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Method for mining potential adverse drug reaction data from big data

A technology of adverse reactions and data mining, applied in special data processing applications, electrical digital data processing, instruments, etc., can solve the problems of low generalization performance and achieve the effect of improving health

Active Publication Date: 2015-07-08
DALIAN UNIV OF TECH
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  • Summary
  • Abstract
  • Description
  • Claims
  • Application Information

AI Technical Summary

Problems solved by technology

However, most of the existing studies mainly focus on the potential relationship between certain types of drugs and certain adverse reactions, and their generalization performance is not high.

Method used

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  • Method for mining potential adverse drug reaction data from big data
  • Method for mining potential adverse drug reaction data from big data
  • Method for mining potential adverse drug reaction data from big data

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Embodiment Construction

[0030] The present invention is described below in conjunction with accompanying drawing and specific embodiment:

[0031] figure 1 It is an overall flow chart of a big data-oriented potential adverse drug reaction data mining method of the present invention. Such as figure 1 As shown, a potential adverse drug reaction data mining method for big data, the method includes the following steps:

[0032] A. Capturing adverse drug event reports: construct an adverse drug event data set locally, use crawler technology to capture adverse drug event reports containing drug name text data from known adverse drug event report databases, and store them in the adverse drug event report In the event data set; the adverse drug event report is the adverse event report submitted by the medical worker or the patient and occurs after the patient takes the drug; the drug name text data is the text data appearing in the drug name field of the adverse drug event report; among them, known The ad...

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Abstract

The invention provides a method for mining potential adverse drug reaction data from big data. The method comprises the steps of A, collecting adverse drug reaction reports; B, preprocessing data in the adverse drug reaction reports of the adverse drug reaction event data set; C, standardizing the drug name; D, filtering known adverse reaction; E, calculating degrees of association; F, sequencing the degrees of association. The method is applied to the work of mining potential adverse drug reaction and the work is not limited to the category of drugs; the potential risk of marked drugs can be effectively found out, and the method is of important significance on increasing the health level of a user.

Description

technical field [0001] The invention relates to the field of data mining methods, and relates to a big data-oriented potential adverse drug reaction data mining method. Background technique [0002] Adverse Drug Reactions (ADRs) have become a hot spot in the medical field and the general public, and drug safety issues have increasingly received the attention of the whole society. Although corresponding clinical trials will be carried out before the drug goes on the market, due to limitations such as the number of people and the trial cycle, clinical trials cannot reveal all the adverse reactions of the drug. As a result, new drugs with potential adverse drug reactions flow into the market, which poses a huge threat to public health. Therefore, how to mine the adverse reactions of drugs has great theoretical and practical value. [0003] The research on mining potential adverse reactions of marketed drugs mainly relies on the electronic medical records provided by hospitals...

Claims

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Application Information

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Patent Type & Authority Applications(China)
IPC IPC(8): G06F19/00
Inventor 林鸿飞赵明珍
Owner DALIAN UNIV OF TECH
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