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Combinatorial Optimization Approach for Arabic Word Recognition Based on Adaptive Simulated Annealing

机译:基于自适应模拟退火的阿拉伯语字识别组合优化方法

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The present paper proposes an approach based on a combinatorial optimization technique for Arabic word recognition, distinguished by its flexional nature and significant topological variability. We treat a large vocabulary of Arabic decomposable words, which we choose to factorize them by their roots and schemes. We adopt a structure that resembles a molecular cloud. This design rhymes well with the Arabic linguistic philosophy of constructing words from their roots. Each sub-vocabulary, corresponding to a sub-cloud, embodies neighboring words, which are derived from one root and follow different schemes and forms of derivation, flexion, and agglutination (proclitic and enclitic). Therefore, we propose to use the metaheuristic simulated annealing (SA) method, as a recognition approach, in this wide cloud. It's an algorithm based on elastic comparisons between their structures and primitives. As an extension of previous works, we opt to implement the SA algorithm by integrating linguistic knowledge. Preliminary experiments were conducted on Arabic word corpus including samples and agglutinated words from APTI database and yielded interesting outcomes.
机译:本文提出了一种基于阿拉伯语识别的组合优化技术的方法,其柔性性质和显着的拓扑变异性。我们对待一个大型的阿拉伯可归词汇,我们选择通过他们的根和方案来定制它们。我们采用一种类似于分子云的结构。这种设计押韵与阿拉伯语言哲学从根源构建的词语。对应于子云的每个子词汇体体现了邻近的单词,其源自一个根,并遵循不同的方案和衍生,屈曲和凝集形式(沟通和附近)。因此,我们建议使用该宽云中的识别方法来使用所元训练模拟退火(SA)方法。这是一种基于结构和基元之间的弹性比较的算法。作为以前的作品的扩展,我们通过整合语言知识来选择实现SA算法。在阿拉伯语单词语料库中进行了初步实验,包括来自APTI数据库的样本和凝集词,并产生了有趣的结果。

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