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 52515300 of 5630 papers

TitleStatusHype
Deep Pyramid Convolutional Neural Networks for Text CategorizationCode0
SETSum: Summarization and Visualization of Student Evaluations of TeachingCode0
Classifying YouTube Comments Based on Sentiment and Type of SentenceCode0
Deep Neural Networks for Bot DetectionCode0
A Challenge Dataset and Effective Models for Aspect-Based Sentiment AnalysisCode0
Deep Learning with Eigenvalue Decay RegularizerCode0
How to Train good Word Embeddings for Biomedical NLPCode0
Deep Learning for Sentiment Analysis : A SurveyCode0
Deep learning for language understanding of mental health concepts derived from Cognitive Behavioural TherapyCode0
HP-BERT: A framework for longitudinal study of Hinduphobia on social media via LLMsCode0
HPCC-YNU at SemEval-2020 Task 9: A Bilingual Vector Gating Mechanism for Sentiment Analysis of Code-Mixed TextCode0
hULMonA: The Universal Language Model in ArabicCode0
Classifying Textual Data with Pre-trained Vision Models through Transfer Learning and Data TransformationsCode0
A Disentangled Adversarial Neural Topic Model for Separating Opinions from Plots in User ReviewsCode0
Human-in-the-Loop Synthetic Text Data Inspection with Provenance TrackingCode0
Deep Learning for Hate Speech Detection in TweetsCode0
Understand me, if you refer to Aspect Knowledge: Knowledge-aware Gated Recurrent Memory NetworkCode0
TLMOTE: A Topic-based Language Modelling Approach for Text OversamplingCode0
USA: Universal Sentiment Analysis Model & Construction of Japanese Sentiment Text Classification and Part of Speech DatasetCode0
A Simple and Effective Approach for Fine Tuning Pre-trained Word Embeddings for Improved Text ClassificationCode0
MigrationsKB: A Knowledge Base of Public Attitudes towards Migrations and their Driving FactorsCode0
A Holistic Framework for Analyzing the COVID-19 Vaccine DebateCode0
Should I visit this place? Inclusion and Exclusion Phrase Mining from ReviewsCode0
A Deep Relevance Model for Zero-Shot Document FilteringCode0
Target-oriented Opinion Words Extraction with Target-fused Neural Sequence LabelingCode0
A Comparative Analysis of Noise Reduction Methods in Sentiment Analysis on Noisy Bangla TextsCode0
Target-specified Sequence Labeling with Multi-head Self-attention for Target-oriented Opinion Words ExtractionCode0
Mining fine-grained opinions on closed captions of YouTube videos with an attention-RNNCode0
Sentence-State LSTM for Text RepresentationCode0
uniblock: Scoring and Filtering Corpus with Unicode Block InformationCode0
TaskDrop: A Competitive Baseline for Continual Learning of Sentiment ClassificationCode0
Hybrid Multimodal Feature Extraction, Mining and Fusion for Sentiment AnalysisCode0
Task-Informed Anti-Curriculum by Masking Improves Downstream Performance on TextCode0
SILC-EFSA: Self-aware In-context Learning Correction for Entity-level Financial Sentiment AnalysisCode0
A Deep Neural Architecture for Sentence-level Sentiment Classification in Twitter Social NetworkingCode0
A SentiWordNet Strategy for Curriculum Learning in Sentiment AnalysisCode0
Predicting Strategic Behavior from Free TextCode0
iACOS: Advancing Implicit Sentiment Extraction with Informative and Adaptive Negative ExamplesCode0
Task-oriented Word Embedding for Text ClassificationCode0
Mining United Nations General Assembly DebatesCode0
IARM: Inter-Aspect Relation Modeling with Memory Networks in Aspect-Based Sentiment AnalysisCode0
Task Refinement Learning for Improved Accuracy and Stability of Unsupervised Domain AdaptationCode0
Citations are not opinions: a corpus linguistics approach to understanding how citations are madeCode0
Chinese Fine-Grained Financial Sentiment Analysis with Large Language ModelsCode0
Predicting the Effects of News Sentiments on the Stock MarketCode0
A Deeper Look into Sarcastic Tweets Using Deep Convolutional Neural NetworksCode0
Predicting The Stock Trend Using News Sentiment Analysis and Technical Indicators in SparkCode0
Adapting Multilingual LLMs to Low-Resource Languages with Knowledge Graphs via AdaptersCode0
A Sentiment Analysis Dataset for Code-Mixed Malayalam-EnglishCode0
TinyBERT: Distilling BERT for Natural Language UnderstandingCode0
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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