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Computer-Aided Prostate Cancer Diagnosis From Digitized Histopathology: A Review on Texture-Based Systems

机译:基于数字化组织病理学的计算机辅助前列腺癌诊断:基于纹理的系统的综述

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摘要

Prostate cancer (PCa) is currently diagnosed by microscopic evaluation of biopsy samples. Since tissue assessment heavily relies on the pathologists level of expertise and interpretation criteria, it is still a subjective process with high intra- and interobserver variabilities. Computer-aided diagnosis (CAD) may have a major impact on detection and grading of PCa by reducing the pathologists reading time, and increasing the accuracy and reproducibility of diagnosis outcomes. However, the complexity of the prostatic tissue and the large volumes of data generated by biopsy procedures make the development of CAD systems for PCa a challenging task. The problem of automated diagnosis of prostatic carcinoma from histopathology has received a lot of attention. As a result, a number of CAD systems, have been proposed for quantitative image analysis and classification. This review aims at providing a detailed description of selected literature in the field of CAD of PCa, emphasizing the role of texture analysis methods in tissue description. It includes a review of image analysis tools for image preprocessing, feature extraction, classification, and validation techniques used in PCa detection and grading, as well as future directions in pursuit of better texture-based CAD systems.
机译:前列腺癌(PCa)目前是通过对活检样本进行显微镜评估来诊断的。由于组织评估在很大程度上取决于病理学家的专业水平和解释标准,因此它仍然是一个主观过程,观察者之间和观察者之间的差异很大。计算机辅助诊断(CAD)可能会减少病理学家的阅读时间,并增加诊断结果的准确性和可重复性,从而对PCa的检测和分级产生重大影响。但是,前列腺组织的复杂性和活检过程产生的大量数据使PCa CAD系统的开发成为一项艰巨的任务。从组织病理学自动诊断前列腺癌的问题已引起广泛关注。结果,已经提出了许多用于定量图像分析和分类的CAD系统。这篇综述旨在提供对PCa CAD领域中所选文献的详细描述,强调纹理分析方法在组织描述中的作用。它包括对用于PCa检测和分级的图像预处理,特征提取,分类和验证技术的图像分析工具的回顾,以及为追求更好的基于纹理的CAD系统的未来方向。

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