Unstructured Data Classification - Nijaguna G S - 图书 - Eliva Press - 9781636480497 - 2020年12月3日
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Unstructured Data Classification

价格
元 286
不含税

远程仓调货

预计送达时间 年6月15日 - 年7月1日
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According to certain criteria, the classes are identified by using classification techniques, which is considered as data mining tool. When compared with smaller class, the classification results (i.e., accuracy) for bigger class are deviating and the traditional classification procedures provides inaccurate results, which is known as Class Imbalance problem. A class is formed with unequal size, where this type of data is represented and combined as class imbalance data. There are two various categories are presents in class imbalance domain, namely minority (i.e., smaller) and majority (i.e., bigger) classes. The major aim of this research work is to identify the minority class accurately. In this research, two significant methodologies are proposed such as (i) Adaptive-Condensed Nearest Neighbor (ACNN) Algorithm, and (ii) Local Mahalanobis Distance Learning(LMDL) based ACNN algorithm. These methods are significantly improving the imbalanced data classification.

介质类型 图书     Paperback Book   (平装胶订图书)
已发行 2020年12月3日
ISBN13 9781636480497
出版商 Eliva Press
页数 90
商品尺寸 152 × 229 × 5 mm   ·   131 g
语言 英语  

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