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Graph-Theoretic Techniques for Web Content Mining

2008-12-09 17:22 375 查看
版权声明:原创作品,允许转载,转载时请务必以超链接形式标明文章原始出版、作者信息和本声明。否则将追究法律责任。http://blog.csdn.net/topmvp - topmvp
This book describes exciting new opportunities for utilizing robust graph representations of data with common machine learning algorithms. Graphs can model additional information which is often not present in commonly used data representations, such as vectors. Through the use of graph distance a relatively new approach for determining graph similarity the authors show how well-known algorithms, such as k-means clustering and k-nearest neighbors classification, can be easily extended to work with graphs instead of vectors. This allows for the utilization of additional information found in graph representations, while at the same time employing well-known, proven algorithms. http://rapidshare.com/files/56042969/9812563393.rar http://depositfiles.com/files/1850501
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