JOURNAL ARTICLE

Autoencoder-assisted latent representation learning for survival prediction and multi-view clustering on multi-omics cancer subtyping

Shuwei ZhuWenping WangWei FangMeiji Cui

Year: 2023 Journal:   Mathematical Biosciences & Engineering Vol: 20 (12)Pages: 21098-21119   Publisher: Arizona State University

Abstract

<abstract><p>Cancer subtyping (or cancer subtypes identification) based on multi-omics data has played an important role in advancing diagnosis, prognosis and treatment, which triggers the development of advanced multi-view clustering algorithms. However, the high-dimension and heterogeneity of multi-omics data make great effects on the performance of these methods. In this paper, we propose to learn the informative latent representation based on autoencoder (AE) to naturally capture nonlinear omic features in lower dimensions, which is helpful for identifying the similarity of patients. Moreover, to take advantage of survival information or clinical information, a multi-omic survival analysis approach is embedded when integrating the similarity graph of heterogeneous data at the multi-omics level. Then, the clustering method is performed on the integrated similarity to generate subtype groups. In the experimental part, the effectiveness of the proposed framework is confirmed by evaluating five different multi-omics datasets, taken from The Cancer Genome Atlas. The results show that AE-assisted multi-omics clustering method can identify clinically significant cancer subtypes.</p></abstract>

Keywords:
Subtyping Omics Cluster analysis Autoencoder Computer science Similarity (geometry) Data mining Machine learning Computational biology Artificial intelligence Bioinformatics Biology Artificial neural network

Metrics

6
Cited By
1.11
FWCI (Field Weighted Citation Impact)
50
Refs
0.77
Citation Normalized Percentile
Is in top 1%
Is in top 10%

Citation History

Topics

Gene expression and cancer classification
Life Sciences →  Biochemistry, Genetics and Molecular Biology →  Molecular Biology
Bioinformatics and Genomic Networks
Life Sciences →  Biochemistry, Genetics and Molecular Biology →  Molecular Biology
Data Mining Algorithms and Applications
Physical Sciences →  Computer Science →  Information Systems

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