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Machine Learning for Finance

You're reading from   Machine Learning for Finance Principles and practice for financial insiders

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Product type Paperback
Published in May 2019
Publisher Packt
ISBN-13 9781789136364
Length 456 pages
Edition 1st Edition
Languages
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Authors (2):
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Jannes Klaas Jannes Klaas
Author Profile Icon Jannes Klaas
Jannes Klaas
James Le James Le
Author Profile Icon James Le
James Le
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Table of Contents (15) Chapters Close

Machine Learning for Finance
Contributors
Preface
Other Books You May Enjoy
1. Neural Networks and Gradient-Based Optimization 2. Applying Machine Learning to Structured Data FREE CHAPTER 3. Utilizing Computer Vision 4. Understanding Time Series 5. Parsing Textual Data with Natural Language Processing 6. Using Generative Models 7. Reinforcement Learning for Financial Markets 8. Privacy, Debugging, and Launching Your Products 9. Fighting Bias 10. Bayesian Inference and Probabilistic Programming Index

Seq2seq models


In 2016, Google announced that it had replaced the entire Google Translate algorithm with a single neural network. The special thing about the Google Neural Machine Translation system is that it translates mutliple languages "end-to-end" using only a single model. It works by encoding the semantics of a sentence and then decoding the semantics into the desired output language.

The fact that such a system is possible at all baffled many linguists and other researchers, as it shows that machine learning can create systems that accurately capture high-level meanings and semantics without being given any explicit rules.

These semantic meanings are represented as an encoding vector, and while we don't quite yet know how to interpret these vectors, there are a lot of useful applications for them. Translating from one language to another is one such popular method, but we could use a similar approach to "translate" a report into a summary. Text summarization has made great strides...

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