Improving Hybrid MDS with Pivot-Based Searching

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Improving Hybrid MDS with Pivot-Based Searching
An algorithm is presented for the visualisation of multidimensional abstract data, building on a hybrid model introduced at InfoVis 2002. The most computationally complex stage of the original model involved performing a nearestneighbour search for every data item. The complexity of this phase has been reduced by treating all high-dimensional relationships as a set of discretised distances to a constant number of randomly selected pivot items. In improving this computational bottleneck, the complexity is reduced from O(N √ N) to O(N 5 4 ). As well as documenting this improvement, the paper describes evaluation with a data set of 108000 14-dimensional items; a considerable increase on the size of data previously tested. Results illustrate that the reduction in complexity is reflected in significantly improved run times and that no negative impact is made upon the quality of layout produced. CR Categories: F.2.2 [Analysis of Algorithms and Problem Complexity]: Nonnumerical Algorithm...
Alistair Morrison, Matthew Chalmers
Added 04 Jul 2010
Updated 04 Jul 2010
Type Conference
Year 2003
Authors Alistair Morrison, Matthew Chalmers
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