Fr. 108.00

INTRODUCTION TO MACHINE LEARNING AND QUANTITATIVE FINANCE

Anglais · Livre de poche

Expédition généralement dans un délai de 2 à 3 semaines (titre imprimé sur commande)

Description

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In today's world, we are increasingly exposed to the words "machine learning" (ML), a term which sounds like a panacea designed to cure all problems ranging from image recognition to machine language translation. Over the past few years, ML has gradually permeated the financial sector, reshaping the landscape of quantitative finance as we know it.
An Introduction to Machine Learning in Quantitative Finance aims to demystify ML by uncovering its underlying mathematics and showing how to apply ML methods to real-world financial data. In this book the authorsProvide a systematic and rigorous introduction to supervised, unsupervised and reinforcement learning by establishing essential definitions and theorems.
Dive into various types of neural networks, including artificial nets, convolutional nets, recurrent nets and recurrent reinforcement learning.
Summarize key contents of each section in the tables as a cheat sheet.
Include ample examples of financial applications.
Showcase how to tackle an exemplar ML project on financial data end-to-end.
Provide a GitHub repository https://github.com/deepintomlf/mlfbook.git that contains supplementary Python codes of all methods/examples.

Featured with the balance of mathematical theorems and practical code examples of ML, this book will help you acquire an in-depth understanding of ML algorithms as well as hands-on experience. After reading An Introduction to Machine Learning in Quantitative Finance, ML tools will not be a black box to you anymore, and you will feel confident in successfully applying what you have learnt to empirical financial data!

Résumé

In today's world, we are increasingly exposed to the words "machine learning" (ML), a term which sounds like a panacea designed to cure all problems ranging from image recognition to machine language translation.

Détails du produit

Auteurs Xin Dong, Xin (Citadel Securities Llc Dong, Hao Ni, Xin Dong Jinsong Zheng & Guangx Hao Ni, Jinsong Zheng, Hao Ni, Hao (Univ College London Ni, Ni Hao, Xin Dong, Guangxi Yu, Guangxi (Sws Research Yu, Jinsong Zheng, Jinsong (Huatai Securities Zheng
Edition WSPC (Europe)
 
Langues Anglais
Format d'édition Livre de poche
Sortie 31.03.2021
 
EAN 9781786349644
ISBN 978-1-78634-964-4
Pages 264
Dimensions 152 mm x 229 mm x 15 mm
Poids 388 g
Thèmes Advanced Textbooks in Mathemat
Advanced Textbooks in Mathematics
Catégorie Sciences sociales, droit, économie > Economie > Autres

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