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A swarm-inspired projection algorithm

机译:一群受启发的投影算法

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摘要

In this paper a new data projection algorithm which was inspired by the foraging behaviors of doves is proposed. We name the new data projection the swarm-inspired projection (SIP) algorithm. The algorithm allows us to visually estimate the number of clusters existing in a data set. Based on the projection result, we may then partition the data set into the corresponding number of clusters. The SIP algorithm regards each data pattern in a data set as a piece of crumb which will be sequentially tossed to a flock of doves on the ground. The doves will adjust their physical positions to compete for crumbs. Gradually, the flock of doves will be divided into several groups according to the distributions of the crumbs. The formed groups will naturally correspond to the underlying data structures in the data set. By viewing the scatter plot of the final positions of the doves we can estimate the number of clusters existing in the data set. Several data sets were used to demonstrate the effectiveness of the proposed SIP algorithm.
机译:本文提出了一种新的数据投影算法,该算法受鸽子的觅食行为启发。我们将新的数据投影命名为“群体启发式投影(SIP)”算法。该算法使我们可以直观地估计数据集中存在的簇数。根据投影结果,我们可以将数据集划分为相应数量的聚类。 SIP算法将数据集中的每个数据模式视为一块面包屑,这些面包屑将被顺序抛向地面上的一群鸽子。鸽子将调整身体姿势以争夺面包屑。鸽子群将根据面包屑的分布逐渐分为几组。形成的组将自然对应于数据集中的基础数据结构。通过查看鸽子最终位置的散点图,我们可以估计数据集中存在的簇数。使用几个数据集来证明所提出的SIP算法的有效性。

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