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定量可视化二分数据集。

Quantitatively Visualizing Bipartite Datasets.

作者信息

Einav Tal, Khoo Yuehaw, Singer Amit

机构信息

Divisions of Computational Biology and Basic Sciences, Fred Hutchinson Cancer Center, Seattle, Washington 98109, USA.

Department of Statistics, University of Chicago, Chicago, Illinois 60637, USA.

出版信息

Phys Rev X. 2023 Apr-Jun;13(2). doi: 10.1103/physrevx.13.021002. Epub 2023 Apr 4.

Abstract

As experiments continue to increase in size and scope, a fundamental challenge of subsequent analyses is to recast the wealth of information into an intuitive and readily interpretable form. Often, each measurement conveys only the relationship between a pair of entries, and it is difficult to integrate these local interactions across a dataset to form a cohesive global picture. The classic localization problem tackles this question, transforming local measurements into a global map that reveals the underlying structure of a system. Here, we examine the more challenging bipartite localization problem, where pairwise distances are available only for bipartite data comprising two classes of entries (such as antibody-virus interactions, drug-cell potency, or user-rating profiles). We modify previous algorithms to solve bipartite localization and examine how each method behaves in the presence of noise, outliers, and partially observed data. As a proof of concept, we apply these algorithms to antibody-virus neutralization measurements to create a basis set of antibody behaviors, formalize how potently inhibiting some viruses necessitates weakly inhibiting other viruses, and quantify how often combinations of antibodies exhibit degenerate behavior.

摘要

随着实验规模和范围的不断扩大,后续分析的一个基本挑战是将大量信息重新整理成直观且易于解释的形式。通常,每次测量仅传达一对数据之间的关系,并且很难将这些局部相互作用整合到整个数据集中以形成连贯的全局图景。经典的定位问题解决了这个问题,将局部测量转换为揭示系统潜在结构的全局地图。在这里,我们研究更具挑战性的二分定位问题,其中成对距离仅适用于由两类数据(如抗体 - 病毒相互作用、药物 - 细胞效力或用户评分概况)组成的二分数据。我们修改了以前的算法来解决二分定位问题,并研究每种方法在存在噪声、异常值和部分观测数据的情况下的表现。作为概念验证,我们将这些算法应用于抗体 - 病毒中和测量,以创建一组抗体行为的基础集,形式化抑制某些病毒的强效性如何必然导致对其他病毒的弱抑制,并量化抗体组合表现出退化行为的频率。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/8a7e/11146982/7acbd291958d/nihms-1988349-f0006.jpg

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