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ABSTRACT:
SUBMITTER: Lee J
PROVIDER: S-EPMC11070731 | biostudies-literature | 2024 Mar
REPOSITORIES: biostudies-literature
Lee Junseok J Yun Sukwon S Kim Yeongmin Y Chen Tianlong T Kellis Manolis M Park Chanyoung C
Briefings in bioinformatics 20240301 3
Single-cell RNA sequencing (scRNA-seq) enables the exploration of cellular heterogeneity by analyzing gene expression profiles in complex tissues. However, scRNA-seq data often suffer from technical noise, dropout events and sparsity, hindering downstream analyses. Although existing works attempt to mitigate these issues by utilizing graph structures for data denoising, they involve the risk of propagating noise and fall short of fully leveraging the inherent data relationships, relying mainly o ...[more]