An efficient top-down search algorithm for learning Boolean networks of gene expression

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dc.contributor.authorDougu Nam-
dc.contributor.authorS Seo-
dc.contributor.authorS Kim-
dc.date.accessioned2017-04-19T09:05:18Z-
dc.date.available2017-04-19T09:05:18Z-
dc.date.issued2006-
dc.identifier.issn0885-6125-
dc.identifier.uri10.1007/s10994-006-9014-zko
dc.identifier.urihttps://oak.kribb.re.kr/handle/201005/7591-
dc.description.abstractBoolean networks provide a simple and intuitive model for gene regulatory networks, but a critical defect is the time required to learn the networks. In recent years, efficient network search algorithms have been developed for a noise-free case and for a limited function class. In general, the conventional algorithm has the high time complexity of O(22kmn k+1) where m is the number of measurements, n is the number of nodes (genes), and k is the number of input parents. Here, we suggest a simple and new approach to Boolean networks, and provide a randomized network search algorithm with average time complexity O (mn k+1/ (log m)(k-1)). We show the efficiency of our algorithm via computational experiments, and present optimal parameters. Additionally, we provide tests for yeast expression data.-
dc.publisherSpringer-
dc.titleAn efficient top-down search algorithm for learning Boolean networks of gene expression-
dc.title.alternativeAn efficient top-down search algorithm for learning Boolean networks of gene expression-
dc.typeArticle-
dc.citation.titleMachine Learning-
dc.citation.number1-
dc.citation.endPage245-
dc.citation.startPage229-
dc.citation.volume65-
dc.contributor.affiliatedAuthorDougu Nam-
dc.contributor.alternativeName남덕우-
dc.contributor.alternativeName서승현-
dc.contributor.alternativeName김상수-
dc.identifier.bibliographicCitationMachine Learning, vol. 65, no. 1, pp. 229-245-
dc.identifier.doi10.1007/s10994-006-9014-z-
dc.subject.keywordBoolean network-
dc.subject.keywordCore search-
dc.subject.keywordCoupon collection problem-
dc.subject.keywordData consistency-
dc.subject.keywordRandom superset selection-
dc.subject.localBoolean network-
dc.subject.localCore search-
dc.subject.localCoupon collection problem-
dc.subject.localData consistency-
dc.subject.localRandom superset selection-
dc.description.journalClassY-
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