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      Genre-Agnostic Key Classification With Convolutional Neural Networks

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          Abstract

          We propose modifications to the model structure and training procedure to a recently introduced Convolutional Neural Network for musical key classification. These modifications enable the network to learn a genre-independent model that performs better than models trained for specific music styles, which has not been the case in existing work. We analyse this generalisation capability on three datasets comprising distinct genres. We then evaluate the model on a number of unseen data sets, and show its superior performance compared to the state of the art. Finally, we investigate the model's performance on short excerpts of audio. From these experiments, we conclude that models need to consider the harmonic coherence of the whole piece when classifying the local key of short segments of audio.

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          What's Key for Key? The Krumhansl-Schmuckler Key-Finding Algorithm Reconsidered

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            Author and article information

            Journal
            15 August 2018
            Article
            1808.05340
            ab3dd0fd-bd2a-435a-83c4-041020b4c533

            http://creativecommons.org/licenses/by/4.0/

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            Custom metadata
            Published at the 19th International Society for Music Information Retrieval Conference
            cs.SD cs.LG eess.AS

            Artificial intelligence,Electrical engineering,Graphics & Multimedia design

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