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An inductive learning algorithm for discovering comprehensible knowledge from databases

Cairo University, Faculty of Computers and Information, The Egyptian Information Journal, 2002, Cairo, Egypt • 2002
العودة
معلومات البحث
المؤلفون Raafat A. El-Kammar, Atta E. El-Alfy, Mohamed I. Sharawy, Mohye- E. El-Alame
الكلمات المفتاحية Not Available
المجلة العلمية Cairo University, Faculty of Computers and Information, The Egyptian Information Journal, 2002, Cairo, Egypt
الناشر Not Available
المجلد Not Available
العدد Not Available
الصفحات Not Available
publication.type International
رابط البحث Not Available
المواد المرفقة Not Available
الملخص
Most of the existing rule induction algorithms are computationally cumbersome and consume much time specially on large noisy databases. This paper presents an efficient algorithm for extracting accurate and comprehensible set of rules from database. The algorithm transfers the attribute of continuous values into linguistic terms using suitable membership function (fuzzification). This transformation leads to the reduction of search space. The algorithm controls the rules induction through three levels. These levels are the search level (level1), the confidence level (pc), and the support level (DBC)