Estimation from Dynamical Systems and Individual Sequences
Estimation from Dynamical Systems and Individual Sequences
批准号:
9971964
负责人:
Andrew Nobel
金额:
$7.5万
依托单位国家:
美国
项目类别:
Standard Grant
财政年份:
1999
资助国家:
美国
项目状态:
已结题
起止时间:
1999-09-01 至 2003-08-31
中文摘要
从动力系统和个体序列估计DMS 9971964北卡罗来纳大学教堂山分校的安德鲁·B·诺贝尔:现代计算的出现和最近对混沌的兴趣使人们越来越关注表现出随机行为的确定性系统。这类系统的统计分析往往很复杂,因为对它们行为的测量可能会表现出非常长期的相关性。首席研究员正在研究遍历过程和单个序列的非参数估计,特别强调由动力系统测量产生的过程和序列。他正在发展和证明下列问题方案的一致性:(I)估计生成给定离散时间动力系统的映射;(Ii)估计动力系统的平稳密度和Lyapunov指数;(Iii)从单个序列估计密度和回归估计。此外,P.I.正在寻求表征确定性序列并估计它们的诱导变换。现代计算的出现和最近对混沌的科学兴趣使人们越来越关注受确定性定律支配的物理系统,但这些系统表现出随机现象的特征--不稳定或不可预测的行为。这种动力系统已经在医疗诊断和天气预报等不同领域得到了应用。正在开发一种统计方法,可以用来从系统随时间演变的观察中估计动力系统的基本性质。如果希望预测或控制系统的未来行为,这一点很重要。私人情报局正在开发方法,以估计在一个单位的时间内决定系统演变的规则。他还在开发评估系统对其初始条件的敏感度的方法:如果系统在两个非常相似的状态下启动,以后看起来会有多大不同?PI.正在寻找对各种各样的系统有效的方法,包括那些测量结果在很长时间尺度上表现出依赖性的系统。
英文摘要
DMS 9971964 Estimation from Dynamical Systems and Individual SequencesAndrew B. Nobel, University of North Carolina, Chapel HillABSTRACT:The advent of modern computing and the recent interest in chaos have focussed increasing attention on deterministic systems that exhibit random behavior. Statistical analysis of such systems is often complicated by the fact that measurements of their behavior can exhibit very long-range dependence. The Principal Investigator is studying non-parametric estimation from ergodic processes and individual sequences, with particular emphasis on processes and sequences that arise from measurement of a dynamical system. He is developing and proving the consistency of schemes for the following problems: (i) estimating the map generating a given discrete time dynamical system; (ii) estimating the stationary density and Lyapunov exponents of a dynamical system; and (iii) density and regression estimation from individual sequences. In addition, the P.I. is seeking to characterize deterministic sequences and to estimate their induced transformations.The advent of modern computing and recent scientific interest in chaos have focussed increasing attention on physical systems that are governed by deterministic laws, but exhibit erratic or unpredictable behavior that is characteristic of random phenomena. Dynamical systems of this sort have found application in such diverse areas as medical diagnostics and weather prediction.The Principal Investigator (P.I.) is developing statistical methods that can be used estimate the underlying properties of a dynamical system from observations of the system as it evolves in time. This is important if one wishes to predict or control the future behavior of the system. The P.I. is developing methods to estimate the rule that dictates the evolution of the system over a single unit of time. He is also developing methods to assess the sensitivity of the system to its initial conditions: if the system is started off in two very similar states, how different will it look later? The P.I. is seeking methods that will be effective for a wide variety of systems, including those whose measurements exhibit dependence over very long time scales.
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会议论文
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资助金额:$25.27万
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财政年份:2004
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财政年份:1995
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负责人:Andrew Nobel
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依托单位:
海外基金