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Deep Learning with fastai Cookbook

You're reading from   Deep Learning with fastai Cookbook Leverage the easy-to-use fastai framework to unlock the power of deep learning

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Product type Paperback
Published in Sep 2021
Publisher Packt
ISBN-13 9781800208100
Length 340 pages
Edition 1st Edition
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Author (1):
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Mark Ryan Mark Ryan
Author Profile Icon Mark Ryan
Mark Ryan
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Table of Contents (10) Chapters Close

Preface 1. Chapter 1: Getting Started with fastai 2. Chapter 2: Exploring and Cleaning Up Data with fastai FREE CHAPTER 3. Chapter 3: Training Models with Tabular Data 4. Chapter 4: Training Models with Text Data 5. Chapter 5: Training Recommender Systems 6. Chapter 6: Training Models with Visual Data 7. Chapter 7: Deployment and Model Maintenance 8. Chapter 8: Extended fastai and Deployment Features 9. Other Books You May Enjoy

Training a model in fastai with a non-curated tabular dataset

In Chapter 2, Exploring and Cleaning Up Data with fastai, you reviewed the curated datasets provided by fastai. In the previous recipe, you created a deep learning model that had been trained on one of these curated datasets. What if you want to train a fastai model for a tabular dataset that is not one of these curated datasets?

In this recipe, we will go through the process of ingesting a non-curated dataset – the Kaggle house prices dataset (https://www.kaggle.com/c/house-prices-advanced-regression-techniques/data) – and training a deep learning model on it. This dataset presents some additional challenges. Compared to a curated fastai dataset, there are additional steps required to ingest the dataset, and its structure requires special handling to deal with missing values.

The goal of this recipe is to use this dataset to train a deep learning model, that then predicts whether a house has a sale...

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