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Don't Read Too Much Into It: Adaptive Computation for Open-Domain Question Answering

机译:不要读取太多的内容:开放域问题的自适应计算

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Most approaches to Open-Domain Question Answering consist of a light-weight retriever that selects a set of candidate passages, and a computationally expensive reader that examines the passages to identify the correct answer. Previous works have shown that as the number of retrieved passages increases, so does the performance of the reader. However, they assume all retrieved passages are of equal importance and allocate the same amount of computation to them, leading to a substantial increase in computational cost. To reduce this cost, we propose the use of adaptive computation to control the computational budget allocated for the passages to be read. We first introduce a technique operating on individual passages in isolation which relies on anytime prediction and a per-layer estimation of an early exit probability. We then introduce SKY-LINEBUILDER, an approach for dynamically deciding on which passage to allocate computation at each step, based on a resource allocation policy trained via reinforcement learning. Our results on SQuAD-Open show that adaptive computation with global prioritisation improves over several strong static and adaptive methods, leading to a 4.3x reduction in computation while retaining 95% performance of the full model.
机译:开放域问题接听的大多数方法包括选择一组候选段的轻量级猎犬,以及检查段落的计算昂贵的读者来识别正确答案。以前的作品表明,随着检索到的段落的数量增加,读者的性能也是如此。但是,它们假设所有检索的通道都具有相同的重要性,并分配与它们相同的计算量,导致计算成本大幅增加。为降低此成本,我们建议使用自适应计算来控制分配的计算预算,以便读取段落。我们首先介绍一种在隔离上以各个段落操作的技术,其依赖于随时预测和早期出口概率的每个层估计。然后,我们基于通过增强学习训练的资源分配策略,我们介绍了一种动态地决定在每个步骤中分配计算的方法的方法。我们的Squad-Open的结果表明,具有全局优先级的自适应计算改善了几种强大的静态和自适应方法,导致计算的4.3倍,同时保留了95%的完整模型的性能。

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