Jupyter notebooks for the code samples of the book "Deep Learning with Python"

Overview

Companion Jupyter notebooks for the book "Deep Learning with Python"

This repository contains Jupyter notebooks implementing the code samples found in the book Deep Learning with Python, 2nd Edition (Manning Publications).

For readability, these notebooks only contain runnable code blocks and section titles, and omit everything else in the book: text paragraphs, figures, and pseudocode. If you want to be able to follow what's going on, I recommend reading the notebooks side by side with your copy of the book.

These notebooks use Python 3.7 and Keras 2.0.8. They were generated on a p2.xlarge EC2 instance.

Table of contents

Owner
François Chollet
François Chollet
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This is the official Pytorch implementation of the paper "Diverse Motion Stylization for Multiple Style Domains via Spatial-Temporal Graph-Based Generative Model"

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Code for "Learning Graph Cellular Automata"

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Code for MentorNet: Learning Data-Driven Curriculum for Very Deep Neural Networks

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DLFlow is a deep learning framework.

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VIMPAC: Video Pre-Training via Masked Token Prediction and Contrastive Learning

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Developing your First ML Workflow of the AWS Machine Learning Engineer Nanodegree Program

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MINERVA: An out-of-the-box GUI tool for offline deep reinforcement learning

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E2C implementation in PyTorch

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Deep Learning for Natural Language Processing SS 2021 (TU Darmstadt)

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DeeBERT: Dynamic Early Exiting for Accelerating BERT Inference

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This repository contains the code for the paper "Hierarchical Motion Understanding via Motion Programs"

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[IROS2021] NYU-VPR: Long-Term Visual Place Recognition Benchmark with View Direction and Data Anonymization Influences

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Convolutional Neural Network to detect deforestation in the Amazon Rainforest

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