作者
Xiao-Fei Zhang, Le Ou-Yang, Xing-Ming Zhao, Hong Yan
发表日期
2016/9/28
期刊
Scientific reports
卷号
6
期号
1
页码范围
34112
出版商
Nature Publishing Group UK
简介
Understanding how the structure of gene dependency network changes between two patient-specific groups is an important task for genomic research. Although many computational approaches have been proposed to undertake this task, most of them estimate correlation networks from group-specific gene expression data independently without considering the common structure shared between different groups. In addition, with the development of high-throughput technologies, we can collect gene expression profiles of same patients from multiple platforms. Therefore, inferring differential networks by considering cross-platform gene expression profiles will improve the reliability of network inference. We introduce a two dimensional joint graphical lasso (TDJGL) model to simultaneously estimate group-specific gene dependency networks from gene expression profiles collected from different platforms and infer …
引用总数
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