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A Coefficient of Agreement for Nominal Scales
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An Explainable AI Paradigm for Alzheimer’s Diagnosis Using Deep Transfer Learning
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Analysis and Detection of Multilingual Hate Speech Using Transformer Based Deep Learning
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Enhanced Fake News Detection through the Fusion of Deep Learning and Repeat Vector Representations
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Plant Disease Detection in Precision Agriculture: Deep Learning Approaches
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Explainable AI-Based Humerus Fracture Detection and Classification from X-Ray Images
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Exploring BERT and ELMo for Bangla Spam SMS Dataset Creation and Detection
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An Approach of Analyzing Classroom Student Engagement in Multimodal Environment by Using Deep Learning
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Automatic Vulgar Word Extraction Method with Application to Vulgar Remark Detection in Chittagonian Dialect of Bangla
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Multilingual k-Nearest-Neighbor Machine Translation
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Ensemble Deep Learning Approach for ECG-Based Cardiac Disease Detection: Signal and Image Analysis
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Cyberbullying Detection for Low-resource Languages and Dialects: Review of the State of the Art
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EnsMulHateCyb: Multilingual hate speech and cyberbully detection in online social media
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Deep Transfer Learning-Based Foot No-Ball Detection in Live Cricket Match
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Deep Ensemble Network for Sentiment Analysis in Bi-lingual Low-resource Languages
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An Improved Framework for Reliable Cardiovascular Disease Prediction Using Hybrid Ensemble Learning
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Multilingual Cyberbullying Detector (CD) Application for Nigerian Pidgin and Igbo Language Corpus
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Transfer Language Selection for Zero-Shot Cross-Lingual Abusive Language Detection
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Ethical considerations in social media analytics in the context of migration: lessons learned from a Horizon 2020 project
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Using BERT for Multi-Label Multi-Language Web Page Classification
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Gated recurrent unit with multilingual universal sentence encoder for Arabic aspect-based sentiment analysis
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Improving classifier training efficiency for automatic cyberbullying detection with Feature Density
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A multilingual offensive language detection method based on transfer learning from transformer fine-tuning model
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Abusive content detection in transliterated Bengali-English social media corpus
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Multilingual Offensive Language Identification for Low-resource Languages
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Leveraging Multilingual Transformers for Hate Speech Detection
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DeepHateExplainer: Explainable Hate Speech Detection in Under-resourced Bengali Language
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Bangla Documents Classification using Transformer Based Deep Learning Models
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HEMOS: A novel deep learning-based fine-grained humor detecting method for sentiment analysis of social media
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Robust and Consistent Estimation of Word Embedding for Bangla Language by fine-tuning Word2Vec Model
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A Multilingual Framework of CNN and Bi-LSTM for Emotion Classification
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Extending Multilingual BERT to Low-Resource Languages
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A Multilingual Evaluation for Online Hate Speech Detection
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Semi-Supervised Bidirectional Long Short-Term Memory and Conditional Random Fields Model for Named-Entity Recognition Using Embeddings from Language Models Representations
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Hateful Speech Detection in Public Facebook Pages for the Bengali Language
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Multilingual Cyber Abuse Detection using Advanced Transformer Architecture
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Development of Output Correction Methodology for Long Short Term Memory-Based Speech Recognition
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RoBERTa: A Robustly Optimized BERT Pretraining Approach
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Aggression Detection on Multilingual Social Media Text
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Multilingual Cyberbullying Detection System
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Bangla Document Categorisation using Multilayer Dense Neural Network with TF-IDF
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Word Embedding Based Multinomial Naive Bayes Algorithm for Spam Filtering
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Multilingual Sentiment Analysis: An RNN-Based Framework for Limited Data
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Multilingual opinion mining on YouTube - A convolutional N-gram BiLSTM word embedding
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Multilingual cyberbullying detection system: Detecting cyberbullying in Arabic content
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Multilingual Code-switching Identification via LSTM Recurrent Neural Networks
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Combining multiple classifiers using vote based classifier ensemble technique for named entity recognition
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Multilingual MLP features for low-resource LVCSR systems
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In the Service of Online Order: Tackling Cyber-Bullying with Machine Learning and Affect Analysis
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CAO: A Fully Automatic Emoticon Analysis System Based on Theory of Kinesics
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A Multilingual Named Entity Recognition System Using Boosting and C4.5 Decision Tree Learning Algorithms
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Measuring the Reliability of Qualitative Text Analysis Data
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A Comparison of Event Models for Naive Bayes Anti-Spam E-Mail Filtering
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Deep-BERT: Transfer Learning for Classifying Multilingual Offensive Texts on Social Media
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B-NER: A Novel Bangla Named Entity Recognition Dataset With Largest Entities and Its Baseline Evaluation
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Exploring Deep Transfer Learning Ensemble for Improved Diagnosis and Classification of Alzheimer's Disease
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Bangla-BERT: Transformer-Based Efficient Model for Transfer Learning and Language Understanding
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Reason Based Machine Learning Approach to Detect Bangla Abusive Social Media Comments
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Classification Model Evaluation Metrics
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An evolutionary approach to comparative analysis of detecting Bangla abusive text
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YNU@Dravidian-CodeMix-FIRE2020: XLM-RoBERTa for Multi-language Sentiment Analysis
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Learning Deep on Cyberbullying is Always Better Than Brute Force
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Machine Learning and Affect Analysis Against Cyber-Bullying
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An information-theoretic perspective of tf-idf measures
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A Novel Approach to Detect Stroke from 2D Images Using Deep Learning
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Natural Language Processing with Python: Natural Language Processing Using NLTK ; CreateSpace Independent Publishing Platform: Scotts Valley, CA, USA
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Results of the PolEval 2019 Shared Task 6: First Dataset and Open Shared Task for Automatic Cyberbullying Detection in Polish Twitter
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Natural Language Processing: Python and NLTK
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an extensive comparison of the performance of traditional machine learning (ML) models, with Support Vector Machine (SVM) emerging as the top performer, thus achieving an accuracy of 0.711
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Comparing Ensemble Techniques for Bilingual Multiclass Classification of Online Reviews
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Vulgar Remarks Detection in Chittagonian Dialect of Bangla.
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evaluated ensemble models including Bagging (0.70 accuracy), Boosting (0.69 accuracy), and Voting (0.72 accuracy), thus demonstrating promising results
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To curate a comprehensive dataset comprising at minimum five thousand manually collected samples from both Bangla and Chittagonian languages, thereby ensuring balanced representation
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To ensure the production of high-quality ground truth data through meticulous manual labeling by human annotators validated using Krippendorff’s alpha [29] and Cohen’s kappa [30] scores
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To propose and evaluate hybrid network-based models,
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The dataset was meticulously compiled, thus containing manually gathered samples from both Bangla and Chittagonian languages
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Bangladesh Telecommunication Regulatory Commission
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proposed a series of hybrid network-based models, such as BiLSTM+GRU, CNN+LSTM, CNN+BiLSTM, and CNN+GRU, thus achieving accuracies ranging from 0.78 to 0.804
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Data storage was conducted securely and exclusively for research purposes
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explored Deep Learning (DL) models, particularly Convolutional Neural Network (CNN), which outperformed traditional ML approaches with accuracies ranging from 0.69 to 0.811