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Developed by mtg-upf
MAEST is a series of Transformer models based on PASST, focusing on music analysis applications, particularly excelling in music genre classification tasks.
Downloads 148
Release Time : 9/27/2023

Model Overview

MAEST is a pre-trained music audio representation model for music genre classification tasks, capable of predicting 400 music genres.

Model Features

Music genre classification
Capable of accurately classifying 400 music genres, particularly excelling in electronic music and similar styles.
Efficient training
Utilizes efficient supervised training methods, delivering outstanding performance in music representation learning tasks.
Broad downstream applications
The representations extracted from intermediate layers perform well in various music analysis tasks.

Model Capabilities

Music genre classification
Music emotion recognition
Instrument detection

Use Cases

Music analysis
Music genre identification
Identify the music genre of an audio file
Performs well in 400 music genre classification tasks
Music emotion analysis
Analyze the emotional characteristics of music
Good performance can be achieved through intermediate layer representations
Music information retrieval
Music similarity calculation
Calculate music similarity based on audio features
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