文件名称:High
- 所属分类:
- 行业发展研究
- 资源属性:
- [PDF]
- 上传时间:
- 2012-11-26
- 文件大小:
- 189kb
- 下载次数:
- 0次
- 提 供 者:
- tra b*****
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This paper presents a clustering approach
which estimates the specific subspace and the intrinsic dimension of each class. Our approach
adapts the Gaussian mixture model fr a mework to high-dimensional data and estimates
the parameters which best fit the data. We obtain a robust clustering method called High-
Dimensional Data Clustering (HDDC). We apply HDDC to locate objects in natural images
in a probabilistic fr a mework. Experiments on a recently proposed database demonstrate the
effectiveness of our clustering method for category localization.相关搜索: subspace
subspace
clustering
class
category
which estimates the specific subspace and the intrinsic dimension of each class. Our approach
adapts the Gaussian mixture model fr a mework to high-dimensional data and estimates
the parameters which best fit the data. We obtain a robust clustering method called High-
Dimensional Data Clustering (HDDC). We apply HDDC to locate objects in natural images
in a probabilistic fr a mework. Experiments on a recently proposed database demonstrate the
effectiveness of our clustering method for category localization.相关搜索: subspace
subspace
clustering
class
category
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High Dimensional Data Clustering.pdf