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PIVE: Per-Iteration Visualization Environment for Real-Time Interactions with Dimension Reduction and Clustering

机译:PID:用于实时交互的偏移可视化环境,与尺寸减少和聚类

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One of the key advantages of visual analytics is its capability to leverage both humans's visual perception and the power of computing. A big obstacle in integrating machine learning with visual analytics is its high computing cost. To tackle this problem, this paper presents PIVE (Per-Iteration Visualization Environment) that supports real-time interactive visualization with machine learning. By immediately visualizing the intermediate results from algorithm iterations, PIVE enables users to quickly grasp insights and interact with the intermediate output, which then affects subsequent algorithm iterations. In addition, we propose a widely-applicable interaction methodology that allows efficient incorporation of user feedback into virtually any iterative computational method without introducing additional computational cost. We demonstrate the application of PIVE for various dimension reduction algorithms such as multidimensional scaling and t-SNE and clustering and topic modeling algorithms such as k-means and latent Dirichlet allocation.
机译:视觉分析的关键优势之一是其能力利用人类的视觉感知和计算能力。通过视觉分析集成机器学习的一个巨大障碍是其高计算成本。为了解决这个问题,本文介绍了支持与机器学习的实时交互式可视化的PIVE(迭代可视化环境)。通过立即可视化算法迭代的中间结果,PIVE使用户能够快速掌握洞察力并与中间输出交互,然后影响后续算法迭代。此外,我们提出了一种广泛适用的交互方法,允许在不引入额外的计算成本的情况下将用户反馈结合到几乎任何迭代计算方法。我们展示了PIVE对各种尺寸减少算法的应用,例如多维缩放和T-SNE和聚类和主题建模算法,如K-Means和潜在的Dirichlet分配。

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