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Statistical Consequences of Fat Tails

Statistical Consequences of Fat Tails
作者:Nassim Nicholas Taleb
副标题:Real World Preasymptotics, Epistemology, and Applications
出版社:STEM Academic Press
出版年:2020-06
ISBN:9781544508054
行业:其它
浏览数:67

内容简介

The book investigates the misapplication of conventional statistical techniques to fat tailed distributions and looks for remedies, when possible.

Switching from thin tailed to fat tailed distributions requires more than “changing the color of the dress.” Traditional asymptotics deal mainly with either n=1 or n=∞, and the real world is in between, under the “laws of the medium numbers”–which vary widely across specific distributions. Both the law of large numbers and the generalized central limit mechanisms operate in highly idiosyncratic ways outside the standard Gaussian or Levy-Stable basins of convergence.

A few examples:

- The sample mean is rarely in line with the population mean, with effect on “naïve empiricism,” but can be sometimes be estimated via parametric methods.

- The “empirical distribution” is rarely empirical.

- Parameter uncertainty has compounding effects on statistical metrics.

- Dimension reduction (principal components) fails.

- Inequality estimators (Gini or quantile contributions) are not additive and produce wrong results.

- Many “biases” found in psychology become entirely rational under more sophisticated probability distributions.

- Most of the failures of financial economics, econometrics, and behavioral economics can be attributed to using the wrong distributions.

This book, the first volume of the Technical Incerto, weaves a narrative around published journal articles.

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作者简介

Nassim Nicholas Taleb spent 20 years as a derivatives and mathematical trader before starting his second career in applied probability. He is the author of 5-volume Incerto, an essay on uncertainty, published in 40 languages–with parallel journal articles and technical commentaries of which this book is an organized compilation. Taleb is currently Distinguished Professor of Risk Engineering at the Tandon School of Engineering of New York University and a (passive) principal of Universa Investments. The only prize he has accepted in recent decades in the Wolfram Research Innovation Award for work on computational approaches to nonstandard probability distributions, particularly preasymptotics

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目录

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读书文摘

有时候,人们会引用所谓的“经验”数据来说明我们不该担心埃博拉病毒,因为2016年只有两个美国人死于埃博拉病毒。他们认为,从死亡数字看,我们更应该担心死于糖尿病或躺在床上。但如果我们从尾部的角度思考,假设有一天报纸报道突然死了20亿人,他们更可能死于埃博拉病毒还是死于吸烟、糖尿病或躺在床上呢?

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