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A novel cognitive interpretation of breast cancer thermography with complementary learning fuzzy neural memory structure

机译:具有互补学习模糊神经记忆结构的乳腺癌热成像的新型认知解释

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摘要

Early detection of breast cancer is the key to improve survival rate. Thermogram is a promising front-line screening tool as it is able to warn women of breast cancer up to 10 years in advance. However, analysis and interpretation of thermogram are heavily dependent on the analysts, which may be inconsistent and error-prone. In order to boost the accuracy of preliminary screening using thermogram without incurring additional financial burden, Complementary Learning Fuzzy Neural Network (CLFNN), FALCON-AART is proposed as the Computer-Assisted Intervention (CAI) tool for thermogram analysis. CLFNN is a neuroscience-inspired technique that provides intuitive fuzzy rules, human-like reasoning, and good classification performance. Confluence of thermogram and CLFNN offers a promising tool for fighting breast cancer.
机译:早期发现乳腺癌是提高生存率的关键。 Thermogram是一种很有前途的一线筛查工具,因为它可以提前10年警告女性乳腺癌。但是,热分析图的分析和解释在很大程度上取决于分析人员,这可能前后不一致且容易出错。为了提高使用热谱图进行初步筛查的准确性而又不产生额外的财务负担,提出了互补学习模糊神经网络(CLFNN),FALCON-AART作为用于热谱图分析的计算机辅助干预(CAI)工具。 CLFNN是受神经科学启发的技术,可提供直观的模糊规则,类人推理和良好的分类性能。热量图和CLFNN的融合为抗击乳腺癌提供了有希望的工具。

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