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时序数据的因果关系交互式可视分析

丁伟杰 华东 袁莹 孙国道 尤芷芊 梁荣华

高技术通讯2024,Vol.34Issue(6):578-589,12.
高技术通讯2024,Vol.34Issue(6):578-589,12.DOI:10.3772/j.issn.1002-0470.2024.06.003

时序数据的因果关系交互式可视分析

Interactive visual analysis of causality in temporal data

丁伟杰 1华东 2袁莹 3孙国道 4尤芷芊 5梁荣华4

作者信息

  • 1. 浙江工业大学信息工程学院 杭州 310023||浙江警察学院计算机与信息安全系 杭州 310053||基于大数据架构的公安信息化应用公安部重点实验室 杭州 310053
  • 2. 浙江省公安厅情报指挥中心 杭州 310053
  • 3. 浙江警察学院计算机与信息安全系 杭州 310053
  • 4. 浙江工业大学计算机科学与技术学院 杭州 310023
  • 5. 香港理工大学工程学院 香港 999077
  • 折叠

摘要

Abstract

As data storage technology is increasingly improving,the correlations of variables in time series data are more complex.It is difficult to artificially speculate on the causalities based on previous accumulated experience to sup-port the exploration of deeper relationships.The use of machine algorithms to detect the causality between multivari-ate time series data and exert the potential value of data has important practical significance for the application of big data in marketing and health care.Aiming at low efficiency issues,high error rate and low interpretability of causality models in time series data,this paper combines the functional greedy equivalence search(F-GES)model with the Granger causality model for causal inference,and proposes an interactive causality visual analysis ap-proach,which includes the parameter view to improve the efficiency of causality exploration,the causality tree to visually display the causalities,the time view to compare the original time series data,and the streamgraph view for users to explore the hierarchical evolution of raw dataset,and parallel coordinate to analyze correlations among vari-ables.This system supports interactive visual manipulation,verification,and summarization of causal relationships in time series data.Thus,mining causalities between variables in time series data can help users for decision-mak-ing.

关键词

因果关系/时间序列/可视分析/产业链

Key words

causality/time series/visual analysis/industry chain

引用本文复制引用

丁伟杰,华东,袁莹,孙国道,尤芷芊,梁荣华..时序数据的因果关系交互式可视分析[J].高技术通讯,2024,34(6):578-589,12.

基金项目

教育部人文社会科学规划课题(22YJA840004)资助项目. (22YJA840004)

高技术通讯

OA北大核心CSTPCD

1002-0470

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