用于智能数据分析的软计算

Xiaohui Liu, Roger G. Johnson, G. Cheng, S. Swift, A. Tucker
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引用次数: 7

摘要

智能数据分析(IDA)是一门涉及数据有效分析的跨学科研究。本文简要介绍了智能数据分析中的一些关键问题,讨论了在这种情况下软计算的机会,并介绍了几个软计算发挥关键作用的IDA案例研究。这些研究都涉及复杂的现实世界问题的解决,包括质谱数据与所提出的化学结构之间的一致性检查,青光眼和其他眼病的筛查,视野恶化的预测,以及涉及多变量时间序列的炼油厂诊断。一般来说,贝叶斯网络、进化计算、神经网络和机器学习是这些研究中有效使用的一些软计算技术。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Soft computing for intelligent data analysis
Intelligent data analysis (IDA) is an interdisciplinary study concerned with the effective analysis of data. The paper briefly looks at some of the key issues in intelligent data analysis, discusses the opportunities for soft computing in this context, and presents several IDA case studies in which soft computing has played key roles. These studies are all concerned with complex real-world problem solving, including consistency checking between mass spectral data with proposed chemical structures, screening for glaucoma and other eye diseases, forecasting of visual field deterioration, and diagnosis in an oil refinery involving multivariate time series. Bayesian networks, evolutionary computation, neural networks, and machine learning in general are some of those soft computing techniques effectively used in these studies.
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