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A Cognitive Query Model for Arabic based on probabilistic associative morpho-phonetic Sub-Networks

机译:基于概率关联的Morpho-Phonetic子网的阿拉伯语认知查询模型

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This paper is discussing some novel aspects related to formalizing a Cognitive Query Model for Arabic based on constructing query associative morpho-phonetic Sub-Networks in the context of Arabic query analysis and expansion. As Humans tend to use limited number of words with possibly incomplete and ambiguous representation for requesting information, predicting the intended information conveyed in a query keywords might affect an inter-cognitive communication dramatically. Based on Associative Probabilistic Bi-directional Root-Pattern Relations introduced in APRoPAT Statistical Language Model, a cognitively motivated representation for query semantic network construction is proposed. This Model attempts to predicting the most plausible intended query information by constructing a morpho-phonetic cognitive Sub-Network based on the query terms and instantiation of the most probable query root-pattern phonetic vectors within the global Associative Network expressed by the APRoPAT Model.
机译:本文讨论了一些新颖的方面,其基于构建阿拉伯查询分析和扩展的语境构建查询关联的Morpho-Conic子网来形式地形成阿拉伯语的认知查询模型。 由于人类倾向于利用有限数量的单词来请求信息,预测在查询关键字中传送的预期信息可能会显着影响认知间通信。 基于Apropat统计语言模型引入的关联概率双向根模式关系,提出了查询语义网络构建的认知激励表示。 该模型试图通过基于查询术语构建语音语音认知子网来预测最理和的预期查询信息,并基于盛开的呼应模型表示的全局关联网络中最可能的查询根模式语音矢量的实例化。

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