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Suyuan Zhao

4 accepted papers

2025

SToFM: a Multi-scale Foundation Model for Spatial Transcriptomics

ICML 2025poster

Spatial Transcriptomics (ST) technologies provide biologists with rich insights into single-cell biology by preserving spatial context of cells. Building foundational models for ST can significantly enhance the analysis of vast and complex data sources, unlocking new perspectives on the intricacies…

Cited by 0SourcePDFScholar
2025

Semi-Supervised Blind Quality Assessment with Confidence-quantifiable Pseudo-label Learning for Authentic Images

ICML 2025poster

This paper presents CPL-IQA, a novel semi-supervised blind image quality assessment (BIQA) framework for authentic distortion scenarios. To address the challenge of limited labeled data in IQA area, our approach leverages confidence-quantifiable pseudo-label learning to effectively utilize unlabeled…

Cited by 0SourcePDFScholar
2024

LangCell: Language-Cell Pre-training for Cell Identity Understanding

ICML 2024poster

Cell identity encompasses various semantic aspects of a cell, including cell type, pathway information, disease information, and more, which are essential for biologists to gain insights into its biological characteristics. Understanding cell identity from the transcriptomic data, such as annotating…

Cited by 10SourcePDFScholar
2024

MutaPLM: Protein Language Modeling for Mutation Explanation and Engineering

NeurIPS 2024poster

Studying protein mutations within amino acid sequences holds tremendous significance in life sciences. Protein language models (PLMs) have demonstrated strong capabilities in broad biological applications. However, due to architectural design and lack of supervision, PLMs model mutations implicitly…