Randomized and Exchangeable Improvements of Markov's, Chebyshev's and Chernoff's Inequalities
April 05, 2023 Β· Declared Dead Β· π Statistical Science
"No code URL or promise found in abstract"
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Authors
Aaditya Ramdas, Tudor Manole
arXiv ID
2304.02611
Category
math.ST
Cross-listed
cs.IT,
math.PR,
stat.ME
Citations
36
Venue
Statistical Science
Last Checked
1 month ago
Abstract
We present simple randomized and exchangeable improvements of Markov's inequality, as well as Chebyshev's inequality and Chernoff bounds. Our variants are never worse and typically strictly more powerful than the original inequalities. The proofs are short and elementary, and can easily yield similarly randomized or exchangeable versions of a host of other inequalities that employ Markov's inequality as an intermediate step. We point out some simple statistical applications involving tests that combine dependent e-values. In particular, we uniformly improve the power of universal inference, and obtain tighter betting-based nonparametric confidence intervals. Simulations reveal nontrivial gains in power (and no losses) in a variety of settings.
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