five

Deep Gradient Reinforcement learning for Music Improvisation in cloud computing framework

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NIAID Data Ecosystem2026-05-02 收录
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https://zenodo.org/record/12446057
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The improvised music is further rendered in the MIDI format. The Bach Chorales dataset with six different attributes relevant to musical compositions is employed in implementing the present research. The model was set up in a containerised cloud environment and controlled for smooth load distribution. Five different parameters, such as pitch frequency (PF), standard pitch delay (SPD), average distance between peaks (ADP), note duration gradient (NDG) and pitch class gradient (PCG) are leveraged to assess the quality of the improvised music.
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2024-06-23
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