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Attribute selection methods comparison for classification of diffuse large B-cell lymphoma

机译:弥漫性大B细胞淋巴瘤分类的属性选择方法比较

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The use of data mining techniques has helped to solve many problems in the rapidly growing field of bioinformatics. Despite that, the presence of thousands of attributes makes the results unclear and also contributes to the decrease of the accuracy of the classifier used. This paper presents a comparison of the use of various attribute selection methods aiming to reduce the number of genes to be searched. The results show that most of the combinations from search algorithms and evaluation algorithms within the attribute selection algorithm work well, reducing the number of attributes and leading to improved classification rates.
机译:数据挖掘技术的使用已帮助解决了快速发展的生物信息学领域中的许多问题。尽管如此,成千上万个属性的存在仍使结果不清楚,并且也导致所用分类器的准确性下降。本文对旨在减少要搜索的基因数量的各种属性选择方法的使用进行了比较。结果表明,属性选择算法中搜索算法和评估算法的大多数组合都可以很好地工作,从而减少了属性数量并提高了分类率。

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