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相关论文: Practical Guide of Using Kendall's {\tau} in the C…

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Non-parametric approaches to test for trends in time series make use of the Mann-Kendall statistic. Based on asymptotic arguments, these tests assume that its distribution follows a Gaussian distribution, even for autocorrelated time…

应用统计 · 统计学 2026-04-17 Tristan Gamot , Nils Thibeau--Sutre , Tom J. M. Van Dooren

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

We consider a Kendall's tau measure between a binary group indicator and the continuous variable under investigation to develop a thorough two-sample comparison procedure. The measure serves as a useful alternative to the hazard ratio whose…

统计方法学 · 统计学 2022-08-01 Yi-Cheng Tai , Weijing Wang , Martin T. Wells , National Yang Ming Chiao Tung U. , Cornell U

For a bivariate time series $((X_i,Y_i))_{i=1,...,n}$ we want to detect whether the correlation between $X_i$ and $Y_i$ stays constant for all $i = 1,...,n$. We propose a nonparametric change-point test statistic based on Kendall's tau and…

统计理论 · 数学 2022-04-12 Herold Dehling , Daniel Vogel , Martin Wendler , Dominik Wied

We study nonparametric estimators of conditional Kendall's tau, a measure of concordance between two random variables given some covariates. We prove non-asymptotic bounds with explicit constants, that hold with high probabilities. We…

统计理论 · 数学 2019-03-08 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

Kendall's tau is frequently used to meta-evaluate how well machine translation (MT) evaluation metrics score individual translations. Its focus on pairwise score comparisons is intuitive but raises the question of how ties should be…

计算与语言 · 计算机科学 2023-10-18 Daniel Deutsch , George Foster , Markus Freitag

In this paper, we consider the fundamental problem of testing for monotone trend in a time series. While the term "trend" is commonly used and has an intuitive meaning, it is first crucial to specify its exact meaning in a hypothesis…

统计理论 · 数学 2024-04-11 Joseph P. Romano , Marius A. Tirlea

Ranked data is commonly used in research across many fields of study including medicine, biology, psychology, and economics. One common statistic used for analyzing ranked data is Kendall's {\tau} coefficient, a non-parametric measure of…

统计方法学 · 统计学 2023-09-04 Nicholas D. Edwards , Enzo de Jong , Stephen T. Ferguson

The Mann-Kendall test for trend has gained a lot of attention in a range of disciplines, especially in the environmental sciences. One of the drawbacks of the Mann-Kendall test when applied to real data is that no distinction can be made…

统计方法学 · 统计学 2023-05-24 Stavros Nikolakopoulos , Eric Cator , Mart P. Janssen

In this article, we show that the recently introduced ordinal pattern dependence fits into the axiomatic framework of general multivariate dependence measures, i.e., measures of dependence between two multivariate random objects.…

统计理论 · 数学 2021-08-27 Annika Betken , Herold Dehling , Nüßgen , Alexander Schnurr

High-dimensional data models, often with low sample size, abound in many interdisciplinary studies, genomics and large biological systems being most noteworthy. The conventional assumption of multinormality or linearity of regression may…

统计理论 · 数学 2008-12-18 Pranab K. Sen

Kendall's tau and Spearman's rho are widely used tools for measuring dependence. Surprisingly, when it comes to asymptotic inference for these rank correlations, some fundamental results and methods have not yet been developed, in…

统计方法学 · 统计学 2026-02-11 Marc-Oliver Pohle , Jan-Lukas Wermuth , Christian H. Weiß

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

Understanding the correlation between two different scores for the same set of items is a common problem in information retrieval, and the most commonly used statistics that quantifies this correlation is Kendall's $\tau$. However, the…

社会与信息网络 · 计算机科学 2014-11-03 Sebastiano Vigna

The paper considers nonparametric specification tests of quantile curves for a general class of nonstationary processes. Using Bahadur representation and Gaussian approximation results for nonstationary time series, simultaneous confidence…

统计理论 · 数学 2010-10-20 Zhou Zhou

In this paper, we propose a simple and easy-to-implement Bayesian hypothesis test for the presence of an association, described by Kendall's \tau coefficient, between two variables measured on at least an ordinal scale. Owing to the absence…

统计方法学 · 统计学 2022-09-09 Shen Zhang , Keying Ye , Min Wang

This paper discusses the statistical inference problem associated with testing for dependence between two continuous random variables using Kendall's $\tau$ in the context of the missing data problem. We prove the worst-case identified set…

统计理论 · 数学 2022-02-25 Oliver R. Cutbill , Rami V. Tabri

This paper considers the problem of comparing two processes with panel data. A nonparametric test is proposed for detecting a monotone change in the link between the two process distributions. The test statistic is of CUSUM type, based on…

统计理论 · 数学 2011-05-04 Denys Pommeret , Mohamed Boutahar , Badih Ghattas

The rank-based association between two variables can be modeled by introducing a latent normal level to ordinal data. We demonstrate how this approach yields Bayesian inference for Kendall's rank correlation coefficient, improving on a…

统计方法学 · 统计学 2018-05-25 Johnny van Doorn , Alexander Ly , Maarten Marsman , Eric-Jan Wagenmakers
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