Video segmentation using statistical pixel modeling
First Claim
Patent Images
1. A method of implementing an intelligent video surveillance system, comprising:
- obtaining a frame sequence from an input video stream;
executing a first-pass method for each frame of the frame sequence, the first-pass method comprising the steps of;
aligning the frame with a scene model; and
updating a background statistical model;
finalizing the background statistical model;
executing a second-pass method for each frame of the frame sequence, the second-pass method comprising the steps of;
labeling each region of the frame; and
performing spatial/temporal filtering of the regions of the frame;
identifying and classifying objects using the labeled and filtered regions; and
analyzing behaviors of at least one of the objects.
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Abstract
A method for segmenting video data into foreground and background portions utilizes statistical modeling of the pixels. A statistical model of the background is built for each pixel, and each pixel in an incoming video frame is compared with the background statistical model for that pixel. Pixels are determined to be foreground or background based on the comparisons. The method for segmenting video data may be further incorporated into a method for implementing an intelligent video surveillance system.
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Citations
5 Claims
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1. A method of implementing an intelligent video surveillance system, comprising:
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obtaining a frame sequence from an input video stream; executing a first-pass method for each frame of the frame sequence, the first-pass method comprising the steps of; aligning the frame with a scene model; and updating a background statistical model; finalizing the background statistical model; executing a second-pass method for each frame of the frame sequence, the second-pass method comprising the steps of; labeling each region of the frame; and performing spatial/temporal filtering of the regions of the frame; identifying and classifying objects using the labeled and filtered regions; and analyzing behaviors of at least one of the objects. - View Dependent Claims (2, 3)
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4. A method of implementing an intelligent video surveillance system, comprising:
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obtaining a frame sequence from a video stream; for each frame in the frame sequence, performing the following steps; aligning the frame with a scene model; building a background statistical model; labeling the regions of the frame; and performing spatial/temporal filtering; identifying and classifying objects based on the results of the labeling and filtering; and analyzing behaviors of at least one object. - View Dependent Claims (5)
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Specification