Paper Title :Dual Mining Approach For Knowledge Discovery In Complex Data
Author :Ashwini Borle, L.K.Vishwamitra
Article Citation :Ashwini Borle ,L.K.Vishwamitra ,
(2015 ) " Dual Mining Approach For Knowledge Discovery In Complex Data " ,
International Journal of Advance Computational Engineering and Networking (IJACEN) ,
pp. 91-102,
Volume-3, Issue-6
Abstract : Data mining and knowledge discovery in databases have been attracting a significant amount of research,
industry as well as media attention. Data mining applications normally involve complex data such as multiple hefty varied
data sources, user preferences, and business crash. In such conditions, a specific method or one-step mining is often limited
to discovering informative knowledge. It would also be very time plus space consuming, unless impossible, to join relevant
large data sources for mining patterns consisting of multiple aspects of information. It is necessary for the future to come up
with efficient method for mining patterns combining necessary information from various relevant business lines, catering for
real business settings plus decision-making actions rather than just providing a single line of patterns. Sooner than presenting
a particular algorithm, this paper builds on our existing works and proposes combined mining as a general approach to
mining for informative patterns combining components from either multiple data sets or multiple features or by multiple
ways on demand. The mechanism describes the paradigms and basic processes for multi feature combined mining, multi
source combined mining, and multi method combined mining. Novel types of combined patterns, for example incremental
cluster patterns, can result from these frameworks, which cannot be completely produced all the way through existing
methods. A set of existent case studies has been performed to test the frameworks, with few of them briefed here. They
recognize combined patterns for informing government debt prevention and improving government service objectives,
which illustrate the flexibility and instantiation capability of combined mining in discovering informative knowledge in
complex data.
.
Index Terms— Knowledge Discover, Multi feature combined mining, Multi source combined mining, and multi method
combined mining.
Type : Research paper
Published : Volume-3, Issue-6
DOIONLINE NO - IJACEN-IRAJ-DOIONLINE-2365
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Published on 2015-06-17 |
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