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A Survey on Automated Detection of Breast Cancer based Histopathology Images

机译:基于组织病理学图像的乳腺癌自动检测研究

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The increasing mortality rate in the women population is mainly due to breast cancer. Diagnosing breast cancer in its early stages will always remain crucial. Hence identifying and treating the disease at the earliest will increase the possibilities of survival. Recently, by using ultrasound images a computer-aided diagnosis (CAD) system is being developed to help radiologists to attain higher accuracy for identification. Normally, a CAD system comprises of different phases such as pre-processing, segmentation for regions of interest, feature selection & extraction, and last phase is to do classification. This paper illustrates the various methods used to deploy an automated CAD system development for the early identification of cancer disease. In this paper, various approaches used are abridged and their pros and cons are compared. The performance evaluation of the CAD system is also depicted as well. The dataset of breast cancer histology images (BACH) is made available to participate in a grand challenge aimed at the classification of microscopy and whole slide images, whereas it is made publicly available for the challenge to promote further improvements for developing an intelligent classification system in digital pathology. According to the number of diagnostic classes and image types (Microscopy and whole slide images), an intelligent system is implemented for initial detection for deploying a proper treatment for breast cancer.
机译:妇女人口死亡率的上升主要归因于乳腺癌。早期诊断乳腺癌将始终至关重要。因此,尽早发现和治疗该疾病将增加生存的可能性。最近,通过使用超声图像,正在开发一种计算机辅助诊断(CAD)系统,以帮助放射科医生获得更高的识别准确率。通常,CAD系统包含不同的阶段,例如预处理,感兴趣区域的分割,特征选择和提取,最后一个阶段是进行分类。本文说明了用于部署自动CAD系统开发以早期识别癌症疾病的各种方法。在本文中,简要介绍了所使用的各种方法,并比较了它们的优缺点。还描述了CAD系统的性能评估。乳腺癌组织学图像(BACH)的数据集可用于参加针对显微镜和整个幻灯片图像分类的重大挑战,而它可公开获得该挑战,以促进进一步改进以开发智能分类系统。数字病理学。根据诊断类别和图像类型(显微镜和完整的幻灯片图像)的数量,实施了一种智能系统以进行初始检测,以部署对乳腺癌的适当治疗方法。

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