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DOT NET IEEE 2012 Abstracts DOMAIN - KNOWLEDGE AND DATA ENGINEERING

EDISC: A CLASS-TAILORED DISCRETIZATION TECHNIQUE FOR RULE-BASED CLASSIFICATION Discretization is a critical component of data mining whereby continuous attributes of a data set are converted into discrete ones by creating intervals either before or during learning. There are many good reasons for preprocessing discretization, such as increased learning efficiency and classification accuracy, comprehensibility of data mining results, as well as the inherent limitation of a great majority of learning algorithms to handle only discrete data. Many preprocessing discretization techniques have been proposed to date, of which the Entropy-MDLP discretization has been accepted as by far the most effective in the context of both decision tree learning and rule induction algorithms. This paper presents a new discretization technique EDISC which utilizes the entropy-based principle but takes a class-tailored approach to discretization. The technique is applicable in general to any covering algorithm, including those that use the class-per-class rule induction methodology such as CN2 as well as those that use a seed example during the learning phase, such as the RULES family. Experimental evaluation has proved the efficiency and effectiveness of the technique as a preprocessing discretization procedure for CN2 as well as RULES-7, the latest algorithm among the RULESfamily of inductive learning algorithms

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NCCT Smarter way to do your Projects

www.ncct.in ncctchennai@gmail.com 044-28235816, 98411 93224

DOT NET IEEE 2012 Abstracts Abstract of the Project

Existing System Proposed System Advantages Architecture Diagram Modules Algorithms used

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NCCT Smarter way to do your Projects

www.ncct.in ncctchennai@gmail.com 044-28235816, 98411 93224

DOT NET IEEE 2012 Abstracts HARDWARE REQUIREMENTS System

: Pentium Dual Core Processor + Board

RAM

: 2 GB

Hard Disk

: 200 GB

Monitor

: 17” Color Monitor

Mouse

: Logitech Mouse

Keyboard

: Multimedia Keyboard

SOFTWARE REQUIREMENTS O/S

: Windows XP / Windows 7

Language

: ASP.NET, C#.

Database

: SQL Server 2005

NCCT, 109, 2 nd Floor, Bombay Flats, Nungambakkam High Road, Nungambakkam, Chennai – 600034. Near Ganpat Hotel, Above IOB, Next to ICICI Bank Projects in Java * J2EE * J2ME * .NET * ASP.NET * VB.NET * C# * Android * NS2 * Matlab * Embedded Systems


Dot NET-Knowledge and Data Engineering -- EDISC A CLASS-TAILORED DISCRETIZATION TECHNIQUE FOR RULE-B