Claims
- 1. A probe comprising:a light irradiating device for irradiating living tissue with light, said light irradiating device including a light source for emitting a plurality of lights of different wavelengths; a first light scattering plate located in front of said light source; and a light receiving device for receiving light from said living tissue , said light receiving device including a photo-electric transducing portion for producing a signal based on an intensity of light received on a light sensitive surface, and a second light scattering plate located in front of said photo-electric transducing portion; wherein said light receiving device includes a light mixing portion provided between said second light scattering plate and said light sensitive surface.
- 2. A probe according to claim 1, wherein said light mixing portion includes a closed space defined by an inner light reflective wall of a housing, said second light scattering plate and the light sensitive surface.
- 3. A probe according to claim 1, wherein said light mixing portion is positioned between said photo-electric transducing portion and said second light scattering portion.
- 4. A probe according to claim 1, wherein said photo-electric transducing portion and said second light scattering portion are disposed opposite each other.
- 5. A probe according to claim 1, wherein said light receiving device includes a housing for accommodating said photo-electric transducing portion, and a surface of said housing contacting said second scattering plate is light reflective.
- 6. A probe according to claim 1, wherein said first light scattering plate and said second light scattering plate transmit light diffusively.
- 7. An apparatus for determining concentration of light-absorbing materials in living tissue, comprising:a probe comprising: a light irradiating device for irradiating living tissue with light, said light irradiating device including a light source for emitting a plurality of lights of different wavelengths; a first light scattering portion located in front of said light source; and a light receiving device for receiving light from said living tissue, said light receiving device including a photo-electric transducing portion for producing a signal based on an intensity of light received on a light sensitive surface, and a second light scattering portion, said light receiving device further including a light mixing portion provided between said second light scattering portion and said light sensitive surface, and concentration-ratio processing means for computing at least one ratio of concentrations of a plurality of light-absorbing materials in said living tissue based on an output signal of said photo-electric transducing portion of said probe.
- 8. An apparatus for determining concentration of light-absorbing materials in living tissue according to claim 7, wherein said concentration-ratio processing means obtains a variation of an optical attenuation of said living tissue based on a pulsating component of an output signal of said photo-electric transducing portion, and computes a ratio of concentrations of a plurality of light-absorbing materials based on the obtained attenuation variation.
- 9. An apparatus for determining concentration of light-absorbing materials in living tissue according to claim 8, wherein said concentration-ratio processing means includes:attenuation variation component detecting means for obtaining attenuation variation components ΔA1, ΔA2, . . . , ΔAn of the respective wavelengths from variations of lights transmitted through or reflected by said living tissue when said living tissue is irradiated by said light irradiating device; variation component ratio detecting means for obtaining a ratio φij of each of an “m” number of combinations of two attenuation variation components (ΔAi, ΔAj) selected from an “n” number of attenuation variation components ΔA1, ΔA2, . . . , ΔAn obtained by said attenuation variation component detecting means, and computing means for computing at least one of an oxygen saturation and a ratio of concentrations of light-absorbing materials in blood based upon an “m” number of simultaneous equations about said respective wavelengths and an “m” number of ratios φij obtained by said variation component ratio detecting means, on the assumption that said attenuation variation component is the sum of the attenuation variation components of absorbing attenuation and non-absorbing attenuation.
- 10. An apparatus for determining concentration of light-absorbing materials in living tissue according to claims 7, wherein said first light scattering portion includes a first light scattering plate, and second light scattering portion includes a second light scattering plate.
- 11. An apparatus for determining concentration of light-absorbing materials in living tissue according to claim 7, wherein said light mixing portion includes a closed space defined by an inner light reflective wall of a housing, said second light scattering portion and the light sensitive surface.
- 12. An apparatus for determining concentration of light-absorbing materials in living tissue according to claim 7, wherein said light receiving device includes a housing for accommodating said photo-electric transducing portion, and a surface of said housing contacting said second scattering portion is light reflective.
Priority Claims (4)
Number |
Date |
Country |
Kind |
10-203388 |
Jul 1998 |
JP |
|
11-65489 |
Mar 1999 |
JP |
|
11-320912 |
Nov 1999 |
JP |
|
2000-293951 |
Sep 2000 |
JP |
|
Parent Case Info
This is a Continuation-In-Part Application of Ser. No. 09/356,521 filed on Jul. 19, 1999, now U.S. Pat. No. 6,230,035.
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Foreign Referenced Citations (1)
Number |
Date |
Country |
53-26437 |
Aug 1978 |
JP |
Non-Patent Literature Citations (2)
Entry |
Bio Medical Engineering (Oct. 1999) Medical Electronics and Biological engineering. |
Shibata, Kazuo, Spectrophotometry of Translucent Biological Materials—Opal Glass Transmission Method, Methods of Biochemical Analysis, vol. VII, Intersc. New York, 1959. |
Continuation in Parts (1)
|
Number |
Date |
Country |
Parent |
09/356521 |
Jul 1999 |
US |
Child |
09/692044 |
|
US |