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Random matrices: tail bounds for gaps between eigenvalues
classification
🧮 math.PR
math.CO
keywords
randomgapsboundeigenvaluesfirstmatricesmatrixtail
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Gaps (or spacings) between consecutive eigenvalues are a central topic in random matrix theory. The goal of this paper is to study the tail distribution of these gaps in various random matrix models. We give the first repulsion bound for random matrices with discrete entries and the first super-polynomial bound on the probability that a random graph has simple spectrum, along with several applications.
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