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Application of Rough Sets in diagnosis of the depressive state of mind

机译:粗糙集在抑郁心态诊断中的应用

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Rough Set Theory is an emerging rule based soft computing methodology that employs approximations of crisp concepts. It has been used widely for knowledge discovery in real life data-centric applications that typically include uncertain or incomplete data. This paper describes an application of rough sets in identifying depressive episodes in the field of psychiatry. The core concepts of rough sets such as Reduct and Core are used to reduce the number of descriptive attributes based on their relative significance. The reduced information system yields a compact set of high-strength rules that identify the state of mind of a person to categorize new patients with high accuracy. We illustrate how Rough Sets can find symbolic and easily readable rules that could be used fruitfully by psychiatrists for clinical diagnosis.
机译:粗糙集理论是基于新的基于规则的软计算方法,采用了近似清晰的概念。它已广泛用于实际数据以数据为中心的应用程序,该应用程序通常包括不确定或不完整的数据。本文介绍了粗糙集中在精神病学领域的抑郁发作中的应用。粗糙集的核心概念,例如还原和核心的概念用于基于其相对意义来减少描述性属性的数量。减少的信息系统产生了一套紧凑的高强度规则,识别人们的心态,以对高精度分类新患者。我们说明了粗糙的集合如何找到符号和容易可读的规则,精神科医师可以果断地用于临床诊断。

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