby eliminating βn, γ, and a from said first ratio.
- 48. The method of claim 45, wherein said eliminating step comprises the step of:
taking at least one second ratio of two wave equations both selected from the other of said first and second sets of wave equations.
- 49. The method of claim 48, wherein said eliminating step comprises the step of:
obtaining at least one of a sum of and a difference between said first and second ratios so as to eliminate at least one of αm and βn therefrom.
- 50. The method of claim 35, wherein said providing step comprises the step of:
expressing a formula of said medium-dependent and said geometry-dependent parameters as a polynomial of at least one of said concentrations.
- 51. The method of claim 50, wherein said polynomial includes a zero-th order term.
- 52. The method of claim 35, wherein said providing step comprises the step of approximating at least one medium-dependent or geometry-dependent parameter as a constant.
- 53. A method for determining concentrations of chromophores in a physiological medium using a system having at least one wave source and at least one wave detector using a mathematical expression having the form:
- 54. The method of claim 53 further comprising the step of obtaining values of said intensities of electromagnetic waves and said extinction coefficients of said chromophores.
- 55. The method of claim 54 further comprising the step of obtaining the absolute value of at least one of said concentrations and said ratios thereof.
CROSS-REFERENCE TO RELATED APPLICATIONS
[0001] The present application is a continuation-in-part application of U.S. non-provisional patent application entitled “A System and Method for Absolute Oxygen Saturation,” Ser. No. 09/664,972, filed on Sep. 18, 2000.
Continuation in Parts (1)
|
Number |
Date |
Country |
Parent |
09664972 |
Sep 2000 |
US |
Child |
09877515 |
Jun 2001 |
US |