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Rough-Sets-Based Reduction for Analog Systems Diagnostics

机译:用于模拟系统诊断的基于粗糙集的约简

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摘要

This paper presents an application of the rough sets algorithms to the analog systems diagnostics. Multiple methods of discretization and reduction of the data sets obtained from measurements are tested to find effective combinations for diagnostic purposes. Useful features of rough sets are identified. Versatility and scalability of the proposed method are verified, by application to multiple analog systems belonging to various technical domains with different complexities. Practical remarks about fault detection and location in the presented systems are included. This paper is supplemented by conclusions about the effectiveness of the method and its future prospects.
机译:本文介绍了粗糙集算法在模拟系统诊断中的应用。测试了多种离散化和减少从测量获得的数据集的方法,以找到有效的组合以进行诊断。确定了粗糙集的有用特征。通过应用于具有不同复杂度的各个技术领域的多个模拟系统,验证了所提出方法的通用性和可扩展性。包括有关所提出的系统中的故障检测和定位的实用说明。本文补充了有关该方法的有效性及其未来前景的结论。

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