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Application of architecture using AI in the training of a set of pixels of the image at aid decision-making diagnostic cancer

机译:在援助决策诊断癌症中使用AI在训练中使用AI在训练中的应用

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Medical Medicine specialists are using images more and more as support in decision making in the identification of pathologies with greater complexity and severity in the specific case. Predictive and diagnostic models in images with neoplasia (collagen V) associated with exposure to asbestos fibers were studied. In this article we intend to initially assess machine learning on the basis containing 100 images classified by specialists with characteristics of normality and abnormality to aid diagnosis. Therefore, the objective is to analyze and use the concepts of learning by the technique of artificial intelligence with neural networks that culminated in significant advances of 81% of correct answers in the image diagnostics and to propose the application of the Paraconsistent Standard Analyser Unit of Artificial Neural Networks in order to categorize the degree of abnormality (normal, almost normal, almost abnormal, abnormal) with the use of the extreme and non-extreme states of Paraconsistent Logic and thus support specialists in decision making in the diagnosis of cancer.
机译:医学医学专家越来越多地使用图像在确定具有更大复杂性和特定情况的严重程度的识别方面的决策。研究了与暴露于石棉纤维相关的肿瘤(胶原乙烷V)的图像中的预测和诊断模型。在本文中,我们打算最初评估机器学习,其中包含100张由专家分类的100张图像,具有正常性和异常的特征,以辅助诊断。因此,目的是通过人工智能技术分析和利用学习的概念,与神经网络中的神经网络中有效期为81%的图像诊断中的81%,并提出了人工的滞后标准分析仪单元的应用神经网络为了使用极端和非极端典型的极端和非极端状态的异常(正常,几乎正常,几乎异常,异常)的程度,因此支持在癌症诊断中的决策中支持专家。

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