Dimension Reconstruction for Visual Exploration of Subspace Clusters in High-dimensional Data | |
Zhou, Fangfang ; Li, Juncai ; Huang, Wei ; Zhao, Ying ; Yuan, Xiaoru ; Liang, Xing ; Shi, Yang | |
2016 | |
关键词 | High-Dimensional Data Subspace Clustering Visual Clustering User Interaction RADVIZ |
英文摘要 | Subspace-based analysis has increasingly become the preferred method for clustering high-dimensional data. A visually interactive exploration of subspaces and clusters is a cyclic process. Every meaningful discovery will motivate users to re-search subspaces that can provide improved clustering results and reveal the relationships among clusters that can hardly coexist in the original subspaces. However, the combination of dimensions from the original subspaces is not always effective in finding the expected subspaces. In this study, we present an approach that enables users to reconstruct new dimensions from the data projections of subspaces to preserve interesting cluster information. The reconstructed dimensions are included into an analytical workflow with the original dimensions to help users construct target-oriented subspaces which clearly display informative cluster structures. We also provide a visualization tool that assists users in the exploration of subspace clusters by utilizing dimension reconstruction. Several case studies on synthetic and real-world data sets have been performed to prove the effectiveness of our approach. Lastly, further evaluation of the approach has been conducted via expert reviews.; CPCI-S(ISTP); zff@csu.edu.cn; dreair@csu.edu.cn; huangwei_grace@csu.edu.cn; zhaoying@csu.edu.cn; xiaoru.yuan@pku.edu.cn; xliang22@asu.edu; shiyangcsu@126.com; 128-135 |
语种 | 英语 |
出处 | IEEE Pacific Visualization Symposium (IEEE PacificVis) |
内容类型 | 其他 |
源URL | [http://ir.pku.edu.cn/handle/20.500.11897/460178] |
专题 | 信息科学技术学院 |
推荐引用方式 GB/T 7714 | Zhou, Fangfang,Li, Juncai,Huang, Wei,et al. Dimension Reconstruction for Visual Exploration of Subspace Clusters in High-dimensional Data. 2016-01-01. |
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