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2 results for “Piano Transcription”

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zenodo36/100

Towards Musically Informed Evaluation of Piano Transcription Models

<p>We provide here the evaluation set employed in our experiments described in "Towards Musically Informed Evaluation of Piano Transcription Models", published in the Proceedings of the 25th International Society for Music Information Retrieval Conference (ISMIR), San Francisco, United States, 2024.</p> <p>In this work, we demonstrate musically informed piano transcription metrics using transcriptions derived from three state-of-the-art transcriptions ([1], [2], [3]). To this end, we create an evaluation set that includes (1) a subset of the original audio recordings from the MAESTRO dataset [1], (2) a re-recorded version that subset, and (3) a perturbed version of recordings from both (1) and (2). In this data repository, we provide components (2) and (3).</p> <p>[1] Curtis Hawthorne, Andriy Stasyuk, Adam Roberts, Ian Simon, Cheng-Zhi Anna Huang, Sander Dieleman, Erich Elsen, Jesse Engel, and Douglas Eck, &ldquo;Enabling factorized piano music modeling and generation with the MAESTRO dataset,&rdquo; in International Conference on Learning Representations, 2019. &nbsp;</p> <p>[2] Qiuqiang Kong, Bochen Li, Xuchen Song, Yuan Wan, and Yuxan Wang, &ldquo;High-resolution piano transcription with pedals by regressing onset and offset times,&rdquo; IEEE/ACM Transactions on Audio, Speech and Language Processing, vol. 29, pp. 3707&ndash;3717, 2021. &nbsp;</p> <p>[3] Curtis Hawthorne, Ian Simon, Rigel Swavely, Ethan Manilow, and Jesse Engel. &ldquo;Sequence-to-sequence piano transcription with transformers,&rdquo; in Proceedings of the 22nd International Society for Music Information Retrieval Conference, ISMIR 2021.</p>

opencc-by-4.0Jun 2024View details →
zenodo32/100

Stimuli and Results for "Investigating the Perceptual Validity of Evaluation Metrics for Automatic Piano Music Transcription"

<p>This contains the stimuli and the participants data for the listening tests presented in the paper:</p> <p>Adrien Ycart, Lele Liu, Emmanouil Benetos, Marcus T. Pearce. &quot;Investigating the Perceptual Validity of Evaluation Metrics for Automatic Piano Music Transcription&quot;.&nbsp;<em>Transactions of the International Society for Music Information Retrieval</em>, 3(1):68-81, 2020 .</p> <p>More precisely, it contains:</p> <ul> <li>MAPS_midi_cut.zip: The MIDI files used to create the stimuli&nbsp;</li> <li>cut_points_seconds.zip: The points&nbsp;in seconds at which the MAPS music pieces were cut to make the stimuli. These correspond to manually-selected 5 to 10 seconds chunks, roughly corresponding to musical phrases.</li> <li>listening_test_results.zip: The data gathered during the listening test: <ul> <li>user_data.csv contains data&nbsp;about participants</li> <li>answers_data.csv contains the answers given by all participants</li> <li>comments.txt contains the comments left by the participants.</li> </ul> </li> </ul> <p>For any enquiries, please contact Adrien Ycart (a.ycart@qmul.ac.uk) or Emmanouil Benetos (emmanouil.benetos@qmul.ac.uk).</p> <p>&nbsp;</p>

opencc-by-4.0Apr 2020View details →

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