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Sequential testing and change detection algorythms

Sequential testing and change detection algorythms
顺序测试和变更检测算法
批准号:
36484-2007
负责人:
Gombay, Edit
金额:
$1.46万
依托单位:
依托单位国家:
加拿大
项目类别:
Discovery Grants Program - Individual
财政年份:
2007
资助国家:
加拿大
项目状态:
已结题
起止时间:
2007-01-01 至 2008-12-31

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中文摘要
翻译
我建议在序贯统计算法和变点分析领域进行研究。当在一段时间内一个接一个地观察到时,顺序测试是必要的。正在进行监测,以检测数据生成机制的变化,如气候变化、制造质量等。在我以前的工作中,为独立观测情况定义了新类型的算法。这些方法优于现有的方法,因为尽管这些方法对于最大限度地减少发生变化后的反应时间是最佳的,但这些方法具有不可接受的I型误差。这就是为什么许多序列测试方法大多停留在理论领域,而实践者并没有广泛地采用它们。新算法严格控制第I类错误,易于执行,并且只需略微增加发出警报(声明数据生成机制已更改)的延迟时间即可弥补这一点。在解决了独立观测的这一问题后,必须考虑其他数据结构,因为在实践中经常违反独立性假设。对于实践中出现的不同时间序列观测,工作正在进行中并不断扩大。临床试验中出现的数据结构特别令人感兴趣。对其实施序贯监测是在解决具有理论挑战性问题的基础上进行的。变点检测:在这些算法中,我们回顾数据以查看是否发生了任何干扰。这种方法是必不可少的,如果在数据生成过程中出现了结构性变化,并且没有被检测到,那么所有的模型拟合和预测都是错误的。这些方法的潜在和现有应用包括环境数据分析、计量经济学、生物统计学等。
英文摘要
I propose to do research in the areas of Sequential Statistical Algorithms and Change-Point Analysis.1. Sequential Testing is necessary when observations come in one by one over a period of time. Monitoring is ongoing to detect change in the data generating mechanism, such as change in climate, manufacturing quality, etc. In my earlier work new type of algorithms have been defined for the independent observations case. These are superior to existing methods as, although optimal for minimizing the reaction time after change had occurred, those have unacceptable type I error. This is the reason why many sequential testing methods remained mostly in the theoretical domain, and practitioners have not adapted them widely. The new algorithms have tight control over type I errors, easy to perform, and pay for this with only slightly increased delay time in raising alarm (declaring that the data generating mechanism has changed). Having solved this problem for independent observations other data structures have to be considered as the independence assumptions are often violated in practice. Work is ongoing and expanding for different time series observations that are arising in practice.  Data structures that arise in clinical trials are of special interest. The implementation of sequential monitoring for them is based on solving theoretically challenging problems.2. Change-Point Detection: In these algorithms we look at the data retrospectively to see if any disturbance has occurred. Such methods are essential, as if there was a structural change in the data generating procedure, and it was not detected, then all model fitting and forecast are erroneous. Potential and existing applications of these methods are in environmental data analysis, econometrics, biostatistics, etc.
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