Search Results for author: Rainer Kelz

Found 9 papers, 5 papers with code

Differentiable Dictionary Search: Integrating Linear Mixing with Deep Non-Linear Modelling for Audio Source Separation

no code implementations28 Nov 2022 Lukáš Samuel Marták, Rainer Kelz, Gerhard Widmer

This paper describes several improvements to a new method for signal decomposition that we recently formulated under the name of Differentiable Dictionary Search (DDS).

Audio Source Separation

Probabilistic Modelling of Signal Mixtures with Differentiable Dictionaries

no code implementations28 Nov 2022 Lukáš Samuel Marták, Rainer Kelz, Gerhard Widmer

We introduce a novel way to incorporate prior information into (semi-) supervised non-negative matrix factorization, which we call differentiable dictionary search.

Nonlinear Denoising, Linear Demixing

no code implementations NeurIPS Workshop ICBINB 2021 Rainer Kelz, Gerhard Widmer

We cast the combinatorial problem of polyphonic piano transcription as a two stage process.

Denoising

Learning to Read and Follow Music in Complete Score Sheet Images

1 code implementation21 Jul 2020 Florian Henkel, Rainer Kelz, Gerhard Widmer

This paper addresses the task of score following in sheet music given as unprocessed images.

Position

Audio-Conditioned U-Net for Position Estimation in Full Sheet Images

1 code implementation16 Oct 2019 Florian Henkel, Rainer Kelz, Gerhard Widmer

The goal of score following is to track a musical performance, usually in the form of audio, in a corresponding score representation.

Multimodal Deep Learning Position

Learning to Transcribe by Ear

no code implementations29 May 2018 Rainer Kelz, Gerhard Widmer

Within this conceptual framework, the transcription process can be described as the agent interacting with the instrument in the environment, and obtaining reward by playing along with what it hears.

Investigating Label Noise Sensitivity of Convolutional Neural Networks for Fine Grained Audio Signal Labelling

1 code implementation28 May 2018 Rainer Kelz, Gerhard Widmer

We measure the effect of small amounts of systematic and random label noise caused by slightly misaligned ground truth labels in a fine grained audio signal labeling task.

On the Potential of Simple Framewise Approaches to Piano Transcription

2 code implementations15 Dec 2016 Rainer Kelz, Matthias Dorfer, Filip Korzeniowski, Sebastian Böck, Andreas Arzt, Gerhard Widmer

In an attempt at exploring the limitations of simple approaches to the task of piano transcription (as usually defined in MIR), we conduct an in-depth analysis of neural network-based framewise transcription.

Deep Linear Discriminant Analysis

2 code implementations15 Nov 2015 Matthias Dorfer, Rainer Kelz, Gerhard Widmer

The central idea of this paper is to put LDA on top of a deep neural network.

Dimensionality Reduction

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