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ABC(SMC)~2: Simultaneous Inference and Model Checking of Chemical Reaction Networks

机译:ABC(SMC)〜2:化学反应网络的同时推断和模型检查

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We present an approach that simultaneously infers model parameters while statistically verifying properties of interest to chemical reaction networks, which we observe through data and we model as parametrised continuous-time Markov Chains. The new approach simultaneously integrates learning models from data, done by likelihood-free Bayesian inference, specifically Approximate Bayesian Computation, with formal verification over models, done by statistically model checking properties expressed as logical specifications (in CSL). The approach generates a probability (or credibility calculation) on whether a given chemical reaction network satisfies a property of interest.
机译:我们提出了一种同时揭示模型参数的方法,同时统计地验证感兴趣的属性,化学反应网络,我们通过数据观察,以及我们模型作为参数化连续时间马尔可夫链。新方法同时通过无差异贝叶斯推断完成的数据,特别是贝叶斯计算,通过对模型进行正式验证,通过统计模型检查属性(在CSL中)进行正式验证。该方法产生关于给定化学反应网络是否满足感兴趣的属性的概率(或可信度计算)。

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