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Hands-On One-shot Learning with Python

You're reading from   Hands-On One-shot Learning with Python Learn to implement fast and accurate deep learning models with fewer training samples using PyTorch

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Product type Paperback
Published in Apr 2020
Publisher Packt
ISBN-13 9781838825461
Length 156 pages
Edition 1st Edition
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Authors (2):
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Ankush Garg Ankush Garg
Author Profile Icon Ankush Garg
Ankush Garg
Shruti Jadon Shruti Jadon
Author Profile Icon Shruti Jadon
Shruti Jadon
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Toc

Table of Contents (11) Chapters Close

Preface 1. Section 1: One-shot Learning Introduction
2. Introduction to One-shot Learning FREE CHAPTER 3. Section 2: Deep Learning Architectures
4. Metrics-Based Methods 5. Model-Based Methods 6. Optimization-Based Methods 7. Section 3: Other Methods and Conclusion
8. Generative Modeling-Based Methods 9. Conclusions and Other Approaches 10. Other Books You May Enjoy

Bayesian program learning

Bayesian Program Learning (BPL) proceeds in three steps:

  1. In the first step, which is a generative model, BPL learns new concepts by building them compositionally from parts (refer to iii) of the A side in the diagram of the Model section), subparts (refer to ii) of the A side in the following diagram), and their spatial relations (refer to iv) of the A side in the following diagram). For example, it can sample new types of concepts (or, in this case, handwritten characters) from parts and subparts and combine them in new ways.
  2. In the second step, the concepts sampled in the first step form another lower-level generative model to produce new examples as shown in the v) part of the A side.
  3. The final step renders raw character level images. Hence, BPL is a generative model for generative models. The pseudocode for this generative model is shown on the B...
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