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Fuzzy Ants with Cluster Mining
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Lingaraj. N. Desai; K. Krishnamoorthy
- Ant-based techniques are designed to take biological inspirations on the behavior of these social insects. Data clustering techniques are classification algorithms that have a wide range of applications, from Biology to Image processing and Data presentation. Since real life ants do perform clustering and sorting of objects among their many activities, we expect that a study of ant colonies can provide new insights for clustering techniques. The aim of clustering is to separate a set of data points into self-similar groups such that the points that belong to the same group are more similar than the points belonging to different groups. Each group is called a cluster. Data may be clustered using an iterative version of the Fuzzy C means (FCM) algorithm, but the draw back of FCM algorithm is that it is very sensitive to cluster center initialization because the search is based on the hill climbing heuristic...
- Select Volume / Issues:
- Year:
- 2016
- Type of Publication:
- Article
- Keywords:
- Ant Optimization; Cluster; Mining; Fuzzy
- Journal:
- IJECCE
- Volume:
- 7
- Number:
- 6
- Pages:
- 331-334
- Month:
- November
- ISSN:
- 2249-071X
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