Machine Learning for Diagnosis of Diseases with Complete Gene Expression Profile

IF 0.6 4区 计算机科学 Q4 AUTOMATION & CONTROL SYSTEMS
A. M. Mikhailov, M. F. Karavai, V. A. Sivtsov, M. A. Kurnikova
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Abstract

This paper considers the use of machine learning for diagnosis of diseases that is based on the analysis of a complete gene expression profile. This distinguishes our study from other approaches that require a preliminary step of finding a limited number of relevant genes (tens or hundreds of genes). We conducted experiments with complete genetic expression profiles (20 531 genes) that we obtained after processing transcriptomes of 801 patients with known oncologic diagnoses (oncology of the lung, kidneys, breast, prostate, and colon). Using the indextron (instant learning index system) for a new purpose, i.e., for complete expression profile processing, provided diagnostic accuracy that is 99.75% in agreement with the results of histological verification.

Abstract Image

机器学习用于具有完整基因表达谱的疾病诊断
本文考虑在分析完整基因表达谱的基础上,将机器学习用于疾病诊断。这将我们的研究与其他需要初步寻找有限数量相关基因(数十或数百个基因)的方法区分开来。我们用完整的基因表达谱进行了实验(20 531个基因),这些基因是我们在处理801名已知肿瘤学诊断(肺、肾、乳腺、前列腺和结肠肿瘤学)患者的转录组后获得的。将indextron(即时学习指数系统)用于一个新的目的,即用于完整的表达谱处理,提供了与组织学验证结果一致的99.75%的诊断准确性。
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来源期刊
Automation and Remote Control
Automation and Remote Control 工程技术-仪器仪表
CiteScore
1.70
自引率
28.60%
发文量
90
审稿时长
3-8 weeks
期刊介绍: Automation and Remote Control is one of the first journals on control theory. The scope of the journal is control theory problems and applications. The journal publishes reviews, original articles, and short communications (deterministic, stochastic, adaptive, and robust formulations) and its applications (computer control, components and instruments, process control, social and economy control, etc.).
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