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CodecBench: A Comprehensive Benchmark for Acoustic and Semantic Evaluation
by
Cheng, Qinyuan
, Gao, Qinghui
, Qiu, Xipeng
, Deng, Ruifan
, Li, Shimin
, Gong, Yitian
, Jin, Luozhijie
, Zhaoye Fei
in
Acoustics
/ Audio data
/ Background noise
/ Benchmarks
/ Codec
/ Datasets
/ Large language models
/ Semantics
2025
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CodecBench: A Comprehensive Benchmark for Acoustic and Semantic Evaluation
by
Cheng, Qinyuan
, Gao, Qinghui
, Qiu, Xipeng
, Deng, Ruifan
, Li, Shimin
, Gong, Yitian
, Jin, Luozhijie
, Zhaoye Fei
in
Acoustics
/ Audio data
/ Background noise
/ Benchmarks
/ Codec
/ Datasets
/ Large language models
/ Semantics
2025
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Do you wish to request the book?
CodecBench: A Comprehensive Benchmark for Acoustic and Semantic Evaluation
by
Cheng, Qinyuan
, Gao, Qinghui
, Qiu, Xipeng
, Deng, Ruifan
, Li, Shimin
, Gong, Yitian
, Jin, Luozhijie
, Zhaoye Fei
in
Acoustics
/ Audio data
/ Background noise
/ Benchmarks
/ Codec
/ Datasets
/ Large language models
/ Semantics
2025
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CodecBench: A Comprehensive Benchmark for Acoustic and Semantic Evaluation
Paper
CodecBench: A Comprehensive Benchmark for Acoustic and Semantic Evaluation
2025
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Overview
With the rise of multimodal large language models (LLMs), audio codec plays an increasingly vital role in encoding audio into discrete tokens, enabling integration of audio into text-based LLMs. Current audio codec captures two types of information: acoustic and semantic. As audio codec is applied to diverse scenarios in speech language model , it needs to model increasingly complex information and adapt to varied contexts, such as scenarios with multiple speakers, background noise, or richer paralinguistic information. However, existing codec's own evaluation has been limited by simplistic metrics and scenarios, and existing benchmarks for audio codec are not designed for complex application scenarios, which limits the assessment performance on complex datasets for acoustic and semantic capabilities. We introduce CodecBench, a comprehensive evaluation dataset to assess audio codec performance from both acoustic and semantic perspectives across four data domains. Through this benchmark, we aim to identify current limitations, highlight future research directions, and foster advances in the development of audio codec. The codes are available at https://github.com/RayYuki/CodecBench.
Publisher
Cornell University Library, arXiv.org
Subject
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