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eess.AS2026

Rethinking Masking Strategies for Masked Prediction-based Audio Self-supervised Learning

Daisuke Niizumi, Daiki Takeuchi, Masahiro Yasuda +3

Since the introduction of Masked Autoencoders, various improvements to masking techniques have been explored. In this paper, we rethink masking strategies for audio representation…

eess.AS2025

CLAP-ART: Automated Audio Captioning with Semantic-rich Audio Representation Tokenizer

Daiki Takeuchi, Binh Thien Nguyen, Masahiro Yasuda +3

Automated Audio Captioning (AAC) aims to describe the semantic contexts of general sounds, including acoustic events and scenes, by leveraging effective acoustic features. To enhan…

eess.AS2025

Towards Pre-training an Effective Respiratory Audio Foundation Model

Daisuke Niizumi, Daiki Takeuchi, Masahiro Yasuda +3

Recent advancements in foundation models have sparked interest in respiratory audio foundation models. However, the effectiveness of applying conventional pre-training schemes to d…

eess.AS2025

Assessing the Utility of Audio Foundation Models for Heart and Respiratory Sound Analysis

Daisuke Niizumi, Daiki Takeuchi, Masahiro Yasuda +3

Pre-trained deep learning models, known as foundation models, have become essential building blocks in machine learning domains such as natural language processing and image domain…

eess.AS2025

M2D-CLAP: Exploring General-purpose Audio-Language Representations Beyond CLAP

Daisuke Niizumi, Daiki Takeuchi, Masahiro Yasuda +3

Contrastive language-audio pre-training (CLAP), which learns audio-language representations by aligning audio and text in a common feature space, has become popular for solving aud…

eess.AS2025

Baseline Systems and Evaluation Metrics for Spatial Semantic Segmentation of Sound Scenes

Binh Thien Nguyen, Masahiro Yasuda, Daiki Takeuchi +3

Immersive communication has made significant advancements, especially with the release of the codec for Immersive Voice and Audio Services. Aiming at its further realization, the D…