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Application of Big Data analysis in gastrointestinal research

机译:大数据分析在胃肠道研究中的应用

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摘要

Big Data, which are characterized by certain unique traits like volume, velocity and value, have revolutionized the research of multiple fields including medicine. Big Data in health care are defined as large datasets that are collected routinely or automatically, and stored electronically. With the rapidly expanding volume of health data collection, it is envisioned that the Big Data approach can improve not only individual health, but also the performance of health care systems. The application of Big Data analysis in the field of gastroenterology and hepatology research has also opened new research approaches. While it retains most of the advantages and avoids some of the disadvantages of traditional observational studies (case-control and prospective cohort studies), it allows for phenomapping of disease heterogeneity, enhancement of drug safety, as well as development of precision medicine, prediction models and personalized treatment. Unlike randomized controlled trials, it reflects the real-world situation and studies patients who are often under-represented in randomized controlled trials. However, residual and/or unmeasured confounding remains a major concern, which requires meticulous study design and various statistical adjustment methods. Other potential drawbacks include data validity, missing data, incomplete data capture due to the unavailability of diagnosis codes for certain clinical situations, and individual privacy. With continuous technological advances, some of the current limitations with Big Data may be further minimized. This review will illustrate the use of Big Data research on gastrointestinal and liver diseases using recently published examples.
机译:具有某些独特特征(例如数量,速度和价值)的大数据已经彻底改变了包括医学在内的多个领域的研究。卫生保健中的大数据定义为常规或自动收集并以电子方式存储的大型数据集。随着健康数据收集量的迅速增加,可以预见的是,大数据方法不仅可以改善个人健康,而且可以改善卫生保健系统的性能。大数据分析在胃肠病学和肝病学研究领域的应用也开辟了新的研究方法。尽管它保留了大多数优势,并避免了传统观察性研究的某些弊端(病例对照研究和前瞻性队列研究),但它允许疾病异质性的表型化,药物安全性的提高以及精密医学,预测模型的开发和个性化的待遇。与随机对照试验不同,它反映了现实情况并研究了在随机对照试验中代表性不足的患者。但是,残留和/或无法测量的混杂仍然是一个主要问题,需要精心研究设计和各种统计调整方法。其他潜在的缺点包括数据有效性,数据丢失,由于在某些临床情况下无法使用诊断代码而导致数据捕获不完整以及个人隐私。随着技术的不断进步,大数据当前的一些局限性可能会进一步降至最低。本文将通过最近发表的实例说明大数据在胃肠道和肝脏疾病研究中的应用。

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