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Mikolaj Kegler

4 accepted papers

2026

PAS-SE: PERSONALIZED AUXILIARY-SENSOR SPEECH ENHANCEMENT FOR VOICE PICKUP IN HEARABLES

ICASSP 2026poster

Speech enhancement for voice pickup in hearables aims to improve the user's voice by suppressing noise and interfering talkers, while maintaining own-voice quality. For single-channel methods, it is particularly challenging to distinguish the target from interfering talkers without additional contex…

Cited by 0SourcePDFScholar
2023

Self-Supervised Learning for Speech Enhancement Through Synthesis

ICASSP 2023accepted

Modern speech enhancement (SE) networks typically implement noise suppression through time-frequency masking, latent representation masking, or discriminative signal prediction. In contrast, some recent works explore SE via generative speech synthesis, where the system’s output is synthesized by a n…

Cited by 0SourceScholar
2022

SERAB: A Multi-Lingual Benchmark for Speech Emotion Recognition

ICASSP 2022accepted

Recent developments in speech emotion recognition (SER) often leverage deep neural networks (DNNs). Comparing and benchmarking different DNN models can often be tedious due to the use of different datasets and evaluation protocols. To facilitate the process, here, we present the Speech Emotion Recog…

Cited by 0SourceScholar