首页> 外文会议>ASME turbo expo: turbine technical conference and exposition >CALIBRATING TRANSIENT MODELS WITH MULTIPLE RESPONSES USING BAYESIAN INVERSE TECHNIQUES
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CALIBRATING TRANSIENT MODELS WITH MULTIPLE RESPONSES USING BAYESIAN INVERSE TECHNIQUES

机译:使用贝叶斯逆技术校正具有多个响应的瞬态模型

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Several engineering applications of high interest to turbomachinery involve transient models with multiple outputs. Thus, the ability to calibrate transient models with multiple correlated outputs is critical for enabling predictive models for design and analysis of turbomachinery. When the number of calibration parameters becomes large along with limited knowledge about those parameters (large uncertainty), traditional deterministic methods like least squares don't yield reasonable parameter estimates. We employ the Bayesian calibration framework, proposed by Kennedy and O'Hagan, to perform calibration of industrial scale transient problems. The focus of this article is on Bayesian calibration of models with multiple transient outputs. The methodology is demonstrated with two problems with transient outputs. The advantages of using a Bayesian framework are highlighted. Specific challenges related to Bayesian calibration of transient responses are discussed along with potential solutions.
机译:涡轮机械的一些重大工程应用涉及具有多个输出的瞬态模型。因此,校准具有多个相关输出的瞬态模型的能力对于使预测模型能够用于涡轮机械的设计和分析至关重要。当校准参数的数量变大并且对这些参数的了解有限(不确定性较大)时,传统的确定性方法(如最小二乘)不会产生合理的参数估计值。我们采用肯尼迪(Kennedy)和奥哈根(O'Hagan)提出的贝叶斯校准框架来进行工业规模瞬态问题的校准。本文的重点是对具有多个瞬态输出的模型进行贝叶斯校准。瞬态输出中的两个问题证明了该方法。突出显示了使用贝叶斯框架的优势。讨论了与贝叶斯瞬态响应校准有关的特定挑战以及潜在的解决方案。

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