Claims
- 1. An apparatus for the endoscopic measurement of motion within an enclosed cavity, comprising:
an electromagnetic radiation source; a guide for guiding electromagnetic radiation from the electromagnetic radiation source down an endoscopic device to illuminate a target containing motion within an enclosed cavity; an electromagnetic radiation receiving system containing an optical arrangement for endoscopically relaying an image of the target onto an electromagnetic radiation receiving element; a capture device for capturing the image of the target from the electromagnetic radiation receiving element; and a processing device connected to the capture device for calculating motion information from the captured image.
- 2. The apparatus of claim 1, wherein the image of the target contains speckle structure information.
- 3. The apparatus of claim 1, wherein said processing device operates on the speckle structure information to generate images of motion.
- 4. The apparatus of claim 1, further comprising a display connected to one of the electro-magnetic radiation receiving system, the capture device and the processing device for the immediate visual display of two-dimensional color-coded images representing various regions containing different levels of motion.
- 5. The apparatus of claim 1, wherein said processing device uses a speckle reduction and comparison method for generating images containing blood flow information, where such method comprises the steps of:
capturing a sequence of speckle images of laser illuminated tissue; comparing these speckle images to a reference image that is an image of the illuminated tissue where speckle has been reduced; and representing information obtained from this comparison in image format such that images are generated with a relation to blood flow.
- 6. The apparatus of claim 5, in which the method for generating images containing blood flow information further comprises a method for capturing a reference image that is similar to the speckle images of laser illuminated tissue but with reduced speckle structure by illuminating the tissue with a light source of reduced coherence.
- 7. The apparatus of claim 5, in which the method for generating images containing blood flow information further comprises a software method for reducing speckle within the captured speckle images of laser illuminated tissue, ISP,N, to generate a reference image, IREF, where
- 8. The apparatus of claim 5, in which the method for generating images containing blood flow information further comprises a software method for comparing the speckle images with the reference image, where such method consists of:
determining the sum of difference between the pixels in the speckle images and the reference image using the calculation; 10ISD(x,y)=∑N=1NMAX[∑x-ix+i(∑y-jy+j&LeftBracketingBar;ISP,N(x,y)-IREF(x,y)&RightBracketingBar;)], where IREF (x,y), ISP,N (x,y) and ISD (x,y) represent the intensity of the (x,y) pixel in the reference image, the Nth speckle image and the generated sum of difference image, respectively. i and j represent the boundaries for a chosen region of pixels surrounding the (x,y) pixel; and generating a blood flow image from the reference and sum of difference images using the following calculation; 11IBF(x,y)=∑C=0CMAXAC(IREF(x,y)ISD(x,y))C where IBF (x,y) represents the intensity of the (x,y) pixel in the blood flow image, C represents the order of terms in the power series of highest order CMAX of the independent variable that is the ratio of IREF (x,y), and ISD (x,y), and AC is the coefficient for each term.
- 9. A method of detecting motion comprising the steps of:
capturing a sequence of speckle images of a laser illuminated target; comparing the speckle images to a reference image that is an image of the illuminated target where speckle has been reduced; and representing information obtained from this comparison in image format such that images are generated with a relation to motion.
- 10. The method of claim 9 further comprising capturing a reference image that is similar to the speckle images of the laser illuminated target but with reduced speckle structure by illuminating the target with a light source of reduced coherence.
- 11. The method of claim 9 further comprising a software method for reducing speckle within the captured speckle images of a laser illuminated target, ISP,N, to generate a reference image, IREF, where
- 12. The method of claim 9, in which the method for generating images containing motion information further comprises a software method for comparing the speckle images with the reference image, where such method consists of:
determining the sum of difference between the pixels in the speckle images and the reference image using the calculation; 13ISD(x,y)=∑N=1NMAX[∑x-ix+i(∑y-jy+j&LeftBracketingBar;ISP,N(x,y)-IREF(x,y)&RightBracketingBar;)], where IREF (x,y), ISP,N (x,y) and ISD (x,y) represent the intensity of the (x,y) pixel in the reference image, the Nth speckle image and the generated sum of difference image, respectively. i and j represent the boundaries for a chosen region of pixels surrounding the (x,y) pixel; and generating a motion image from the reference and sum of difference images using the following calculation; 14IMotion(x,y)=∑C=0CMAXAC(IREF(x,y)ISD(x,y))C where IMotion (x,y) represents the intensity of the (x,y) pixel in the motion image, C represents the order of terms in the power series of highest order CMAX of the independent variable that is the ratio of IREF (x,y), and ISD (x,y), and AC is the coefficient for each term.
- 13. The apparatus of claim 5 in which the processing device is configured for eliminating motion artifact in the blood flow images by evaluating the speckle structure of laser light reflected from a stationary target located within the field of view of a captured speckle image.
- 14. The apparatus of claim 5 in which the processing device is configured for eliminating motion artifact in blood flow images by: 1) using a stationary target containing a well-contrasted speckle pattern within the illuminated region, 2) capturing a speckle image containing the tissue of interest and the stationary target, 3) defining a region of pixels within the image containing the stationary target, 4) determining the average pixel intensity, IAVG, for all pixels contained within the defined region
- 15. The method of claim 9 further comprising eliminating motion artifact in the motion images by evaluating the speckle structure of laser light reflected from a stationary target located within the field of view of a captured speckle image.
- 16. The method of claim 9 further comprising eliminating motion artifact in motion images by: 1) using a stationary target containing a well-contrasted speckle pattern within the illuminated region, 2) capturing a speckle image containing the target of interest and the stationary target, 3) defining a region of pixels within the image containing the stationary target, 4) determining the average pixel intensity, IAVG, for all pixels contained within the defined region
- 17. The apparatus of claim 1, further comprising a display connected to one of the electro-magnetic radiation receiving system, the capture device and the processing device for the immediate visual display of captured two-dimensional images of the illuminated target.
- 18. The apparatus in claim 1, used for the detection of motion, where the motion comprises the flow of blood within an illuminated tissue enclosed within a body cavity.
- 19. The method of claim 9, where the motion comprises the flow of blood within an illuminated tissue forming the laser illuminated target.
CROSS REFERENCE TO RELATED APPLICATIONS
[0001] This application claims the benefit of priority under 35 USC 119(e)(1) of provisional patent application No. 60/342,116 filed Dec. 26, 2001, the content of which is hereby incorporated by reference.
Provisional Applications (1)
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Number |
Date |
Country |
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60342116 |
Dec 2001 |
US |