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Lukas Drude

Researcher at University of Paderborn

Publications -  49
Citations -  2160

Lukas Drude is an academic researcher from University of Paderborn. The author has contributed to research in topics: Artificial neural network & Beamforming. The author has an hindex of 21, co-authored 47 publications receiving 1580 citations. Previous affiliations of Lukas Drude include Amazon.com & Nippon Telegraph and Telephone.

Papers
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Proceedings ArticleDOI

Neural network based spectral mask estimation for acoustic beamforming

TL;DR: A neural network based approach to acoustic beamforming is presented, used to estimate spectral masks from which the Cross-Power Spectral Density matrices of speech and noise are estimated, which are used to compute the beamformer coefficients.
Proceedings ArticleDOI

BLSTM supported GEV beamformer front-end for the 3RD CHiME challenge

TL;DR: A new beamformer front-end for Automatic Speech Recognition that leverages the power of a bi-directional Long Short-Term Memory network to robustly estimate soft masks for a subsequent beamforming step and achieves a 53% relative reduction of the word error rate over the best baseline enhancement system for the relevant test data set.
Proceedings ArticleDOI

Beamnet: End-to-end training of a beamformer-supported multi-channel ASR system

TL;DR: This paper presents an end-to-end training approach for a beamformer-supported multi-channel ASR system, where a neural network which estimates masks for a statistically optimum beamformer is jointly trained with a network for acoustic modeling.
Journal ArticleDOI

Photovoltaics (PV) and electric vehicle-to-grid (V2G) strategies for peak demand reduction in urban regions in Brazil in a smart grid environment

TL;DR: In this paper, the authors analyzed the peak demand energy market for V2G in the urban region of Florianopolis, Brazil, and introduced two different dispatch strategies developed for the Brazilian energy market in the light of new tariff regulations, which are expected to go into effect starting in 2014.
Proceedings Article

NARA-WPE: A Python package for weighted prediction error dereverberation in Numpy and Tensorflow for online and offline processing

TL;DR: NARA-WPE is a Python software package providing implementations of the weighted prediction error (WPE) dereverberation algorithm which improves the perceptual quality of the signal and improving the recognition performance of downstream automatic speech recognition (ASR).