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Statistical Models and Methods for Financial Markets读书介绍

类别 页数 译者 网友评分 年代 出版社
书籍 376页 2020 Springer
定价 出版日期 最近访问 访问指数
GBP 66.99 2020-02-20 … 2020-05-22 … 37
主题/类型/题材/标签
金融,statistics,统计,finance,金融数学,quant_finance,数学,投资,
作者
Tze Leung Lai      ISBN:9780387778266    原作名/别名:《》
内容和作者简介
Statistical Models and Methods for Financial Markets摘要

This book presents statistical methods and models of importance to quantitative finance and links finance theory to market practice via statistical modeling and decision making. Part I provides basic background in statistics, which includes linear regression and extensions to generalized linear models and nonlinear regression, multivariate analysis, likelihood inference and Bayesian methods, and time series analysis. It also describes applications of these methods to portfolio theory and dynamic models of asset returns and their volatilities. Part II presents advanced topics in quantitative finance and introduces a substantive-empirical modeling approach to address the discrepancy between finance theory and market data. It describes applications to option pricing, interest rate markets, statistical trading strategies, and risk management. Nonparametric regression, advanced multivariate and time series methods in financial econometrics, and statistical models for high-frequency transactions data are also introduced in this connection. The book has been developed as a textbook for courses on statistical modeling in quantitative finance in master's level financial mathematics (or engineering) and computational (or mathematical) finance programs. It is also designed for self-study by quantitative analysts in the financial industry who want to learn more about the background and details of the statistical methods used by the industry. It can also be used as a reference for graduate statistics and econometrics courses on regression, multivariate analysis, likelihood and Bayesian inference, nonparametrics, and time series, providing concrete examples and data from financial markets to illustrate the statistical methods.

作者简介

香港大学本科毕业,1972年获美国哥伦比亚大学统计学博士学位。现为美国斯坦福大学教授。1983年获国际统计学界的考普斯“总统奖”。 黎子良教授的主要研究领域包括序列实验、自适应设计和控制、随机最优化、时间序列和预测、变点监测、隐马尔可夫模型和粒子滤波、经验贝叶斯模型、多元生存分析、概率理论和随机过程、生物统计、计量经济学、定量金融和风险控制。 南开大学本科毕业,2005年获斯坦福大学统计学博士学位。现为纽约州立大学石溪分校助理教授。 邢海鹏的主要研究领域为定量金融、多变点检测分析及其在计量经济学、工程及生物学上的应用。

本书后续版本
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