2022
DOI: 10.1007/978-3-031-21743-2_7
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Complement Naive Bayes Classifier for Sentiment Analysis of Internet Movie Database

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Cited by 10 publications
(7 citation statements)
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References 27 publications
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“…Proposed Method Accuracy [15] AlexNet CNN 92.50% [13] KOA Based on BILSTM Network 84.09% [51] Deep learning-based method 90.60% [52] Hybrid deep learning 93.84% [53] Linear Model and Naïve Bayes 75.13% [54] Ensemble learning method 89.50% [55] SVM and DL 84.60% [56] Neural network 90.00% [22] RetNet-10 method 98.65% [23] DR-CCTNet method 90.17% Proposed Model CNN(Proposed) 95.27%…”
Section: Namementioning
confidence: 99%
“…Proposed Method Accuracy [15] AlexNet CNN 92.50% [13] KOA Based on BILSTM Network 84.09% [51] Deep learning-based method 90.60% [52] Hybrid deep learning 93.84% [53] Linear Model and Naïve Bayes 75.13% [54] Ensemble learning method 89.50% [55] SVM and DL 84.60% [56] Neural network 90.00% [22] RetNet-10 method 98.65% [23] DR-CCTNet method 90.17% Proposed Model CNN(Proposed) 95.27%…”
Section: Namementioning
confidence: 99%
“…(6) The systems proffer data-driven insights, which serve as a fulcrum for informed decision-making in pest management strategies [20]. (7) The optimization of pest control measures facilitated by these systems translates into substantial cost efficiencies for agriculturalists and landowners alike [21]. (8) Resistance to pesticides is a growing concern, and targeted pest control strategies made viable through these systems can play a significant role in managing this resistance [22].…”
Section: Pest Recognition Systems and Datasetmentioning
confidence: 99%
“…A myriad of autonomous pest recognition systems leveraging machine learning algorithms have been developed [3,7]. In a notable study, Wu et al [8] compiled an extensive insect dataset, IP102, which encompasses 102 classes and 75,000 images, and their evaluation employed various machine learning and deep learning methodologies.…”
Section: Introductionmentioning
confidence: 99%
“…Truncated SVD was employed to reduce the dimensionality of the features to 127. A Complement NB class was used to train a Naive Bayes classifier with the obtained features and target variables for fitting [17]. The model parameters were obtained, and predictions were made, resulting in an accuracy output of 1.…”
Section: Introductionmentioning
confidence: 99%