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Published on: November 19, 2020
Illumination-invariant change detection model for patient monitoring video
Qiang Liu1, Mingui Sun, Robert Sclabassi
1Department of Electrical Engineering, University of Pittsburgh, PA 15261, USA.
Abstract:
Video recording is often conducted in the medical environment. Change detection provides a powerful tool to detect dynamic changes in the video to aid in monitoring and diagnosis. Illumination variation presents a typical problem for a change detection method to gain robustness. In this work, we describe a new method based on an illumination model and test statistics to reduce the sensitivity of detection to illumination changes. The effectiveness of this method is demonstrated by our experimental results.