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相关论文: On Kendall's Tau for Order Statistics

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We study a simple statistic for benchmarking how well a sample preserves a known bivariate dependence structure. Given a target copula family (Clayton or Gumbel) and parameter $\theta_P$, the Copula Discrepancy (CD) compares the target…

机器学习 · 统计学 2025-12-30 Agnideep Aich , Ashit Baran Aich

Recent research in statistics has focused on dependence measures kappa(Y,X) taking values in [0, 1], where 0 characterizes independence of X and Y, and 1 perfect functional dependence of Y on X. One class of such measures consists of the…

统计理论 · 数学 2026-04-14 Jonathan Ansari

Conditional Kendall's tau is a measure of dependence between two random variables, conditionally on some covariates. We assume a regression-type relationship between conditional Kendall's tau and some covariates, in a parametric setting…

统计理论 · 数学 2018-11-21 Alexis Derumigny , Jean-David Fermanian

Kendall's tau and conditional Kendall's tau matrices are multivariate (conditional) dependence measures between the components of a random vector. For large dimensions, available estimators are computationally expensive and can be improved…

统计理论 · 数学 2024-12-30 Rutger van der Spek , Alexis Derumigny

We show how the problem of estimating conditional Kendall's tau can be rewritten as a classification task. Conditional Kendall's tau is a conditional dependence parameter that is a characteristic of a given pair of random variables. The…

统计计算 · 统计学 2018-11-27 Alexis Derumigny , Jean-David Fermanian

Tests of independence are an important tool in applications, specifically in connection with the detection of a relationship between variables; they also have initiated many developments in statistical theory. In the present paper we build…

统计理论 · 数学 2026-05-13 L. Baringhaus , R. Grübel

Several procedures have been recently proposed to test the simplifying assumption for conditional copulas. Instead of considering pointwise conditioning events, we study the constancy of the conditional dependence structure when some…

统计方法学 · 统计学 2020-08-24 Alexis Derumigny , Jean-David Fermanian , Aleksey Min

Bergsma (2006) proposed a covariance $\kappa$(X,Y) between random variables X and Y. He derived their asymptotic distributions under the null hypothesis of independence between X and Y. The non-null (dependent) case does not seem to have…

统计理论 · 数学 2023-05-30 Divya Kappara , Arup Bose , Madhuchhanda Bhattacharjee

This paper provides a characterization of all possible dependency structures between two stochastically ordered random variables. The answer is given in terms of copulas that are compatible with the stochastic order and the marginal…

概率论 · 数学 2019-12-16 Sebastian Arnold , Ilya Molchanov , Johanna F. Ziegel

In this paper, we focus on stochastic comparisons of extreme order statistics stemming from multiple-outlier scale models with dependence. Archimedean copula is used to model dependence structure among nonnegative random variables.…

统计理论 · 数学 2020-12-16 Sangita Das , Suchandan Kayal

Copulas have gained widespread popularity as statistical models to represent dependence structures between multiple variables in various applications. The minimum information copula, given a finite number of constraints in advance, emerges…

统计方法学 · 统计学 2024-03-14 Issey Sukeda , Tomonari Sei

The most popular ways to test for independence of two ordinal random variables are by means of Kendall's tau and Spearman's rho. However, such tests are not consistent, only having power for alternatives with ``monotonic'' association. In…

统计理论 · 数学 2014-03-17 Wicher Bergsma , Angelos Dassios

Copulas are essential tools in statistics and probability theory, enabling the study of the dependence structure between random variables independently of their marginal distributions. Among the various types of copulas, Ratio-Type Copulas…

统计理论 · 数学 2025-05-21 Ziad Adwan , Nicola Sottocornola

We prove that Kendall's Rank correlation matrix converges to the Mar\v{c}enko-Pastur law, under the assumption that the observations are i.i.d random vectors $X_1$, $\dots$, $X_n$ with components that are independent and absolutely…

统计理论 · 数学 2017-01-24 Afonso S. Bandeira , Asad Lodhia , Philippe Rigollet

In the present paper, we study extreme negative dependence focussing on the concordance order for copulas. With the absence of a least element for dimensions $d\ge$ 3, the set of all minimal elements in the collection of all copulas turns…

统计理论 · 数学 2018-10-22 Jae Youn Ahn , Sebastian Fuchs

The paper presents a new copula based method for measuring dependence between random variables. Our approach extends the Maximum Mean Discrepancy to the copula of the joint distribution. We prove that this approach has several advantageous…

机器学习 · 计算机科学 2019-08-15 Barnabas Poczos , Zoubin Ghahramani , Jeff Schneider

A new index based on empirical copulas, termed the Copula Statistic (CoS), is introduced for assessing the strength of multivariate dependence and for testing statistical independence. New properties of the copulas are proved. They allow us…

统计理论 · 数学 2016-12-22 Mohsen Ben Hassine , Lamine Mili , Kiran Karra

Copulas are mathematical objects that fully capture the dependence structure among random variables and hence, offer a great flexibility in building multivariate stochastic models. In statistics, a copula is used as a general way of…

统计方法学 · 统计学 2013-10-01 Abhik Ghosh , Aritra Chakravorty

The tail-dependence compatibility problem is introduced. It raises the question whether a given $d\times d$-matrix of entries in the unit interval is the matrix of pairwise tail-dependence coefficients of a $d$-dimensional random vector.…

概率论 · 数学 2016-06-28 Paul Embrechts , Marius Hofert , Ruodu Wang

We treat the problem of testing for association between a functional variable belonging to Hilbert space and a scalar variable. Particularly, we propose a distribution-free test statistic based on Kendall's Tau which is one of the most…

统计方法学 · 统计学 2019-12-10 Sneha Jadhav , Shuangge Ma
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