SOTAVerified

Aspect-Based Sentiment Analysis (ABSA)

Aspect-Based Sentiment Analysis (ABSA) is a Natural Language Processing task that aims to identify and extract the sentiment of specific aspects or components of a product or service. ABSA typically involves a multi-step process that begins with identifying the aspects or features of the product or service that are being discussed in the text. This is followed by sentiment analysis, where the sentiment polarity (positive, negative, or neutral) is assigned to each aspect based on the context of the sentence or document. Finally, the results are aggregated to provide an overall sentiment for each aspect.

And recent works propose more challenging ABSA tasks to predict sentiment triplets or quadruplets (Chen et al., 2022), the most influential of which are ASTE (Peng et al., 2020; Zhai et al., 2022), TASD (Wan et al., 2020), ASQP (Zhang et al., 2021a) and ACOS with an emphasis on the implicit aspects or opinions (Cai et al., 2020a).

( Source: MvP: Multi-view Prompting Improves Aspect Sentiment Tuple Prediction )

Papers

Showing 1–25 of 469 papers

TitleStatusHype
Multi-Domain ABSA Conversation Dataset Generation via LLMs for Real-World Evaluation and Model Comparison—0
CrosGrpsABS: Cross-Attention over Syntactic and Semantic Graphs for Aspect-Based Sentiment Analysis in a Low-Resource Language—0
From Annotation to Adaptation: Metrics, Synthetic Data, and Aspect Extraction for Aspect-Based Sentiment Analysis with Large Language Models—0
Multi-Scale and Multi-Objective Optimization for Cross-Lingual Aspect-Based Sentiment Analysis—0
Do we still need Human Annotators? Prompting Large Language Models for Aspect Sentiment Quad PredictionCode0
M-ABSA: A Multilingual Dataset for Aspect-Based Sentiment AnalysisCode1
Multi-View Attention Syntactic Enhanced Graph Convolutional Network for Aspect-based Sentiment AnalysisCode0
STAR: Stepwise Task Augmentation and Relation Learning for Aspect Sentiment Quad Prediction—0
DisSim-FinBERT: Text Simplification for Core Message Extraction in Complex Financial Texts—0
DS^2-ABSA: Dual-Stream Data Synthesis with Label Refinement for Few-Shot Aspect-Based Sentiment AnalysisCode1
Evaluating Zero-Shot Multilingual Aspect-Based Sentiment Analysis with Large Language ModelsCode0
Multi-Task Learning with LLMs for Implicit Sentiment Analysis: Data-level and Task-level Automatic Weight Learning—0
PGSO: Prompt-based Generative Sequence Optimization Network for Aspect-based Sentiment Analysis—0
Single Ground Truth Is Not Enough: Add Linguistic Variability to Aspect-based Sentiment Analysis Evaluation—0
Make Compound Sentences Simple to Analyze: Learning to Split Sentences for Aspect-based Sentiment AnalysisCode0
ASTE Transformer Modelling Dependencies in Aspect-Sentiment Triplet ExtractionCode0
Enhancing Aspect-based Sentiment Analysis in Tourism Using Large Language Models and Positional Information—0
Exploring ChatGPT-based Augmentation Strategies for Contrastive Aspect-based Sentiment Analysis—0
Masking The Bias : From Echo Chambers to Large Scale Aspect-Based Sentiment AnalysisCode0
Instruct-DeBERTa: A Hybrid Approach for Aspect-based Sentiment Analysis on Textual Reviews—0
PanoSent: A Panoptic Sextuple Extraction Benchmark for Multimodal Conversational Aspect-based Sentiment Analysis—0
GERestaurant: A German Dataset of Annotated Restaurant Reviews for Aspect-Based Sentiment Analysis—0
Fine-tuning multilingual language models in Twitter/X sentiment analysis: a study on Eastern-European V4 languages—0
Enhancing Long-Range Dependency with State Space Model and Kolmogorov-Arnold Networks for Aspect-Based Sentiment Analysis—0
Deep Content Understanding Toward Entity and Aspect Target Sentiment Analysis on Foundation ModelsCode0
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Benchmark Results

