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From pattern to causality: using linear discriminant analysis and Bayesian network on microarray data of breast cancers

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DataCite Commons2026-02-12 更新2026-05-04 收录
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https://bridges.monash.edu/articles/dataset/From_pattern_to_causality_using_linear_discriminant_analysis_and_Bayesian_network_on_microarray_data_of_breast_cancers/5619514
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资源简介:
In this paper, we aim at using genetic algorithms for gene selection and propose silhouette statistics as a discriminant function to classify breast cancers on microarray data for pattern discovery. In order to see the causality among these genes, we use the Bayesian method to construct a probability network for the pattern discovered. Consequently, we found a set of genes that is effective to discriminate breast cancer subtypes and present their probability dependencies to construct a diagnostic system. PRIB 2008 proceedings found at: http://dx.doi.org/10.1007/978-3-540-88436-1 Contributors: Monash University. Faculty of Information Technology. Gippsland School of Information Technology ; Chetty, Madhu ; Ahmad, Shandar ; Ngom, Alioune ; Teng, Shyh Wei ; Third IAPR International Conference on Pattern Recognition in Bioinformatics (PRIB) (3rd : 2008 : Melbourne, Australia) ; Coverage: Rights: Copyright by Third IAPR International Conference on Pattern Recognition in Bioinformatics. All rights reserved.
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Monash University
创建时间:
2026-02-11
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