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Data Mining Using Neural NetworksRahman, Sardar Muhammad Monzurur, mrahman99@yahoo.com January 2006 (has links)
Data mining is about the search for relationships and global patterns in large databases that are increasing in size. Data mining is beneficial for anyone who has a huge amount of data, for example, customer and business data, transaction, marketing, financial, manufacturing and web data etc. The results of data mining are also referred to as knowledge in the form of rules, regularities and constraints. Rule mining is one of the popular data mining methods since rules provide concise statements of potentially important information that is easily understood by end users and also actionable patterns. At present rule mining has received a good deal of attention and enthusiasm from data mining researchers since rule mining is capable of solving many data mining problems such as classification, association, customer profiling, summarization, segmentation and many others. This thesis makes several contributions by proposing rule mining methods using genetic algorithms and neural networks. The thesis first proposes rule mining methods using a genetic algorithm. These methods are based on an integrated framework but capable of mining three major classes of rules. Moreover, the rule mining processes in these methods are controlled by tuning of two data mining measures such as support and confidence. The thesis shows how to build data mining predictive models using the resultant rules of the proposed methods. Another key contribution of the thesis is the proposal of rule mining methods using supervised neural networks. The thesis mathematically analyses the Widrow-Hoff learning algorithm of a single-layered neural network, which results in a foundation for rule mining algorithms using single-layered neural networks. Three rule mining algorithms using single-layered neural networks are proposed for the three major classes of rules on the basis of the proposed theorems. The thesis also looks at the problem of rule mining where user guidance is absent. The thesis proposes a guided rule mining system to overcome this problem. The thesis extends this work further by comparing the performance of the algorithm used in the proposed guided rule mining system with Apriori data mining algorithm. Finally, the thesis studies the Kohonen self-organization map as an unsupervised neural network for rule mining algorithms. Two approaches are adopted based on the way of self-organization maps applied in rule mining models. In the first approach, self-organization map is used for clustering, which provides class information to the rule mining process. In the second approach, automated rule mining takes the place of trained neurons as it grows in a hierarchical structure.
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Integrated verification of constraints and event-and-action-oriented business rulesShi, Yuan. January 2001 (has links) (PDF)
Thesis (M.S.)--University of Florida, 2001. / Title from first page of PDF file. Document formatted into pages; contains ix, 68 p.; also contains graphics. Vita. Includes bibliographical references (p. 64-67).
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Mining association rules with weighted itemsCai, Chun Hing. January 1998 (has links) (PDF)
Thesis (M. Phil.)--Chinese University of Hong Kong, 1998. / Description based on contents viewed Mar. 13, 2007; title from title screen. Includes bibliographical references (p. 99-103). Also available in print.
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Hedging in Political Discourse : An Analysis of Hedging in an American City CouncilPlayer Pellby, Ellen January 2013 (has links)
This thesis seeks to investigate the usage of hedges in political discourse in the Tampa City Council for the purpose of examining whether or not women hedge more than men in this area. An analysis of the occurrence of hedges illustrated that women hedged more than men for various purposes in this meeting. These occurrences mostly involved the epistemic modal function and shields which indicate uncertainty about the utterance and certainty about the utterance respectively. The results also illustrate how political discourse is still an area dominated by men in the sense that men had significantly more speech time than women during this meeting. However, the results also disprove Lakoff’s claim that women hedge simply to signal uncertainty and tentativeness.
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Integrated verification of constraints and event-and-action-oriented business rulesShi, Yuan. January 2001 (has links) (PDF)
Thesis (M.S.)--University of Florida, 2001. / Title from first page of PDF file. Document formatted into pages; contains ix, 68 p.; also contains graphics. Vita. Includes bibliographical references (p. 64-67).
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Rule warehouse system for knowledge sharing and business collaborationLiu, Youzhong, January 2001 (has links) (PDF)
Thesis (Ph. D.)--University of Florida, 2001. / Title from first page of PDF file. Document formatted into pages; contains xi, 121 p.; also contains graphics. Vita. Includes bibliographical references (p. 113-120).
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An algorithm and implementation for extracting schematic and semantic knowledge from relational database systemsHaldavnekar, Nikhil. January 2002 (has links)
Thesis (M.S.)--University of Florida, 2002. / Title from title page of source document. Includes vita. Includes bibliographical references.
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Observations and thermodynamic interpretations of polymer blend phase behaviorHaggard, Kris Wilcox 28 August 2008 (has links)
Not available / text
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Measurement and correlation of critical statesSmith, Richard Lee, Jr. 12 1900 (has links)
No description available.
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Phase equilibria in mixtures containing hydrogenHan, Chul Hee 08 1900 (has links)
No description available.
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