#ModelMetricClaimedVerifiedStatus
1ABSA-DeBERTaMean Acc (Restaurant + Laptop)8,611—Unverified
2MT-ISAMean Acc (Restaurant + Laptop)89.21—Unverified
3RVISAMean Acc (Restaurant + Laptop)89.1—Unverified
4LSA+DeBERTa-V3-LargeMean Acc (Restaurant + Laptop)88.27—Unverified
5MaskedABSAMean Acc (Restaurant + Laptop)86.95—Unverified
6LCF-ATEPCMean Acc (Restaurant + Laptop)86.24—Unverified
7BERT-IL FinetunedRestaurant (Acc)86.2—Unverified
8DPL-BERTMean Acc (Restaurant + Laptop)85.75—Unverified
9RoBERTa+MLPMean Acc (Restaurant + Laptop)85.58—Unverified
10KaGRMN-DSGMean Acc (Restaurant + Laptop)84.61—Unverified
#ModelMetricClaimedVerifiedStatus
1MvP (multi-task)F1 (L14)65.3—Unverified
2ASTE-TransformerF1 (L14)64.9—Unverified
3Seq2PathF1 (L14)64.82—Unverified
4MvPF1 (L14)63.33—Unverified
5UIEF1 (L14)62.94—Unverified
6AugABSAF1 (L14)62.66—Unverified
7LEGO-ABSA (multi-task)F1 (L14)62.2—Unverified
8DLOF1 (L14)61.46—Unverified
9ParaphraseF1 (L14)61.13—Unverified
10Span-ASTEF1 (L14)59.38—Unverified
#ModelMetricClaimedVerifiedStatus
1MvP (multi-task)F1 (R15)52.21—Unverified
2MvPF1 (R15)51.04—Unverified
3AugABSAF1 (R15)50.01—Unverified
4DLOF1 (R15)48.18—Unverified
5ParaphraseF1 (R15)46.93—Unverified
6LEGO-ABSA (multi-task)F1 (R15)46.1—Unverified
7GASF1 (R15)45.98—Unverified
8Gemma-3-27B (50-shot, self-consistency learning)F1 (R15)41.74—Unverified
9Gemma-3-27B (10-shot, self-consistency learning)F1 (R15)39.95—Unverified
10TAS-BRETF1 (R15)34.78—Unverified
#ModelMetricClaimedVerifiedStatus
1MvP (multi-task)F1 (R15)64.74—Unverified
2MvPF1 (R15)64.53—Unverified
3ParaphraseF1 (R15)63.06—Unverified
4DLOF1 (R15)62.95—Unverified
5LEGO-ABSA (multi-task)F1 (R15)62.3—Unverified
6Gemma-3-27B (50-shot, self-consistency learning)F1 (R15)62.12—Unverified
7GASF1 (R15)60.63—Unverified
8TAS-BERTF1 (R15)57.51—Unverified
9Gemma-3-27B (10-shot, self-consistency learning)F1 (R15)54.37—Unverified
10ChatGPT (gpt-3.5-turbo, few-shot)F1 (R16)46.51—Unverified
#ModelMetricClaimedVerifiedStatus
1MvPF1 (Laptop)43.92—Unverified
2MvP (muilti-task)F1 (Laptop)43.84—Unverified
3DLOF1 (Laptop)43.64—Unverified
4ParaphraseF1 (Laptop)43.51—Unverified
5UnifiedABSA (multi-task)F1 (Laptop)42.58—Unverified
6ChatGPT (gpt-3.5-turbo, few-shot)F1 (Restaurant)37.71—Unverified
7Extract-ClassifyF1 (Laptop)36.42—Unverified
8TAS-BERTF1 (Laptop)27.31—Unverified
9ChatGPT (gpt-3.5-turbo, zero-shot)F1 (Restaurant)27.11—Unverified
#ModelMetricClaimedVerifiedStatus
1InstructABSAF179.34—Unverified
2FS-ABSAF171.16—Unverified
3SPANF168.06—Unverified
4RACL-BERTF163.4—Unverified
5BERT-E2E-ABSAF161.12—Unverified
6DOERF160.35—Unverified
7IMNF158.37—Unverified
8E2E-TBSAF157.9—Unverified
9Double-propagationF127.1—Unverified
#ModelMetricClaimedVerifiedStatus
1YOROAcc86.08—Unverified
2RGAT+Acc84.52—Unverified
3TGCN + BERTAcc83.68—Unverified
4CapsNet-BERTAcc83.39—Unverified
5CapsNet-BERT-DRAcc82.97—Unverified
#ModelMetricClaimedVerifiedStatus
1BERT-pair-QA-BAspect87.9—Unverified
2BERT-pair-QA-MAspect86.4—Unverified
3Liu et al.Aspect78.5—Unverified
4Sentic LSTM + TA + SAAspect78.18—Unverified
5LSTM-LOCAspect69.3—Unverified
#ModelMetricClaimedVerifiedStatus
1DeBERTa-pair-largeF1 (%)80.9—Unverified
2RoBERTa-pair-largeF1 (%)80—Unverified
3BERT-single-largeF1 (%)78.8—Unverified
4BERT-PTF1 (%)78.8—Unverified
#ModelMetricClaimedVerifiedStatus
1InstructABSALaptop (F1)92.3—Unverified
2BERT-PTLaptop (F1)84.26—Unverified
3SyMuxLaptop (F1)78.99—Unverified
4RNCRFLaptop (F1)78.42—Unverified
#ModelMetricClaimedVerifiedStatus
1gpt-3.5 finetunedF183.76—Unverified
2FS-ABSAF171.16—Unverified
3RACL-BERTF163.4—Unverified
#ModelMetricClaimedVerifiedStatus
1MaskedABSARestaurant (Acc)91.53—Unverified
2HAABSA++Restaurant (Acc)81.7—Unverified
3HAABSARestaurant (Acc)80.6—Unverified
#ModelMetricClaimedVerifiedStatus
1BERT-pair-QA-BAccuracy (3-way)89.9—Unverified
2ATLXAccuracy (3-way)82.62—Unverified
#ModelMetricClaimedVerifiedStatus
1HGCNAcc78.64—Unverified
#ModelMetricClaimedVerifiedStatus
1HGCNAcc84.09—Unverified
#ModelMetricClaimedVerifiedStatus
1HGCNAcc82.66—Unverified
#ModelMetricClaimedVerifiedStatus
1HGCNAcc89.84—Unverified