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Unlocking Cells' Secrets: Diffusion, Deconvolution, & Discovery with Siyu He, author of Squidiff & CORAL

"The Cognitive Revolution" | AI Builders, Researchers, and Live Player Analysis

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Exploring Diffusion Models in Transcriptomics

This chapter examines the intricacies of generative models, particularly diffusion models and semantic encoders, as alternatives to conventional transformer architectures for single-cell transcriptomics. It discusses the efficacy of these models in managing complex data distributions, focusing on the unique challenges of single-cell gene expression data, noise, and sparsity. The conversation highlights innovative methodologies, including the integration of Variational Autoencoders with diffusion processes, to enhance semantic information extraction and the understanding of biological processes.

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