SOTAVerified

Sentiment Analysis

Sentiment Analysis is the task of classifying the polarity of a given text. For instance, a text-based tweet can be categorized into either "positive", "negative", or "neutral". Given the text and accompanying labels, a model can be trained to predict the correct sentiment.

Sentiment Analysis techniques can be categorized into machine learning approaches, lexicon-based approaches, and even hybrid methods. Some subcategories of research in sentiment analysis include: multimodal sentiment analysis, aspect-based sentiment analysis, fine-grained opinion analysis, language specific sentiment analysis.

More recently, deep learning techniques, such as RoBERTa and T5, are used to train high-performing sentiment classifiers that are evaluated using metrics like F1, recall, and precision. To evaluate sentiment analysis systems, benchmark datasets like SST, GLUE, and IMDB movie reviews are used.

Further readings:

Papers

Showing 351400 of 5630 papers

TitleStatusHype
Cross-Domain Sentiment Classification with In-Domain Contrastive LearningCode1
Self-Explaining Structures Improve NLP ModelsCode1
GRUBERT: A GRU-Based Method to Fuse BERT Hidden Layers for Twitter Sentiment AnalysisCode1
SWAFN: Sentimental Words Aware Fusion Network for Multimodal Sentiment AnalysisCode1
HinglishNLP at SemEval-2020 Task 9: Fine-tuned Language Models for Hinglish Sentiment DetectionCode1
SentiX: A Sentiment-Aware Pre-Trained Model for Cross-Domain Sentiment AnalysisCode1
How Can I Explain This to You? An Empirical Study of Deep Neural Network Explanation MethodsCode1
Graph Attention Network with Memory Fusion for Aspect-level Sentiment AnalysisCode1
Jointly Learning Aspect-Focused and Inter-Aspect Relations with Graph Convolutional Networks for Aspect Sentiment AnalysisCode1
Joint Aspect Extraction and Sentiment Analysis with Directional Graph Convolutional NetworksCode1
Fine-Tuning BERT for Sentiment Analysis of Vietnamese ReviewsCode1
Sentiment Classification in Bangla Textual Content: A Comparative StudyCode1
Improving Document-Level Sentiment Analysis with User and Product ContextCode1
Author's Sentiment PredictionCode1
IndicNLPSuite: Monolingual Corpora, Evaluation Benchmarks and Pre-trained Multilingual Language Models for Indian LanguagesCode1
XED: A Multilingual Dataset for Sentiment Analysis and Emotion DetectionCode1
Optimizing Word Segmentation for Downstream TaskCode1
Understanding Pre-trained BERT for Aspect-based Sentiment AnalysisCode1
Cross-Domain Sentiment Classification with Contrastive Learning and Mutual Information MaximizationCode1
AutoPrompt: Eliciting Knowledge from Language Models with Automatically Generated PromptsCode1
A Statistical Framework for Low-bitwidth Training of Deep Neural NetworksCode1
Attention Transfer Network for Aspect-level Sentiment ClassificationCode1
TweetEval: Unified Benchmark and Comparative Evaluation for Tweet ClassificationCode1
Improving BERT Performance for Aspect-Based Sentiment AnalysisCode1
Knowledge Distillation for BERT Unsupervised Domain AdaptationCode1
MTAG: Modal-Temporal Attention Graph for Unaligned Human Multimodal Language SequencesCode1
Deep-HOSeq: Deep Higher Order Sequence Fusion for Multimodal Sentiment AnalysisCode1
Context-Guided BERT for Targeted Aspect-Based Sentiment AnalysisCode1
Fine-Tuning Pre-trained Language Model with Weak Supervision: A Contrastive-Regularized Self-Training ApproachCode1
Text Classification Using Label Names Only: A Language Model Self-Training ApproachCode1
Weakly-Supervised Aspect-Based Sentiment Analysis via Joint Aspect-Sentiment Topic EmbeddingCode1
Cross-Modal BERT for Text-Audio Sentiment AnalysisCode1
Multi-Instance Multi-Label Learning Networks for Aspect-Category Sentiment AnalysisCode1
Identifying Spurious Correlations for Robust Text ClassificationCode1
Aspect Based Sentiment Analysis with Aspect-Specific Opinion SpansCode1
Modulated Fusion using Transformer for Linguistic-Acoustic Emotion RecognitionCode1
Sentence Constituent-Aware Aspect-Category Sentiment Analysis with Graph Attention NetworksCode1
A Multi-task Learning Framework for Opinion Triplet ExtractionCode1
Coupled Oscillatory Recurrent Neural Network (coRNN): An accurate and (gradient) stable architecture for learning long time dependenciesCode1
Learning Rewards from Linguistic FeedbackCode1
GRACE: Gradient Harmonized and Cascaded Labeling for Aspect-based Sentiment AnalysisCode1
Towards Computational Linguistics in Minangkabau Language: Studies on Sentiment Analysis and Machine TranslationCode1
Tasty Burgers, Soggy Fries: Probing Aspect Robustness in Aspect-Based Sentiment AnalysisCode1
Analysis of Models for Decentralized and Collaborative AI on BlockchainCode1
Improving Indonesian Text Classification Using Multilingual Language ModelCode1
Country Image in COVID-19 Pandemic: A Case Study of ChinaCode1
Rank over Class: The Untapped Potential of Ranking in Natural Language ProcessingCode1
Revisiting LSTM Networks for Semi-Supervised Text Classification via Mixed Objective FunctionCode1
HinglishNLP: Fine-tuned Language Models for Hinglish Sentiment DetectionCode1
Jointly Fine-Tuning “BERT-like” Self Supervised Models to Improve Multimodal Speech Emotion RecognitionCode1
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Benchmark Results

