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Sort articles by: Volume | Date | Most Rates | Most Views | Reviews | Alphabet
1.

Intelligent decision support system based on rough set and fuzzy logic approach for efficacious precipitation forecast Pages 95-106 Right click to download the paper Download PDF

Authors: M. Sudha

DOI: 10.5267/j.dsl.2016.6.002

Keywords: Rough set, Fuzzy set, Parameter selection, Optimal reduct, Fuzzy rule learning

Abstract:
Weather forecasting is essential and demanding scientific task of meteorological services across the world. It is a complex procedure that includes many specific technological field of study. The prediction is intricate process in meteorology because all decisions are made within a facet of uncertainty associated with weather systems. This research finding introduces a novel rough fuzzy computing approach for a short term rainfall forecasts. The model consists of rough set based optimal weather parameter selection module and fuzzy rule based classification module. The proposed fuzzy decision support model is compared with benchmarked classification approaches. The fuzzy classification model used in fuzzy decision support system is trained and tested using the reduct sets generated using proposed maximum frequency weighted feature reduction technique. The optimal reduct set constituting the weather parameters; minimum temperature, relative humidity and solar radiation achieved better prediction accuracy than complete feature set and the reducts. Most of the classification models have shown better accuracy when trained using the selected subsets of the target input. Thorough evaluation of the proposed model has revealed that coupling fuzzy decision support system and rough based pre-processing techniques was a better approach than traditional techniques. The experimental results revealed the proposed rough fuzzy model as a better rainfall prediction approach for modeling short range rainfall forecast.
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Journal: DSL | Year: 2017 | Volume: 6 | Issue: 1 | Views: 2497 | Reviews: 0

 
2.

Prioritization and selection of parameters for control chart implementation based on technical criticality and cost criticality Pages 203-210 Right click to download the paper Download PDF

Authors: Sirintra Tan-intara-art, Napassavong Rojanarowan

DOI: 10.5267/j.dsl.2013.04.001

Keywords: Control charts, Cost of quality, Failure costs, Parameter prioritization, Parameter selection, Statistical process control

Abstract:
An important problem in control chart implementation is the availability of resources to collect and analyze data for control charts implementation. This paper proposes a method to prioritize and select final product parameters to control. The prioritization is based on cost of quality and technical criticality of those parameters. The prioritization method is demonstrated by a case study of flexible printed circuit manufacturing.
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Journal: DSL | Year: 2013 | Volume: 2 | Issue: 3 | Views: 2306 | Reviews: 0

 

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