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首页> 外文期刊>EURASIP journal on advances in signal processing >Multiple importance sampling revisited: breaking the bounds
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Multiple importance sampling revisited: breaking the bounds

机译:重新探讨多重重要性抽样:突破界限

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We revisit the multiple importance sampling (MIS) estimator and investigate the bound on the efficiency improvement over balance heuristic estimator with equal count of samples established in Veach’s thesis. We revise the proof for this and come to the conclusion that there is no such bound and henceforth it makes sense to look for new estimators that improve on balance heuristic estimator with equal count of samples. Next, we examine a recently introduced non-balance heuristic MIS estimator that is provably better than balance heuristic with equal count of samples, and we improve it both in variance and efficiency. We then obtain an equally provably better one-sample balance heuristic estimator, and finally, we introduce a heuristic for the count of samples that can be used when the individual techniques are biased. All in all, we present three new sampling strategies to improve on both variance and efficiency on the balance heuristic using non-equal count of samples. Our scheme requires the previous knowledge of several quantities, but those can be obtained in an adaptive way. The results also show that by a careful examination of the variance and properties of the estimators, even better estimators could be discovered in the future. We present examples that support our theoretical findings.
机译:我们重新审视了多元重要性抽样(MIS)估算器,并研究了在Veach论文中建立的样本数量相等的情况下,平衡启发式估算器效率提高的界限。我们对此进行了修改,得出的结论是,没有这种限制,因此寻找具有相同样本数的平衡启发式估计器进行改进的新估计器是有意义的。接下来,我们检查了最近引入的非平衡启发式MIS估计器,该估计器在样本数相等的情况下优于平衡启发式,并且在方差和效率上都进行了改进。然后,我们获得了一个同样可证明更好的单样本平衡启发式估计器,最后,我们引入了一种启发式方法,用于对各个技术有偏见时可以使用的样本数量。总而言之,我们提出了三种新的采样策略,以提高使用非等数采样的平衡启发式算法的方差和效率。我们的方案需要多个量的先前知识,但是可以以自适应方式获得。结果还表明,通过仔细检查估计量的方差和性质,将来甚至可以发现更好的估计量。我们提供一些实例来支持我们的理论发现。

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