Inference for Heavy-Tailed Data: Applications in Insurance and Finance

Inference for Heavy-Tailed Data: Applications in Insurance and Finance

Author
Liang Peng, Yongcheng Qi
Publisher
Academic Press
Language
English
Edition
1
Year
2017
Page
180
ISBN
0128046767,9780128046760
File Type
pdf
File Size
2.3 MiB

Heavy tailed data appears frequently in social science, internet traffic, insurance and finance. Statistical inference has been studied for many years, which includes recent bias-reduction estimation for tail index and high quantiles with applications in risk management, empirical likelihood based interval estimation for tail index and high quantiles, hypothesis tests for heavy tails, the choice of sample fraction in tail index and high quantile inference. These results for independent data, dependent data, linear time series and nonlinear time series are scattered in different statistics journals. Inference for Heavy-Tailed Data Analysis puts these methods into a single place with a clear picture on learning and using these techniques. Contains comprehensive coverage of new techniques of heavy tailed data analysis Provides examples of heavy tailed data and its uses Brings together, in a single place, a clear picture on learning and using these techniques

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