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 41514200 of 5630 papers

TitleStatusHype
PhonSenticNet: A Cognitive Approach to Microtext Normalization for Concept-Level Sentiment Analysis0
Understanding Perceptions and Attitudes in Breast Cancer Discussions on Twitter0
Examining Structure of Word Embeddings with PCA0
Deep learning based mood tagging for Chinese song lyrics0
An Efficient Model for Sentiment Analysis of Electronic Product Reviews in Vietnamese0
Weakly-Supervised Deep Learning for Domain Invariant Sentiment Classification0
Generative Sentiment Analysis via Latent Category Distribution and Constrained Decoding0
Tensor Train Low-rank Approximation (TT-LoRA): Democratizing AI with Accelerated LLMs0
Ontology of Belief Diversity: A Community-Based Epistemological Approach0
Using LLMs to Establish Implicit User Sentiment of Software Desirability0
Tracking Emotional Dynamics in Chat Conversations: A Hybrid Approach using DistilBERT and Emoji Sentiment Analysis0
Efficient Solutions For An Intriguing Failure of LLMs: Long Context Window Does Not Mean LLMs Can Analyze Long Sequences Flawlessly0
Fine-tuning multilingual language models in Twitter/X sentiment analysis: a study on Eastern-European V4 languages0
OneLove beyond the field -- A few-shot pipeline for topic and sentiment analysis during the FIFA World Cup in Qatar0
Graph Neural Network Framework for Sentiment Analysis Using Syntactic Feature0
2-Tier SimCSE: Elevating BERT for Robust Sentence Embeddings0
3arif: A Corpus of Modern Standard and Egyptian Arabic Tweets Annotated for Epistemic Modality Using Interactive Crowdsourcing0
7x1-PT: um Corpus extra\' do Twitter para An\'alise de Sentimentos em L\' Portuguesa (7x1-PT: a Corpus extracted from Twitter for Sentiment Analysis in Portuguese Language)0
A Bayesian Model for Joint Unsupervised Induction of Sentiment, Aspect and Discourse Representations0
A Benchmark for Text Quantification Learning Under Real-World Temporal Distribution Shift0
A BERT based Ensemble Approach for Sentiment Classification of Customer Reviews and its Application to Nudge Marketing in e-Commerce0
A BERT based Sentiment Analysis and Key Entity Detection Approach for Online Financial Texts0
A Bi-directional Multi-hop Inference Model for Joint Dialog Sentiment Classification and Act Recognition0
A Boosting-based Algorithm for Classification of Semi-Structured Text using the Frequency of Substructures0
About Emotion Identification in Visual Sentiment Analysis0
About Migration Flows and Sentiment Analysis on Twitter data: Building the Bridge between Technical and Legal Approaches to Data Protection0
A broad-coverage collection of portable NLP components for building shareable analysis pipelines0
A Broad-Coverage Normalization System for Social Media Language0
ABSA-Bench: Towards the Unified Evaluation of Aspect-based Sentiment Analysis Research0
Abstractive Summarization of Product Reviews Using Discourse Structure0
A business context aware decision-making approach for selecting the most appropriate sentiment analysis technique in e-marketing situations0
A Calibration Method for Evaluation of Sentiment Analysis0
A Case Study of Chinese Sentiment Analysis on Social Media Reviews Based on LSTM0
A Case Study of Machine Translation in Financial Sentiment Analysis0
A Case Study of Spanish Text Transformations for Twitter Sentiment Analysis0
ACBiMA: Advanced Chinese Bi-Character Word Morphological Analyzer0
A CCG-based Approach to Fine-Grained Sentiment Analysis0
Accommodations in Tuscany as Linked Data0
Accountable Error Characterization0
Accuracy of a Large Language Model in Distinguishing Anti- And Pro-vaccination Messages on Social Media: The Case of Human Papillomavirus Vaccination0
A Characterization Study of Arabic Twitter Data with a Benchmarking for State-of-the-Art Opinion Mining Models0
Achieving Forgetting Prevention and Knowledge Transfer in Continual Learning0
A Classification of Adjectives for Polarity Lexicons Enhancement0
A Code-Switching Corpus of Turkish-German Conversations0
A Cognition Based Attention Model for Sentiment Analysis0
A cognitive study of subjectivity extraction in sentiment annotation0
A Combined CNN and LSTM Model for Arabic Sentiment Analysis0
A Combined Pattern-based and Distributional Approach for Automatic Hypernym Detection in Dutch.0
A Comparative Analysis of Fine-Tuned LLMs and Few-Shot Learning of LLMs for Financial Sentiment Analysis0
A Comparative Analysis of the COVID-19 Infodemic in English and Chinese: Insights from Social Media Textual Data0
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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