2018
DOI: 10.5120/ijca2018916555
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Mobile Price Class prediction using Machine Learning Techniques

Abstract: To predict "If the mobile with given features will be Economical or Expensive" is the main motive of this research work. Real Dataset is collected from website www.GSMArena.com . Different feature selection algorithms are used to identify and remove less important and redundant features and have minimum computational complexity. Different classifiers are used to achieve as higher accuracy as possible. Results are compared in terms of highest accuracy achieved and minimum features selected. Conclusion is made o… Show more

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Cited by 17 publications
(13 citation statements)
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“…[8] The classification accuracies obtained with T2, 1R, IB1c and K* which were applied by WEKA, RA are 68.10%, 71.40%, 74.00% and 76.70%, respectively. [8] Robert Detrano used logistic regression algorithm and obtained 77.0% classification accuracy. The result of this fuzzy expert system in 79% as a well as the expert did.…”
Section: Z = ∑ Xiwimentioning
confidence: 97%
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“…[8] The classification accuracies obtained with T2, 1R, IB1c and K* which were applied by WEKA, RA are 68.10%, 71.40%, 74.00% and 76.70%, respectively. [8] Robert Detrano used logistic regression algorithm and obtained 77.0% classification accuracy. The result of this fuzzy expert system in 79% as a well as the expert did.…”
Section: Z = ∑ Xiwimentioning
confidence: 97%
“…[8] MLP+BP algorithm that was used by ToolDiag, RA reached to 65.60%. [8] The classification accuracies obtained with T2, 1R, IB1c and K* which were applied by WEKA, RA are 68.10%, 71.40%, 74.00% and 76.70%, respectively. [8] Robert Detrano used logistic regression algorithm and obtained 77.0% classification accuracy.…”
Section: Z = ∑ Xiwimentioning
confidence: 98%
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