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Machine Learning Solutions

You're reading from   Machine Learning Solutions Expert techniques to tackle complex machine learning problems using Python

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Product type Paperback
Published in Apr 2018
Publisher Packt
ISBN-13 9781788390040
Length 566 pages
Edition 1st Edition
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Author (1):
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Jalaj Thanaki Jalaj Thanaki
Author Profile Icon Jalaj Thanaki
Jalaj Thanaki
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Table of Contents (19) Chapters Close

Machine Learning Solutions
Foreword
Contributors
Preface
1. Credit Risk Modeling 2. Stock Market Price Prediction FREE CHAPTER 3. Customer Analytics 4. Recommendation Systems for E-Commerce 5. Sentiment Analysis 6. Job Recommendation Engine 7. Text Summarization 8. Developing Chatbots 9. Building a Real-Time Object Recognition App 10. Face Recognition and Face Emotion Recognition 11. Building Gaming Bot List of Cheat Sheets Strategy for Wining Hackathons Index

Summary


In this chapter, we looked at how to build a sentiment analysis model that gives us state-of-the-art results. We used an IMDb dataset that had positive and negative movie reviews and understood the dataset. We applied the machine learning algorithm in order to get the baseline model. After that, in order to optimize the baseline model, we changed the algorithm and applied deep-learning-based algorithms. We used glove, RNN, and LSTM techniques to achieve the best results. We learned how to build sentiment analysis applications using Deep Learning. We used TensorBoard to monitor our model's training progress. We also touched upon modern machine learning algorithms as well as Deep Learning techniques for developing sentiment analysis, and the Deep Learning approach works best here.

We used a GPU to train the neural network, so if you discover that it needs more computation power from your end to train the model, then you can use the Google cloud or Amazon Web Services (AWS) GPU-based...

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