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Monte Carlo Semantics: McPIET at RTE4

机译:Monte Carlo语义:McPiet在RTE4

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The Monte Carlo Pseudo Inference Engine for Text (McPIET) addresses the RTE problem within a new theoretic framework for robust inference and logical pattern processing based on integrated deep and shallow semantics. In this report we outline, in some detail, this new theoretic framework, and we will use it to shed some light on the informativity and robustness characteristics for the extreme cases of deep and shallow processing. Unsurprisingly, it will turn out that there is a tradeoff between informativity and robustness. We will be able to characterize an important new notion of a degree of validity, and provide some evidence to suggest that this concept plays a crucial role in the robustness of shallow inference. At the same time our framework still supports informationally rich semantic representations and background theories, which play the central role in the informativity of deep inference. Within our new theory we can then pose, from a completely new perspective, the problem of deep/shallow integration, and also propose a solution to it, which we will call Monte Carlo Semantics.
机译:用于文本的蒙特卡罗伪推理引擎(MCPIET)在基于集成深层和浅浅语义的鲁棒推理和逻辑模式处理的新的理论框架内解决了RTE问题。在本报告中,我们概述了这种新的理论框架,我们将使用它来阐明一些光线和舒适特征,为深层和浅层加工的极端情况。不出所料,事实证明,信息性与稳健性之间存在权衡。我们将能够对一定程度的有效性表征重要的新概念,并提供一些证据表明这一概念在浅推论的鲁棒性中发挥着至关重要的作用。与此同时,我们的框架仍然支持信息性的丰富语义表示和背景理论,这在深度推理的信息性中起着核心作用。在我们的新理论中,我们可以从一个完全新的角度来看,深/浅的一体化问题,也提出了一种解决方案,我们将调用Monte Carlo语义。

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