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Development of a fuzzy-driven system for ovarian tumor diagnosis

机译:模糊驱动卵巢肿瘤诊断系统的开发

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In this paper we present OvaExpert, an intelligent system for ovarian tumor diagnosis. We give an overview of its features and main design assumptions. As a theoretical framework the system uses fuzzy set theory and other soft computing techniques. This makes it possible to handle uncertainty and incompleteness of the data, which is a unique feature of the developed system. The main advantage of OvaExpert is its modular architecture which allows seamless extension of system capabilities. Three diagnostic modules are described, along with examples. The first module is based on aggregation of existing prognostic models for ovarian tumor. The second presents the novel concept of an Interval-Valued Fuzzy Classifier which is able to operate under data incompleteness and uncertainty. The third approach draws from cardinality theory of fuzzy sets and IVFSs and leads to a bipolar result that supports or rejects certain diagnoses. (C) 2016 Nalecz Institute of Biocybernetics and Biomedical Engineering of the Polish Academy of Sciences. Published by Elsevier Sp. z o.o. All rights reserved.
机译:在本文中,我们介绍了OvaExpert,这是一种用于卵巢肿瘤诊断的智能系统。我们对其功能和主要设计假设进行了概述。作为理论框架,系统使用模糊集理论和其他软计算技术。这样就可以处理数据的不确定性和不完整性,这是已开发系统的独特功能。 OvaExpert的主要优势在于其模块化架构,可以无缝扩展系统功能。描述了三个诊断模块以及示例。第一个模块基于现有的卵巢肿瘤预后模型的汇总。第二部分提出了区间值模糊分类器的新颖概念,该分类器能够在数据不完整和不确定的情况下运行。第三种方法来自模糊集和IVFS的基数理论,并得出支持或拒绝某些诊断的双极性结果。 (C)2016年波兰科学院纳勒奇生物cybernetics和生物医学工程研究所。由Elsevier Sp。发行。动物园。版权所有。

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