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Showing 1 - 4 of 4 matches in All Departments
"Multi-Asset Risk Modeling" describes, in a single volume, the
latest and most advanced risk modeling techniques for equities,
debt, fixed income, futures and derivatives, commodities, and
foreign exchange, as well as advanced algorithmic and electronic
risk management. Beginning with the fundamentals of risk
mathematics and quantitative risk analysis, the book moves on to
discuss the laws in standard models that contributed to the 2008
financial crisis and talks about current and future banking
regulation. Importantly, it also explores algorithmic trading,
which currently receives sparse attention in the literature. By
giving coherent recommendations about which statistical models to
use for which asset class, this book makes a real contribution to
the sciences of portfolio management and risk management.
Optimal Sports Math, Statistics, and Fantasy provides the sports community-students, professionals, and casual sports fans-with the essential mathematics and statistics required to objectively analyze sports teams, evaluate player performance, and predict game outcomes. These techniques can also be applied to fantasy sports competitions. Readers will learn how to: Accurately rank sports teams Compute winning probability Calculate expected victory margin Determine the set of factors that are most predictive of team and player performance Optimal Sports Math, Statistics, and Fantasy also illustrates modeling techniques that can be used to decode and demystify the mysterious computer ranking schemes that are often employed by post-season tournament selection committees in college and professional sports. These methods offer readers a verifiable and unbiased approach to evaluate and rank teams, and the proper statistical procedures to test and evaluate the accuracy of different models. Optimal Sports Math, Statistics, and Fantasy delivers a proven best-in-class quantitative modeling framework with numerous applications throughout the sports world.
"The Science of Algorithmic Trading and Portfolio Management," with its emphasis on algorithmic trading processes and current trading models, sits apart from others of its kind. Robert Kissell, the first author to discuss algorithmic trading across the various asset classes, provides key insights into ways to develop, test, and build trading algorithms. Readers learn how to evaluate market impact models and assess performance across algorithms, traders, and brokers, and acquire the knowledge to implement electronic trading systems. This valuable book summarizes market structure, the formation of
prices, and how different participants interact with one another,
including bluffing, speculating, and gambling. Readers learn the
underlying details and mathematics of customized trading
algorithms, as well as advanced modeling techniques to improve
profitability through algorithmic trading and appropriate risk
management techniques. Portfolio management topics, including quant
factors and black box models, are discussed, and an accompanying
website includes examples, data sets supplementing exercises in the
book, and large projects.
Algorithmic Trading Methods: Applications using Advanced Statistics, Optimization, and Machine Learning Techniques, Second Edition, is a sequel to The Science of Algorithmic Trading and Portfolio Management. This edition includes new chapters on algorithmic trading, advanced trading analytics, regression analysis, optimization, and advanced statistical methods. Increasing its focus on trading strategies and models, this edition includes new insights into the ever-changing financial environment, pre-trade and post-trade analysis, liquidation cost & risk analysis, and compliance and regulatory reporting requirements. Highlighting new investment techniques, this book includes material to assist in the best execution process, model validation, quality and assurance testing, limit order modeling, and smart order routing analysis. Includes advanced modeling techniques using machine learning, predictive analytics, and neural networks. The text provides readers with a suite of transaction cost analysis functions packaged as a TCA library. These programming tools are accessible via numerous software applications and programming languages.
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