EnDecon: cell type deconvolution of spatially resolved transcriptomics data via ensemble learning

Jia-Juan Tu1, Hui-Sheng Li1,2, Hong Yan1,3

  • 1Centre for Intelligent Multidimensional Data Analysis, Hong Kong Science Park, Hong Kong 999077, China.

Summary

EnDecon, a novel weighted ensemble learning method, improves cell-type deconvolution for spatial transcriptomics (SRT) data. By integrating multiple deconvolution approaches, it enhances accuracy in predicting cell compositions and spatial distributions within tissues.

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