Paper List
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A Unified Variational Principle for Branching Transport Networks: Wave Impedance, Viscous Flow, and Tissue Metabolism
This paper solves the core problem of predicting the empirically observed branching exponent (α≈2.7) in mammalian arterial trees, which neither Murray...
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Household Bubbling Strategies for Epidemic Control and Social Connectivity
This paper addresses the core challenge of designing household merging (social bubble) strategies that effectively control epidemic risk while maximiz...
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Empowering Chemical Structures with Biological Insights for Scalable Phenotypic Virtual Screening
This paper addresses the core challenge of bridging the gap between scalable chemical structure screening and biologically informative but resource-in...
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A mechanical bifurcation constrains the evolution of cell sheet folding in the family Volvocaceae
This paper addresses the core problem of why there is an evolutionary gap in species with intermediate cell numbers (e.g., 256 cells) in Volvocaceae, ...
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Bayesian Inference in Epidemic Modelling: A Beginner’s Guide Illustrated with the SIR Model
This guide addresses the core challenge of estimating uncertain epidemiological parameters (like transmission and recovery rates) from noisy, real-wor...
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Geometric framework for biological evolution
This paper addresses the fundamental challenge of developing a coordinate-independent, geometric description of evolutionary dynamics that bridges gen...
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A multiscale discrete-to-continuum framework for structured population models
This paper addresses the core challenge of systematically deriving uniformly valid continuum approximations from discrete structured population models...
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Whole slide and microscopy image analysis with QuPath and OMERO
使QuPath能够直接分析存储在OMERO服务器中的图像而无需下载整个数据集,克服了大规模研究的本地存储限制。
Discovery of a Hematopoietic Manifold in scGPT Yields a Method for Extracting Performant Algorithms from Biological Foundation Model Internals
Department of Computer Science, University of Tübingen, Tübingen, Germany
30秒速读
IN SHORT: This work addresses the core challenge of extracting reusable, interpretable, and high-performance biological algorithms from the opaque internal representations of single-cell foundation models.
核心创新
- Methodology Introduces a three-stage pipeline (direct operator export, lightweight adaptor, task readout) to extract standalone algorithms from frozen foundation model weights without target-dataset retraining.
- Biology Discovers a compact (~8-10D) hematopoietic manifold within scGPT's attention geometry, validated with high trustworthiness (0.993) and significant developmental branch structure (e.g., erythroid trajectory ρ=0.768, p=0.0017).
- Methodology Demonstrates multi-stage model compression, reducing the operator from 17.5 MB to 0.73 MB without statistically significant performance loss, and provides mechanistic interpretability via a four-factor core explaining 66.2% of ablation impact.
主要结论
- The extracted algorithm significantly outperforms established baselines (scVI, Palantir, DPT, etc.) on pseudotime-depth ordering (orientation-independent |ρ|=0.439 vs. 0.331 for next-best; Wilcoxon BH-q≤2.7×10−7 on all paired comparisons).
- It achieves superior performance on key subtype classification (CD4/CD8 AUROC 0.867, mono/macro AUROC 0.951) while being 34.5x faster and requiring ~1000x fewer trainable parameters than probing frozen embeddings with a 3-layer MLP.
- Mechanistic analysis reveals the algorithm's core is driven by four interpretable factors (T/lymphoid, B/plasma, granulocytic, monocyte/macrophage) explaining 66.2% of ablation impact, linking model internals to explicit biological programs.
摘要: We report the discovery and extraction of a compact hematopoietic algorithm from the single-cell foundation model scGPT—to our knowledge, the first biologically useful, competitive algorithm extracted from a foundation model via mechanistic interpretability. We show that scGPT internally encodes a compact (∼8–10-dimensional) hematopoietic manifold with significant developmental branch structure, validated on a strict non-overlap Tabula Sapiens external panel (616 anchors, 564,253 cells) and confirmed via frozen-head zero-shot transfer to an independent multi-donor immune panel (trustworthiness 0.993, blocked-permutation p=0.0005). To isolate this geometry, we introduce a general three-stage extraction method—direct operator export from frozen attention weights, lightweight learned adaptor, and task-specific readout—that produces a standalone algorithm without target-dataset retraining. In 88-split donor-holdout benchmarks against scVI, Palantir, DPT, CellTypist, PCA, and raw-expression baselines, the extracted algorithm achieves the strongest pseudotime-depth ordering (orientation-independent |ρ|=0.439 versus 0.331 for the next-best alternative; Wilcoxon BH-q≤2.7×10−7 on all paired comparisons) and leads on key subtype endpoints (CD4/CD8 AUROC 0.867, mono/macro AUROC 0.951). Compared to standard probing of frozen scGPT embeddings with a 3-layer MLP (172k parameters), the extracted head is BH-significantly better on 6/8 classification endpoints while completing a full 12-split evaluation campaign 34.5× faster (∼3.4 versus ∼118 minutes) with ∼1,000× fewer trainable parameters. The exported operator compresses from three pooled attention heads to a single head (L2H5; 17.5→5.9 MB) without statistically significant loss, and further to a rank-64 surrogate (0.73 MB). Mechanistic interpretability of the compact operator reveals a concentrated four-factor core explaining 66.2% of ablation impact, with factors resolving into explicit T/lymphoid, B/plasma, granulocytic, and monocyte/macrophage gene programs. A supplementary second-manifold validation (intercellular communication geometry) confirms that the extraction method generalizes beyond hematopoiesis.