cs.AI updates on arXiv.org 10月13日 12:12
RareNet:罕见病基因诊断新方法
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文章提出RareNet,一种基于图神经网络的罕见病基因诊断方法,仅需患者表型数据,提高诊断效率和准确性,尤其对资源有限地区具有重要意义。

arXiv:2510.08655v1 Announce Type: cross Abstract: Rare genetic disease diagnosis faces critical challenges: insufficient patient data, inaccessible full genome sequencing, and the immense number of possible causative genes. These limitations cause prolonged diagnostic journeys, inappropriate treatments, and critical delays, disproportionately affecting patients in resource-limited settings where diagnostic tools are scarce. We propose RareNet, a subgraph-based Graph Neural Network that requires only patient phenotypes to identify the most likely causal gene and retrieve focused patient subgraphs for targeted clinical investigation. RareNet can function as a standalone method or serve as a pre-processing or post-processing filter for other candidate gene prioritization methods, consistently enhancing their performance while potentially enabling explainable insights. Through comprehensive evaluation on two biomedical datasets, we demonstrate competitive and robust causal gene prediction and significant performance gains when integrated with other frameworks. By requiring only phenotypic data, which is readily available in any clinical setting, RareNet democratizes access to sophisticated genetic analysis, offering particular value for underserved populations lacking advanced genomic infrastructure.

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罕见病诊断 基因网络 图神经网络 临床应用 基因组学
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