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Titlebook: Rule Extraction from Support Vector Machines; Joachim Diederich (Honorary Professor) Book 2008 Springer-Verlag Berlin Heidelberg 2008 Supp

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Accent in Speech Samples: Support Vector Machines for Classification and Rule Extractionaker variability and a particular problem for automated speech recognition. This study aims to investigate the effectiveness of rule extraction from support vector machines for speech accent classification. The presence of a speaker’s accent in the speech signal has significant implications for the
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Prototype Rules from SVMctors (SV) should be reduced to a minimal number that still preserves SVM generalization abilities. Several state-of-the-art methods that reduce the number of support vectors are compared with a new approach, taking into consideration possible interpretation of retained support vectors as the basis for P-rules.
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Rule Extraction from Linear Support Vector Machines via Mathematical Programmingk-box” classifiers into a set of human-understandable rules, is critical not only for physician acceptance, but also for reducing the regulatory barrier for medical-decision support systems based on such classifiers..We also present some variations and extensions of the proposed mathematical programming formulations for rule extraction.
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Prediction of First-Day Returns of Initial Public Offering in the US Stock Market Using Rule Extract is the simultaneous application of . and . in the context of predicting the success of IPOs. Cross-industry IPOs covering the period from 1974 to 1984 and software and services IPOs launched between 1996 and 2000 are utilized.
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