CTAL: Pre-training Cross-modal Transformer for Audio-and-Language Representations
Hang Li, Wenbiao Ding, Yu Kang, Tianqiao Liu, Zhongqin Wu, Zitao Liu
摘要
Existing approaches for audio-language taskspecific prediction focus on building complicated late-fusion mechanisms. However, these models face challenges of overfitting with limited labels and poor generalization. In this paper, we present a Cross-modal Transformer for Audio-and-Language, i.e., CTAL, which aims to learn the intra-and inter-modalities connections between audio and language through two proxy tasks from a large number of audio-and-language pairs: masked language modeling and masked cross-modal acoustic modeling. After fine-tuning our CTAL model on multiple downstream audioand-language tasks, we observe significant improvements on different tasks, including emotion classification, sentiment analysis, and speaker verification. Furthermore, we design a fusion mechanism in the fine-tuning phase, which allows CTAL to achieve better performance. Lastly, we conduct detailed ablation studies to demonstrate that both our novel cross-modality fusion component and audiolanguage pre-training methods contribute to the promising results. The code and pretrained models are available at https:// github.com/tal-ai/CTAL_EMNLP2021.
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- Self-Supervised Audio-and-Text Pre-training with Extremely Low-Resource Parallel DataYu Kang, Tianqiao Liu, Hang Li, Yang Hao 等AAAI 2022 · 被引用 9 次
- From Text to Talk: Audio-Language Model Needs Non-Autoregressive Joint TrainingTianqiao Liu, Xueyi Li, Hao Wang, Haoxuan Li 等ICLR 2026 · 被引用 6 次
- Towards Fine-grained Audio Captioning with Multimodal Contextual FusionShunian Chen, Xinyuan Xie, Zheshu Chen, Owen Lee 等ACL 2026
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