FishEye Watcher: a visual analytics system for knowledge graph bias detection
  
Tian Qiu - Fudan University, Shanghai, China
 Yi Shan - Fudan University, Shanghai, China
 Xueli Shu - Fudan University, Shanghai, China
 Aolin Guo - Fudan University, Shanghai, China
 Qianhui Li - Fudan University, Shanghai, China
 Meng Guo - school of data science, Shanghai , China
 Siming Chen - Fudan University, Shanghai, China
 Room: Bayshore II
2024-10-13T12:30:00ZGMT-0600Change your timezone on the schedule page
2024-10-13T12:30:00Z
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Abstract
In this paper we present an interactive visualization system for solving IEEE VAST Challenge 2024 Mini-Challenge 1. Our system enables interactive exploration and mining of the knowledge graph, assists in identifying suspicious bias and provides corresponding evidence from multiple perspectives. For the convenience of user exploration, our system supports recording the exploration process and preservation of evidence. The illustrative case proves the effectiveness of our system.