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A Multithreaded Model for Cancer Tissue Heterogeneity: An Application
[article]
2022
bioRxiv
pre-print
Studying the heterogeneity in cancerous tissue is challenging in cancer research. It is vital to process the realworld data efficiently to understand the heterogeneous nature of cancer tissue. GPU compatible models, which can estimate the subpopulation of cancerous tissue, are fast if the size of input data, i.e., the number of qPCR (quantitative polymerase chain reaction) gene expression reading is extensive. In the real world, we rarely get that much data to reap the benefits of a GPUs
doi:10.1101/2022.09.05.505544
fatcat:etsug73ptrfwfiasjo2w345ksu