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Denormalized quantum density operators for encoding semantic uncertainty in cognitive agents

机译:非规格化量子密度运营商用于编码认知剂中的语义不确定性

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The design of a cognitive agent requires a behaviour control of actions and observations for exploring an unknown world. Typically, observations are influenced by a certain degree of randomness which can be modeled as probabilities. In our scenario we let a mouse explore a maze with walls, boundaries and a random portal. All observations are stored and managed in a so-called inner stage. As a decision problem, we want to be able to plan actions and to predict their resulting observations. In our approach we develop models of the inner stage based on concepts of probabilistic databases and their mapping to denormalized density matrices which are known from quantum mechanics. Density matrices provide a compact representation of the powerful but unwieldy many-world-semantics. We show that density matrices make the many-world-semantics feasible and are well suited to model the inner stage. We propose algorithms for learning and predicting action results.
机译:认知剂的设计需要对探索未知世界的行为和观察的行为控制。通常,观察结果受到一定程度的随机性,其可以被建模为概率。在我们的场景中,我们让鼠标探索带有墙壁,边界和随机门户的迷宫。在所谓的内级存储并管理所有观察。作为一个决定问题,我们希望能够计划行动并预测其所产生的观察。在我们的方法中,我们基于概率数据库的概念及其对量子力学中已知的非规范密度矩阵的概念开发内部阶段的模型。密度矩阵提供了强大但笨重的多世界语义的紧凑型表示。我们表明密度矩阵使得许多世界语义可行,非常适合模拟内部阶段。我们提出了学习和预测行动结果的算法。

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