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#sentiment-analysis

@JenovaAIAgent: Your brand is being discussed right now — on Reddit threads, YouTube reviews, LinkedIn posts, X mentions, and Amazon li…

X AI KOLs Timeline · 16h ago Cached

Jenova AI launches a brand monitoring tool that searches across multiple platforms (Reddit, YouTube, X, LinkedIn, TikTok, Amazon, Google) in a single request, with smart keyword coverage, sentiment analysis, and competitive comparison.

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#sentiment-analysis

Ideology Prediction of German Political Texts

arXiv cs.CL · 4d ago Cached

The paper proposes a transformer-based model to predict political ideology of German political texts on a continuous left-to-right spectrum. The study compares 13 models and finds DeBERTa-large and Gemma2-2B perform best on different tasks.

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#sentiment-analysis

SSP-based construction of evaluation-annotated data for fine-grained aspect-based sentiment analysis

arXiv cs.CL · 2026-05-11 Cached

This paper presents the construction of a Korean evaluation-annotated corpus (EVAD) for fine-grained aspect-based sentiment analysis in e-commerce reviews using Semi-Automatic Symbolic Propagation. It evaluates KoBERT and KcBERT models on the dataset, achieving high F1 scores in aspect-value pair recognition.

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#sentiment-analysis

100,000+ Movie Reviews from Kazakhstan: Russian, Kazakh, and Code-Switched Texts

Hugging Face Daily Papers · 2026-05-09 Cached

This paper introduces a multilingual dataset of over 100,000 movie reviews from Kazakhstan, containing Russian, Kazakh, and code-switched texts. It benchmarks classical and transformer-based models on sentiment polarity and score classification tasks.

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#sentiment-analysis

YEZE at SemEval-2026 Task 9: Detecting Multilingual, Multicultural and Multievent Online Polarization via Heterogeneous Ensembling

arXiv cs.CL · 2026-05-08 Cached

This paper details the YEZE system for SemEval-2026 Task 9, which detects online polarization in 22 languages using a heterogeneous ensemble of XLM-RoBERTa and mDeBERTa models.

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#sentiment-analysis

How Much Does Persuasion Strategy Matter? LLM-Annotated Evidence from Charitable Donation Dialogues

arXiv cs.CL · 2026-04-23 Cached

Researchers use three open-source LLMs to annotate 10,600 persuader turns in the PersuasionForGood corpus with 41 persuasion strategies, finding that strategy categories explain little donation variance and guilt induction significantly lowers donation rates.

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#sentiment-analysis

Migrant Voices, Local News: Insights on Bridging Community Needs with Media Content

arXiv cs.CL · 2026-04-21 Cached

Researchers from EPFL and Idiap apply NLP methods (topic modeling, sentiment analysis, readability scoring) to over 2000 hyper-local news articles to assess how well local French-language media serves migrant communities. The study combines focus groups with computational text analysis to identify gaps between local news content and migrant readers' needs.

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#sentiment-analysis

Sentiment Analysis of German Sign Language Fairy Tales

arXiv cs.CL · 2026-04-20 Cached

A research paper presenting a dataset and XGBoost-based model for sentiment analysis of German Sign Language (DGS) fairy tales using facial and body motion features extracted via MediaPipe, achieving 63.1% balanced accuracy and demonstrating the importance of both facial and body movements for sentiment communication in sign language.

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#sentiment-analysis

Consistency Analysis of Sentiment Predictions using Syntactic & Semantic Context Assessment Summarization (SSAS)

arXiv cs.CL · 2026-04-20 Cached

This paper presents SSAS (Syntactic & Semantic Context Assessment Summarization), a framework designed to improve consistency in LLM-based sentiment prediction by reducing noise and variance through hierarchical classification and iterative summarization. Empirical evaluation on three industry-standard datasets shows up to 30% improvement in data quality and reliability for enterprise decision-making.

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#sentiment-analysis

Enhancing Financial Sentiment Analysis via Retrieval Augmented Large Language Models

Papers with Code Trending · 2023-10-06 Cached

This paper introduces a retrieval-augmented LLM framework for financial sentiment analysis, achieving 15-48% improvement in accuracy and F1 score over traditional models and LLMs like ChatGPT and LLaMA.

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#sentiment-analysis

Delivering nuanced insights from customer feedback

OpenAI Blog · 2023-01-04 Cached

Yabble has introduced Yabble Count, an AI tool that analyzes customer feedback by categorizing sentiments and organizing unstructured data into themes to help businesses extract actionable insights from customer input.

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#sentiment-analysis

Unsupervised sentiment neuron

OpenAI Blog · 2017-04-06 Cached

OpenAI demonstrates an unsupervised system that learns sentiment representation by training a multiplicative LSTM to predict the next character in Amazon reviews, achieving state-of-the-art sentiment analysis on Stanford Sentiment Treebank (91.8% accuracy) while requiring 30-100x fewer labeled examples than supervised approaches. The model discovers a distinct 'sentiment neuron' that captures sentiment information and can be directly manipulated to control text generation sentiment.

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