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arXiv · 2607.02296

Spatial Speech Perception Systems: A Survey of Sound Source Localization, Directional Enhancement, and Speech Recognition

Abstract

Robust speech understanding in real-world acoustic environments remains a fundamental challenge for intelligent auditory systems such as robot audition, hearing aids, teleconferencing systems, smart speakers, and voice-controlled assistants. These systems must operate under background noise, reverberation, competing speakers, and dynamic acoustic conditions. Spatial speech perception addresses this challenge by exploiting microphone-array information to localize, enhance, and interpret target speech in complex acoustic scenes. This paper surveys spatial speech perception systems with emphasis on the roles of sound source localization (SSL), directional speech enhancement (DSE), and automatic speech recognition (ASR), both individually and within integrated processing pipelines. We review classical signal-processing approaches and recent learning-based methods for microphone-array localization, beamforming, neural enhancement, speech separation, and modern recognition architectures. Beyond component-level analysis, we discuss robustness to noise and reverberation, multi-speaker operation, real-time constraints, and computational efficiency. We also examine representative applications in robot audition, hearing assistance, smart speakers, and teleconferencing, and identify open challenges and future directions toward robust, low-latency, and perception-aware speech systems for complex acoustic environments.

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BibTeXRIS

Pengyuan Shao, Dimitrios Kanoulas. 2026-07-02. Spatial Speech Perception Systems: A Survey of Sound Source Localization, Directional Enhancement, and Speech Recognition. https://arxiv.org/abs/2607.02296

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