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Can I read Skin Disease Prediction Using Ensemble Methods and a New Hybrid Feature Selection Technique on EtoBox?
Skin Disease Prediction Using Ensemble Methods and a New Hybrid Feature Selection Technique by Anurag Kumar Verma; Saurabh Pal; B. B. Tiwari is a Computer Science article available to read on EtoBox.
What is Skin Disease Prediction Using Ensemble Methods and a New Hybrid Feature Selection Technique about?
Now-a-days Skin disease is very common worldwide problem. We have preset this study for the prediction of skin disease. Based on data from UCI data set, there are 34 attributes which plays a vital role in the skin disease diagnosis but all are not important. In this paper we have analyzed only those important attributes which give best accuracy in prediction of skin disease. To select important attributes, we have applied a new hybrid approach using three feature extraction techniques Chi Square, Information Gain and Principle Component Analysis (PCA) and then combining them to select the best possible data subset of skin disease data set. Six base learners Gaussian Naïve Bayesian (NB), K-Nearest Neighbour (KNN), Decision Tree (DT), Support Vector Machine (SVM), Random Forest (RF) and Multilayer Perceptron (MLP) are used to evaluate the prediction performance of base learners. Boosting, Bagging and Stacking ensemble techniques are applied on base learners to enhance the results of the proposed model. In this paper, a new proposed method of hybrid feature selection technique is used for evaluating the performance of base learners and we find that reduced data subset performed is hig
Who reads Skin Disease Prediction Using Ensemble Methods and a New Hybrid Feature Selection Technique?
It is typically read by researchers, students, and practitioners in Computer Science.
- Author
- Anurag Kumar Verma; Saurabh Pal; B. B. Tiwari
- Publisher
- Springer-Verlag; Springer Science and Business Media LLC (ISSN 2520-8438)
- Published
- 2020
- Language
- EN
- Field
- Computer Science (Physical Sciences)