Ensemble Model for Stock Price Forecasting: MapReduce Framework for Big Data Handling: An Optimal Trained Hybrid Model for Classification

被引:1
作者
Senthamil Selvi, R. [1 ]
Sankari, V. [2 ]
Ramya, N. [1 ]
Selvi, M. [3 ]
机构
[1] Saranathan Coll Engn, Dept Comp Sci & Engn, Venkateswara Nagar, Madurai Highway, Trichy 620012, Tamil Nadu, India
[2] K Ramakrishnan Coll Engn, Dept Comp Sci & Engn, Samayapuram Kariyamanickam Rd, Tiruchirapalli 621112, Tamil Nadu, India
[3] Sathiyabama Inst Sci & Technol, Dept Comp Sci & Engn, Chennai 600119, Tamil Nadu, India
关键词
Big data; Bi-LSTM; deep maxout; MapReduce; HBPCO;
D O I
10.1142/S0218126624502025
中图分类号
TP3 [计算技术、计算机技术];
学科分类号
0812 ;
摘要
A number of authors have focused on this study to examine how huge data are perceived. A novel big data classification paradigm is introduced by the work's preprocessing, feature extraction and classification techniques. Data normalization is carried out at the preprocessing stage. The MapReduce framework is then utilized to manage the massive data. Statistical features (mean, median, min/max and SD), higher-order statistical features (skewness, kurtosis and enhanced entropy), and correlation-based features are all extracted prior to classification. The Bi-LSTM and deep maxout hybrid classification model classifies the data during the reduction stage. To assure classification accuracy, training will also be deployed by the new Hybrid Butterfly Positioned Coot Optimization (HBPCO) algorithm. The proposed method's accuracy of 97.45% beats the methods of NN (85.13%), CNN (83.78%), RNN (78.37%), Bi-LSTM (82.43%) and SVM (87.83%).
引用
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页数:39
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