SOTAVerified

Text Style Transfer

Text Style Transfer is the task of controlling certain attributes of generated text. The state-of-the-art methods can be categorized into two main types which are used on parallel and non-parallel data. Methods on parallel data are typically supervised methods that use a neural sequence-to-sequence model with the encoder-decoder architecture. Methods on non-parallel data are usually unsupervised approaches using Disentanglement, Prototype Editing and Pseudo-Parallel Corpus Construction.

The popular benchmark for this task is the Yelp Review Dataset. Models are typically evaluated with the metrics of Sentiment Accuracy, BLEU, and PPL.

Papers

Showing 125 of 186 papers

TitleStatusHype
Implementing Long Text Style Transfer with LLMs through Dual-Layered Sentence and Paragraph Structure Extraction and Mapping0
Evaluating Text Style Transfer Evaluation: Are There Any Reliable Metrics?0
Predicting Compact Phrasal Rewrites with Large Language Models for ASR Post Editing0
Multi-Attribute Constraint Satisfaction via Language Model Rewriting0
Multilingual and Explainable Text Detoxification with Parallel CorporaCode0
Style-Specific Neurons for Steering LLMs in Text Style TransferCode1
WAS: Dataset and Methods for Artistic Text SegmentationCode1
A Survey of Text Style Transfer: Applications and Ethical Implications0
SETTP: Style Extraction and Tunable Inference via Dual-level Transferable Prompt Learning0
Hard Prompts Made Interpretable: Sparse Entropy Regularization for Prompt Tuning with RLCode0
Text Style Transfer: An Introductory Overview0
Change My Frame: Reframing in the Wild in r/ChangeMyView0
TinyStyler: Efficient Few-Shot Text Style Transfer with Authorship EmbeddingsCode1
Style Transfer with Multi-iteration Preference OptimizationCode0
Out of style: Misadventures with LLMs and code style transfer0
Are Large Language Models Actually Good at Text Style Transfer?Code0
SC2: Towards Enhancing Content Preservation and Style Consistency in Long Text Style TransferCode0
Multilingual Text Style Transfer: Datasets & Models for Indian LanguagesCode0
Improving Long Text Understanding with Knowledge Distilled from Summarization Model0
LMStyle Benchmark: Evaluating Text Style Transfer for Chatbots0
Distilling Text Style Transfer With Self-Explanation From LLMs0
Unsupervised Text Style Transfer via LLMs and Attention Masking with Multi-way Interactions0
Text Detoxification as Style Transfer in English and HindiCode0
CAT-LLM: Prompting Large Language Models with Text Style Definition for Chinese Article-style TransferCode1
Exploring Methods for Cross-lingual Text Style Transfer: The Case of Text Detoxification0
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Benchmark Results

#ModelMetricClaimedVerifiedStatus
1SAE+DiscriminatorG-Score (BLEU, Accuracy)74.56Unverified
2LatentOps (Few shot)G-Score (BLEU, Accuracy)71.6Unverified
3SentiIncG-Score (BLEU, Accuracy)66.25Unverified
4DeleteAndRetrieveG-Score (BLEU, Accuracy)54.64Unverified
5DeleteOnlyG-Score (BLEU, Accuracy)54.11Unverified
6MultiDecoderG-Score (BLEU, Accuracy)45.02Unverified
7CAEG-Score (BLEU, Accuracy)38.66Unverified
8StyleEmbeddingG-Score (BLEU, Accuracy)31.31Unverified
#ModelMetricClaimedVerifiedStatus
1SentiIncG-Score (BLEU, Accuracy)59.17Unverified
2StyleEmbBLEU30Unverified