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 55515600 of 5630 papers

TitleStatusHype
Is Prompt-Based Finetuning Always Better than Vanilla Finetuning? Insights from Cross-Lingual Language UnderstandingCode0
Squeezed Very Deep Convolutional Neural Networks for Text ClassificationCode0
Multi-task Learning for Target-dependent Sentiment ClassificationCode0
Recognition of Sarcasms in Tweets Based on Concept Level Sentiment Analysis and Supervised Learning ApproachesCode0
Multi-task Learning of Negation and Speculation for Targeted Sentiment ClassificationCode0
Is the Lecture Engaging for Learning? Lecture Voice Sentiment Analysis for Knowledge Graph-Supported Intelligent Lecturing Assistant (ILA) SystemCode0
Multi-task Learning of Pairwise Sequence Classification Tasks Over Disparate Label SpacesCode0
Sentiment Analysis of Code-Mixed Languages leveraging Resource Rich LanguagesCode0
Text Length Adaptation in Sentiment ClassificationCode0
A Neural Generative Model for Joint Learning Topics and Topic-Specific Word EmbeddingsCode0
Towards Deep Conversational RecommendationsCode0
An Empirical Study on Leveraging Position Embeddings for Target-oriented Opinion Words ExtractionCode0
Two Heads are Better than One: Nested PoE for Robust Defense Against Multi-BackdoorsCode0
Iterative Network Pruning with Uncertainty Regularization for Lifelong Sentiment ClassificationCode0
Multi-Task Text Classification using Graph Convolutional Networks for Large-Scale Low Resource LanguageCode0
MultiVec: a Multilingual and Multilevel Representation Learning Toolkit for NLPCode0
It is Simple Sometimes: A Study On Improving Aspect-Based Sentiment Analysis PerformanceCode0
Multi-View Attention Syntactic Enhanced Graph Convolutional Network for Aspect-based Sentiment AnalysisCode0
RECOMED: A Comprehensive Pharmaceutical Recommendation SystemCode0
Muppet: Massive Multi-task Representations with Pre-FinetuningCode0
Breaking Free Transformer Models: Task-specific Context Attribution Promises Improved Generalizability Without Fine-tuning Pre-trained LLMsCode0
Breaking BERT: Gradient Attack on Twitter Sentiment Analysis for Targeted MisclassificationCode0
Mutilmodal Feature Extraction and Attention-based Fusion for Emotion Estimation in VideosCode0
Sentiment Analysis of Cyberbullying Data in Social MediaCode0
BrainT at IEST 2018: Fine-tuning Multiclass Perceptron For Implicit Emotion ClassificationCode0
An Empirical Study of the Effectiveness of an Ensemble of Stand-alone Sentiment Detection Tools for Software Engineering DatasetsCode0
Towards Detection of Subjective Bias using Contextualized Word EmbeddingsCode0
Recurrent Attention Network on Memory for Aspect Sentiment AnalysisCode0
Two Methods for Domain Adaptation of Bilingual Tasks: Delightfully Simple and Broadly ApplicableCode0
Recurrent Entity Networks with Delayed Memory Update for Targeted Aspect-based Sentiment AnalysisCode0
CrowdCog: A Cognitive Skill based System for Heterogeneous Task Assignment and Recommendation in CrowdsourcingCode0
Joint Embedding of Words and Labels for Text ClassificationCode0
NADI 2022: The Third Nuanced Arabic Dialect Identification Shared TaskCode0
BP-Transformer: Modelling Long-Range Context via Binary PartitioningCode0
Recurrently Controlled Recurrent NetworksCode0
A Deep Convolutional Neural Networks Based Multi-Task Ensemble Model for Aspect and Polarity Classification in Persian ReviewsCode0
Unlocking Cross-Lingual Sentiment Analysis through Emoji Interpretation: A Multimodal Generative AI ApproachCode0
Will sentiment analysis need subculture? A new data augmentation approachCode0
Natural Adversarial Sentence Generation with Gradient-based PerturbationCode0
Cross-Lingual Word Embeddings for Turkic LanguagesCode0
Cross-Lingual Text Classification of Transliterated Hindi and MalayalamCode0
Natural Language Generation for Effective Knowledge DistillationCode0
Jointly Modeling Aspect and Polarity for Aspect-based Sentiment Analysis in Persian ReviewsCode0
Cross-Lingual Sentiment QuantificationCode0
Cross-lingual sentiment classification in low-resource Bengali languageCode0
Natural Language Processing and Sentiment Analysis on Bangla Social Media Comments on Russia–Ukraine War Using TransformersCode0
Recursive Deep Models for Semantic Compositionality Over a Sentiment TreebankCode0
Natural Language Processing for Music Knowledge DiscoveryCode0
BITE: Textual Backdoor Attacks with Iterative Trigger InjectionCode0
Recursive Neural Networks with Bottlenecks Diagnose (Non-)CompositionalityCode0
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Benchmark Results

#ModelMetricClaimedVerifiedStatus
1Word+ES (Scratch)Attack Success Rate100Unverified
2MT-DNN-SMARTAccuracy97.5Unverified
3T5-11BAccuracy97.5Unverified
4MUPPET Roberta LargeAccuracy97.4Unverified
5T5-3BAccuracy97.4Unverified
6ALBERTAccuracy97.1Unverified
7StructBERTRoBERTa ensembleAccuracy97.1Unverified
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