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Hands-On Music Generation with Magenta

You're reading from  Hands-On Music Generation with Magenta

Product type Book
Published in Jan 2020
Publisher
ISBN-13 9781838824419
Pages 360 pages
Edition 1st Edition
Languages
Author (1):
Alexandre DuBreuil Alexandre DuBreuil
Profile icon Alexandre DuBreuil

Table of Contents (16) Chapters

Preface 1. Section 1: Introduction to Artwork Generation
2. Introduction to Magenta and Generative Art 3. Section 2: Music Generation with Machine Learning
4. Generating Drum Sequences with the Drums RNN 5. Generating Polyphonic Melodies 6. Latent Space Interpolation with MusicVAE 7. Audio Generation with NSynth and GANSynth 8. Section 3: Training, Learning, and Generating a Specific Style
9. Data Preparation for Training 10. Training Magenta Models 11. Section 4: Making Your Models Interact with Other Applications
12. Magenta in the Browser with Magenta.js 13. Making Magenta Interact with Music Applications 14. Assessments 15. Other Books You May Enjoy

Questions

  1. Write a new configuration for the Drums RNN model that uses an attention length of 64 and that encodes only the snares and bass drums, but inverted.
  2. We have a model that underfits: what does this mean and how do we fix the problem?
  3. We have a model that overfits: what does this mean and how do we fix the problem?
  4. What is a technique that makes sure that, for a given training run, we stop at the optimum?
  5. Why might increasing batch size make the model worse in terms of performance? Will it make it worse in terms of efficiency or training time?
  1. What is a good network size?
  2. Does limiting the value of the error derivative before backpropagation help or worsen the problem of exploding gradients? What is another solution to that problem?
  3. Why is using a cloud provider useful to train our models?
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