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High-Performance Visualization of Multi-Dimensional Gene Expression Data

机译:多维基因表达数据的高性能可视化

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Previous application of Kohonen's self organizing map to common visualizations has yielded promising results. In this research, we extend the classic two-dimensional scatter plot visualization algorithm into the third dimension by permitting competition to occur within a three-dimensional search space. This approach takes advantage of spatial memory and increases the intrinsic dimensionality of a widely used visualization technique. We also present a method of parallelizing this novel algorithm as a method of overcoming the runtime complexity associated with it using MPI. We note that this algorithm responds extremely well to parallelization and that it leads to an effective method for knowledge discovery in complex multidimensional datasets.
机译:Kohonen的自组织图先前在常见的可视化中的应用已产生了可喜的结果。在这项研究中,我们通过允许在三维搜索空间内发生竞争,将经典的二维散点图可视化算法扩展到了三维。这种方法利用了空间存储的优势,并增加了广泛使用的可视化技术的固有维数。我们还提出了一种将这种新颖算法并行化的方法,以克服使用MPI与之相关的运行时复杂性的方法。我们注意到,该算法对并行化的响应非常好,它为复杂的多维数据集中的知识发现提供了一种有效的方法。

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