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Applying bucket random permutations to stationary sequences with long-range dependence

  • Boston University

科研成果: 期刊稿件文章同行评审

摘要

Bucket random permutations (shuffling) are used to modify the dependence structure of a time series, and this may destroy long-range dependence, when it is present. Three types of bucket permutations are considered here: external, internal and two-level permutations. It is commonly believed that (1) an external random permutation destroys the long-range dependence and keeps the short-range dependence, (2) an internal permutation destroys the short-range dependence and keeps the long-range dependence, and (3) a two-level permutation distorts the medium-range dependence while keeping both the long-range and short-range dependence. This paper provides a theoretical basis for investigating these claims. It extends the study started in Ref. 1 and analyze the effects that these random permutations have on a long-range dependent finite variance stationary sequence both in the time domain and in the frequency domain.

源语言英语
页(从-至)105-126
页数22
期刊Fractals
15
2
DOI
出版状态已出版 - 6月 2007
已对外发布

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