Papers with similarity
StyleTTS-ZS: Efficient High-Quality Zero-Shot Text-to-Speech Synthesis with Distilled Time-Varying Style Diffusion (2025.naacl-long)
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| Challenge: | Recent advances in text-to-speech (TTS) models have led to improvements in speaker prosody and voices modeling. |
| Approach: | They propose an efficient zero-shot TTS model that leverages distilled time-varying style diffusion to capture diverse speaker identities and prosodies. |
| Outcome: | The proposed model surpasses state-of-the-art models in both naturalness and similarity while reducing inference speed by 90%. |
HG2Vec: Improved Word Embeddings from Dictionary and Thesaurus Based Heterogeneous Graph (2022.coling-1)
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| Challenge: | Existing models that learn word embeddings rely on a large corpus of data . however, these models require massive time and space for data pre-processing and training . |
| Approach: | They propose a model that learns word embeddings utilizing only dictionaries and thesauri . they exploit a new context-focused loss model that models transitive relationships between word pairs . |
| Outcome: | The proposed model reaches the state-of-art on multiple word similarity and relatedness benchmarks. |
Rethinking Word Similarity: Semantic Similarity through Classification Confusion (2025.naacl-long)
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| Challenge: | Word similarity measures cannot capture context-dependent, asymmetrical, polysemous nature of semantic similarity. |
| Approach: | They propose a new measure of similarity that reframes semantic similarity in terms of feature-based classification confusion. |
| Outcome: | The proposed model is comparable to cosine similarity in matching human similarity judgments across several datasets and can measure similarity using predetermined features of interest. |
AnlamVer: Semantic Model Evaluation Dataset for Turkish - Word Similarity and Relatedness (C18-1)
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| Challenge: | a dataset for semantic model evaluation for Turkish is not available for the language . a similarity and relatedness evaluation resource is needed for higher level tasks . |
| Approach: | They propose a semantic model evaluation dataset for Turkish that evaluates word similarity and word relatedness tasks while discriminating those two relations from each other. |
| Outcome: | The proposed dataset is designed to evaluate word similarity and word relatedness tasks in Turkish. |