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May 17, 2026IEEE Transactions on Computational Biology and Bioinformatics0 citations

scALGSL: Active Learning and Graph Structure Learning for Cell Type Annotation From Single-Cell RNA-seq Data

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ZDZhi-Hua DuJYJia-Le YiWHWei-Lin Hu

Key Points

  • This framework aims to address challenges in cell type annotation from single-cell RNA-seq data.
  • Developed scALGSL, integrating dynamic graph optimization with active learning.
  • Implemented a learnable graph structure optimization module to refine adjacency matrices.
  • Utilized a novel cell state auxiliary pathway for feature extraction.
  • Achieved average accuracy of 0.896 and F1 score of 0.771 on the cancer dataset.
  • Demonstrated robustness in cross-platform tasks.
  • Integration of cell state information led to substantial performance improvements.

Abstract

The breakthrough development of single cell RNA sequencing technology enables tissue hetero geneity analysis at single-cell resolution, where accurate cell type annotation is crucial for unlocking its full potential. To address three key challenges in current annotation methods-scarce labeled data, suboptimal graph topology, and missing cell state information-we propose scALGSL, an innovative framework integrating dynamic graph optimization with active learning. Our core contributions are threefold: (1) A graph guided active learning mechanism adaptively selects high-value training samples, significantly alleviating label scarcity; (2) A learnable graph structure optimization module dynamically refines adjacency matrices to eliminate spurious connections caused by data sparsity; (3) A novel cell state auxiliary pathway extracts critical functional features via pre-trained models to enhance type discrimination. The systematic review showed that the average accuracy and f1 of scALGSL on the cancer dataset were 0.896 and 0.771, respectively, and it showed good robustness in cross-platform tasks. Integration of cell state information substantially boosts performance, while ablation studies validate the necessity of node selection and edge optimization modules. This framework provides a scalable solution for precise cell annotation, facilitating tumor microenvi ronment analysis and precision medicine applications. The source code are available at: https://github.com/ an-xing456/scALGSL.

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Cite This Study

Du et al. (2026) studied this question.

synapsesocial.com/papers/6a095ac47880e6d24efe0ab0https://doi.org/10.1109/tcbbio.2026.3693722
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