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FusionAudio-1.2M: Towards Fine-grained Audio Captioning with Multimodal Contextual Fusion (2506.01111v1)

Published 1 Jun 2025 in cs.SD, cs.AI, and eess.AS

Abstract: High-quality, large-scale audio captioning is crucial for advancing audio understanding, yet current automated methods often generate captions that lack fine-grained detail and contextual accuracy, primarily due to their reliance on limited unimodal or superficial multimodal information. Drawing inspiration from human auditory perception, which adeptly integrates cross-modal cues and performs sophisticated auditory scene analysis, we introduce a novel two-stage automated pipeline. This pipeline first employs specialized pretrained models to extract diverse contextual cues (e.g., speech, music, general sounds, and visual information from associated video). A LLM then synthesizes these rich, multimodal inputs to generate detailed and context-aware audio captions. Key contributions of this work include: (1) the proposed scalable method for fine-grained audio caption generation; (2) FusionAudio, a new large-scale dataset comprising 1.2 million such detailed captions, combined with 6 million QA pairs; and (3) enhanced audio models developed using FusionAudio, specifically a CLAP-based audio encoder with superior audio-text alignment and instruction following. This paper paves the way for more nuanced and accurate automated understanding of complex audio environments. Code and data can be found in https://github.com/satsuki2486441738/FusionAudio.

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Authors (8)
  1. Shunian Chen (15 papers)
  2. Xinyuan Xie (2 papers)
  3. Zheshu Chen (1 paper)
  4. Liyan Zhao (2 papers)
  5. Owen Lee (2 papers)
  6. Zhan Su (14 papers)
  7. Qilin Sun (6 papers)
  8. Benyou Wang (109 papers)

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