Gün Machine Learning in Finance

Machine Learning in Finance

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Trends, Developments and Business Practices in the Financial Sector

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Beschreibung

This book discusses the evolution of technical features in decentralized finance and focuses on machine-learning finance in emerging economies. As technological advancement evolves at an unpredictable pace, the financial industry, like every other sector, must adapt accordingly.. Furthermore, the rapid expansion of diverse financial products and services is creating new applications and markets. Alongside technological progress, the exploration of complex patterns in vast amounts of data, known as big data, is facilitated by its commonly acknowledged characteristics: volume, variety, veracity, value, and velocity.

Overall, machine learning has become crucial in the financial industry, allowing businesses to automate operations, gain insights from data, and make more informed decisions in real time. This edited book covers algorithmic trading, risk management, fraud detection, customer service and personalization, portfolio management, credit scoring, sentiment analysis, and algorithmic pricing. The book connects theoretical concepts with practical real-world applications, benefiting professionals looking to enhance their proficiency in using these methods efficiently. It offers insightful guidance for theorists, market participants, and policymakers by exploring financial theories and practices in light of contemporary machine-learning approaches, with a special emphasis on emerging economies.


This book discusses the evolution of technical features in decentralized finance and focuses on machine-learning finance in emerging economies. As technological advancement evolves at an unpredictable pace, the financial industry, like every other sector, must adapt accordingly. Furthermore, the rapid expansion of diverse financial products and services is creating new applications and markets. Alongside technological progress, the exploration of complex patterns in vast amounts of data, known as big data, is facilitated by its commonly acknowledged characteristics: volume, variety, veracity, value, and velocity.

Overall, machine learning has become crucial in the financial industry, allowing businesses to automate operations, gain insights from data, and make more informed decisions in real time. This edited book covers algorithmic trading, risk management, fraud detection, customer service and personalization, portfolio management, credit scoring, sentiment analysis, and algorithmic pricing. The book connects theoretical concepts with practical real-world applications, benefiting professionals looking to enhance their proficiency in using these methods efficiently. It offers insightful guidance for theorists, market participants, and policymakers by exploring financial theories and practices in light of contemporary machine-learning approaches, with a special emphasis on emerging economies.


Discusses the evolution of technical features in decentralized finance Focuses especially on machine-learning finance in emerging economies Includes global best practices and guidelines for implementation

Autor*in

Musa Gün

Themen in »Machine Learning in Finance«

FinTech Financial Innovation Quantitative Decisions AI Decentralized Finance Digital Currency Crytomarkets Anomaly Mining Generative Artificial Intelligence Deep Learning Networks Digital Finance Risk Management Financial Sentiment Analysis Algorithmic Trading

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Machine Learning in Finance: Trends, Developments and Business Practices in the Financial Sector is a timely and useful contribution to the expanding literature on artificial intelligence, machine learning, financial technology and data-driven finance. ... this is a welcome addition to the literature. ... I recommend the book as a valuable addition to institutional libraries, graduate reading lists and the personal libraries of researchers and professionals working at the intersection of finance, statistics, econometrics and artificial intelligence.” (Svetlozar Rachev, International Statistical Review, June 7, 2026)


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Details

ISBN: 9783031832659
Verlag: Springer International Publishing
Erscheinung: 30.03.2025

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