#ModelMetricClaimedVerifiedStatus
1Word+ES (Scratch)Attack Success Rate100Unverified
2T5-11BAccuracy97.5Unverified
3MT-DNN-SMARTAccuracy97.5Unverified
4T5-3BAccuracy97.4Unverified
5MUPPET Roberta LargeAccuracy97.4Unverified
6StructBERTRoBERTa ensembleAccuracy97.1Unverified
7ALBERTAccuracy97.1Unverified
8XLNet (single model)Accuracy97Unverified
9SMARTRoBERTaDev Accuracy96.9Unverified
10ELECTRAAccuracy96.9Unverified
#ModelMetricClaimedVerifiedStatus
1RoBERTa-large with LlamBERTAccuracy96.68Unverified
2RoBERTa-largeAccuracy96.54Unverified
3XLNetAccuracy96.21Unverified
4Heinsen Routing + RoBERTa LargeAccuracy96.2Unverified
5RoBERTa-large 355M + Entailment as Few-shot LearnerAccuracy96.1Unverified
6GraphStarAccuracy96Unverified
7DV-ngrams-cosine with NB sub-sampling + RoBERTa.baseAccuracy95.94Unverified
8DV-ngrams-cosine + RoBERTa.baseAccuracy95.92Unverified
9Roberta_Large ST + Cosine Similarity LossAccuracy95.9Unverified
10BERT large finetune UDAAccuracy95.8Unverified
#ModelMetricClaimedVerifiedStatus
1Llama-3.3-70B + CAPOAccuracy62.27Unverified
2Mistral-Small-24B + CAPOAccuracy 60.2Unverified
3Heinsen Routing + RoBERTa LargeAccuracy59.8Unverified
4RoBERTa-large+Self-ExplainingAccuracy59.1Unverified
5Qwen2.5-32B + CAPOAccuracy 59.07Unverified
6Heinsen Routing + GPT-2Accuracy58.5Unverified
7BCN+Suffix BiLSTM-Tied+CoVeAccuracy56.2Unverified
8BERT LargeAccuracy55.5Unverified
9LM-CPPF RoBERTa-baseAccuracy54.9Unverified
10BCN+ELMoAccuracy54.7Unverified
#ModelMetricClaimedVerifiedStatus
1Char-level CNNError4.88Unverified
2SVDCNNError4.74Unverified
3LEAMError4.69Unverified
4fastText, h=10, bigramError4.3Unverified
5SWEM-hierError4.19Unverified
6SRNNError3.96Unverified
7M-ACNNError3.89Unverified
8DNC+CUWError3.6Unverified
9CCCapsNetError3.52Unverified
10Block-sparse LSTMError3.27Unverified
#ModelMetricClaimedVerifiedStatus
1Millions of EmojiTraining Time1,500Unverified
2VLAWEAccuracy93.3Unverified
3RoBERTa-large 355M + Entailment as Few-shot LearnerAccuracy92.5Unverified
4AnglE-LLaMA-7BAccuracy91.09Unverified
5byte mLSTM7Accuracy86.8Unverified
6MEANAccuracy84.5Unverified
7RNN-CapsuleAccuracy83.8Unverified
8Capsule-BAccuracy82.3Unverified
9SuBiLSTM-TiedAccuracy81.6Unverified
10USE_T+CNNAccuracy81.59Unverified