Claims
- 1. An optical analysis method of determining a physical quantity of a medium from an intensity of light transmitted through or reflected by the medium, the medium being an absorbent and scattering medium containing a plurality of parts having different optical characteristics, characterized by comprising:the first step of making light having a known intensity incident on the medium; the second step of measuring the intensity of the light that emerges from the medium; the third step of storing light intensity numerical values; the fourth step of deriving a coefficient necessary for arithmetic operation by erasing or avoiding influence of inhomogeneous light scattering by arithmetic operation for a combination of the numerical values; the fifth step of storing the obtained coefficient; and the sixth step of performing linear algebraic operation for optimization in a wavelength range using the light intensity measurement values at a plurality of wavelengths, wherein the function used for the arithmetic operation is defined as simultaneous differential equations that describe light amount re-distribution by light scattering between the parts, i.e., a basic system that expresses light re-distribution given by dx/dt=−ax+by dy/dt=cx−dy whereassuming that the medium contains two, first and second parts, x is a light intensity in the first part, y is a light intensity in the second part, a is a loss coefficient by absorption and scattering in the first part, b is a coefficient of a component of scattered light in the second part, which mixes into the first part, c is a coefficient of a component of scattered light in the first part, which mixes into the second part, d is a loss coefficient by absorption and scattering in the second part, and t is a penetration depth of the light into the inhomogeneous medium, and as a linear sum of exponential functions for t, which uses e as a base and is given by I=x+y=12(ⅇ-α t+ⅇ-β t)which represents a light intensity I standardized as a sum of general solutions x and y corresponding to the basic system, thereby derivatively calculating the physical quantity from the light amount measurement values on the basis of a relationship between the coefficients (a, b, c, d) and unknowns (α, β).
- 2. An optical analysis method for an inhomogeneous medium according to claim 1, characterized in that the emerging light is light reflected by the inhomogeneous medium, and the function related to a light amount of the reflected light is a linear sum of (α+β)/αβ and 1/(α+β).
- 3. An optical analysis method for an inhomogeneous medium according to claim 1, characterized in that the physical quantity is an absorption coefficient of the inhomogeneous medium, a scattering coefficient of the inhomogeneous medium, or a concentration of a predetermined component in the inhomogeneous medium.
- 4. An optical analysis method for an inhomogeneous medium according to claim 1, characterized by comprising using a method of facilitating arithmetic operation using a fact that interscattering coefficients that define the light amount re-distribution often equal.
Priority Claims (1)
Number |
Date |
Country |
Kind |
P1999-113708 |
Apr 1999 |
JP |
|
RELATED APPLICATION
This is a continuation-in-part application of application serial no. PCT/JP00/02638 filed on Apr. 21, 2000, now pending.
US Referenced Citations (2)
Number |
Name |
Date |
Kind |
5529065 |
Tsuchiya |
Jun 1996 |
A |
6335792 |
Tsuchiya |
Jan 2002 |
B1 |
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Country |
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DE |
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JP |
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JP |
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Non-Patent Literature Citations (1)
Entry |
Yukio Ueda et al., “Optical Imaging Reconstruction Using the Average Value as the Reference,” Progress in Biomedical Optics, The International Biomedical Optics Society, vol. 2979, 1997, pp. 795-806. |
Continuation in Parts (1)
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Number |
Date |
Country |
Parent |
PCT/JP00/02638 |
Apr 2000 |
US |
Child |
09/982022 |
|
US |