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Boundary delineation in transrectal ultrasound image for prostate cancer
Authors:Zhang Ying  Sankar Ravi  Qian Wei
Affiliation:Department of Electrical Engineering, University of South Florida, Tampa, FL 33620, USA.
Abstract:This paper presents a new advanced automatic edge delineation model for the detection and diagnosis of prostate cancer on transrectal ultrasound (TRUS) images. The proposed model is to improve prostate boundary detection system by modifying a set of preprocessing algorithms including tree-structured nonlinear filter (TSF), directional wavelet transforms (DWT) and tree-structured wavelet transform (TSWT). The model consists of a preprocessing module and a segmentation module. The preprocessing module is implemented for noise suppression, image smoothing and boundary enhancement. The active contours model is used in the segmentation module for prostate boundary detection in two-dimensional (2D) TRUS images. Experimental results show that the addition of the preprocessing module improves the accuracy and sensitivity of the segmentation module, compared to the implementation of the segmentation module alone. It is believed that the proposed automatic boundary detection module for the TRUS images is a promising approach, which provides an efficient and robust detection and diagnosis strategy and acts as "second opinion" for the physician's interpretation of prostate cancer.
Keywords:Transrectal ultrasound   Tree-structured nonlinear filter   Directional wavelet transforms   Tree-structured wavelet transform   Active contour model
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