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Spectral Clustering Algorithm Based on Improved Gaussian Kernel Function and Beetle Antennae Search with Damping Factor

机译:基于改进的高斯内核函数和阻尼因子的甲虫天线搜索的光谱聚类算法

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There are two problems in the traditional spectral clustering algorithm. Firstly, when it uses Gaussian kernel function to construct the similarity matrix, different scale parameters in Gaussian kernel function will lead to different results of the algorithm. Secondly, K-means algorithm is often used in the clustering stage of the spectral clustering algorithm. It needs to initialize the cluster center randomly, which will result in the instability of the results. In this paper, an improved spectral clustering algorithm is proposed to solve these two problems. In constructing a similarity matrix, we proposed an improved Gaussian kernel function, which is based on the distance information of some nearest neighbors and can adaptively select scale parameters. In the clustering stage, beetle antennae search algorithm with damping factor is proposed to complete the clustering to overcome the problem of instability of the clustering results. In the experiment, we use four artificial data sets and seven UCI data sets to verify the performance of our algorithm. In addition, four images in BSDS500 image data sets are segmented in this paper, and the results show that our algorithm is better than other comparison algorithms in image segmentation.
机译:传统光谱聚类算法存在两个问题。首先,当它使用高斯内核功能来构造相似性矩阵时,高斯内核功能中的不同比例参数将导致算法的不同结果。其次,k-means算法通常用于谱聚类算法的聚类阶段。它需要随机初始化群集中心,这将导致结果的不稳定性。本文提出了一种改进的光谱聚类算法来解决这两个问题。在构建相似性矩阵时,我们提出了一种改进的高斯内核函数,其基于一些最接近邻居的距离信息,并且可以自适应地选择比例参数。在聚类阶段,提出了具有阻尼因子的甲虫天线搜索算法来完成聚类以克服群集结果的不稳定性问题。在实验中,我们使用四个人工数据集和七个UCI数据集来验证我们的算法的性能。另外,在本文中分割了BSDS500图像数据集中的四个图像,结果表明,我们的算法比图像分割中的其他比较算法更好。

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