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首页> 外文期刊>Journal of Financial Econometrics >Accurate Methods for Approximate Bayesian Computation Filtering
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Accurate Methods for Approximate Bayesian Computation Filtering

机译:近似贝叶斯计算滤波的准确方法

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摘要

The Approximate Bayesian Computation (ABC) filter extends the particle filtering methodology to general state-space models in which the density of the observation conditional on the state is intractable. We provide an exact upper bound for the mean squared error of the ABC filter, and derive sufficient conditions on the bandwidth and kernel under which the ABC filter converges to the target distribution as the number of particles goes to infinity. The optimal convergence rate decreases with the dimension of the observation space but is invariant to the complexity of the state space. We show that the adaptive bandwidth commonly used in the ABC literature can lead to an inconsistent filter. We develop a plug-in bandwidth guaranteeing convergence at the optimal rate, and demonstrate the powerful estimation, model selection, and forecasting performance of the resulting filter in a variety of examples.
机译:近似贝叶斯计算(ABC)滤波器将粒子滤波方法扩展到一般的状态空间模型,在该模型中,以状态为条件的观察密度是难于处理的。我们为ABC滤波器的均方误差提供了一个精确的上限,并在带宽和内核上得出了充足的条件,在这些条件下,随着粒子数达到无穷大,ABC滤波器收敛到目标分布。最优收敛速度随观察空间的尺寸而减小,但不依赖于状态空间的复杂性。我们表明,ABC文献中常用的自适应带宽会导致滤波器不一致。我们开发了可确保以最佳速率收敛的插件带宽,并在各种示例中展示了所得滤波器的强大估计,模型选择和预测性能。

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