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Python For Finance Cookbook Second Edition 2 Converted Eryk Lewinson

  • SKU: BELL-54777580
Python For Finance Cookbook Second Edition 2 Converted Eryk Lewinson
$ 31.00 $ 45.00 (-31%)

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Python For Finance Cookbook Second Edition 2 Converted Eryk Lewinson instant download after payment.

Publisher: Packt Publishing
File Extension: PDF
File size: 31.98 MB
Pages: 958
Author: Eryk Lewinson
ISBN: B09XDTFV7Q
Language: English
Year: 2022
Edition: 2 / converted

Product desciption

Python For Finance Cookbook Second Edition 2 Converted Eryk Lewinson by Eryk Lewinson B09XDTFV7Q instant download after payment.

Use modern Python libraries such as pandas, NumPy, and scikit-learn and popular machine learning and deep learning methods to solve financial modeling problems

Key Features
Explore unique recipes for financial data processing and analysis with Python
Apply classical and machine learning approaches to financial time series analysis
Calculate various technical analysis indicators and backtest trading strategies

Book Description

Python is one of the most popular programming languages in the financial industry, with a huge collection of accompanying libraries. In this new edition of the Python for Finance Cookbook, you will explore classical quantitative finance approaches to data modeling, such as GARCH, CAPM, factor models, as well as modern machine learning and deep learning solutions.

You will use popular Python libraries that, in a few lines of code, provide the means to quickly process, analyze, and draw conclusions from financial data. In this new edition, more emphasis was put on exploratory data analysis to help you visualize and better understand financial data. While doing so, you will also learn how to use Streamlit to create elegant, interactive web applications to present the results of technical analyses.

Using the recipes in this book, you will become proficient in financial data analysis, be it for personal or professional projects. You will also understand which potential issues to expect with such analyses and, more importantly, how to overcome them.

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