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Financial Architect: Algorithmic Trading with Python: A comprehensive Guide for 2024

Van Der Post, Hayden

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ضمانت فایل
پشتیبانی

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مشخصات کتاب

نویسنده
Van Der Post, Hayden
سال انتشار
۲۰۲۴
فرمت
EPUB
زبان
انگلیسی
حجم فایل
۱٫۰ مگابایت

دربارهٔ کتاب

Reactive Publishing Begin on a transformative journey into the realm of finance with "Financial Architect: Algorithmic Trading with Python," a groundbreaking book designed to catapult your trading skills into the digital age. This guide is a must-have for anyone aspiring to navigate the complex yet rewarding world of algorithmic trading. "Financial Architect" is more than just a book; it's a comprehensive toolkit. Whether you're a finance professional, a budding entrepreneur, or a programming enthusiast, this book will guide you through the intricacies of using Python to design, test, and implement powerful trading strategies. The journey begins with a foundational understanding of financial markets and algorithmic trading. You'll learn not only the theory behind trading and financial instruments but also how these concepts are evolving in the digital era. The book then seamlessly transitions into practical Python programming, ensuring that even readers with minimal coding experience can follow along. Title Page Copyright Dedication Contents Chapter 1: Introduction to Algorithmic Trading 1.1 Definition of Algorithmic Trading 1.2 Key Benefits of Algorithmic Trading 1.3 Fundamentals of Algorithm Design 1.4 Regulatory and Ethical Considerations Chapter 2: Understanding Financial Markets 2.1 Market Structure and Microstructure 2.2 Asset Classes and Instruments 2.3 Fundamental and Technical Analysis 2.4 Trading Economics Chapter 3: Python for Finance 3.1 Basics of Python Programming 3.2 Data Handling and Manipulation 3.3 API Integration for Market Data 3.4 Performance and Scalability Chapter 4: Quantitative Analysis and Modeling 4.1 Statistical Foundations 4.2 Portfolio Theory 4.3 Value at Risk (VaR) 4.4 Algorithm Evaluation Metrics Chapter 5: Strategy Identification and Hypothesis 5.1 Identifying Market Opportunities 5.2 Strategy Hypothesis Formulation 5.3 Data Requirements and Sources 5.4 Tools for Strategy Development Chapter 6: Building and Backtesting Strategies 6.1 Strategy Coding in Python 6.2 Backtesting Frameworks 6.3 Performance Analysis 6.4 Optimization Techniques Chapter 7: Advanced Trading Strategies 7.1 Machine Learning for Predictive Modeling 7.2 High-Frequency Trading Algorithms 7.3 Sentiment Analysis Strategies 7.4 Multi-Asset and Cross-Asset Trading Chapter 8: Real-Time Back testing and Paper Trading 8.1 Simulating Live Market Conditions 8.2 Refinement and Iteration 8.3 Robustness and Stability 8.4 Compliance and Reporting in Algorithmic Trading Epilogue Additional Resources

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