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Novel Metaknowledge-Based Processing Technique for Multimediata Big Data Clustering Challenges

机译:新颖的基于元知识的多媒体大数据聚类挑战处理技术

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Past research has challenged us with the task of showing relational patterns between text-based data and then clustering for predictive analysis using Golay Code technique. We focus on a novel approach to extract metaknowledge in multimedia datasets. Our collaboration has been an on-going task of studying the relational patterns between data points based on met features extracted from metaknowledge in multimedia datasets. Those selected are significant to suit the mining technique we applied, Golay Code algorithm. In this research paper we summarize findings in optimization of metaknowledge representation for 23-bit representation of structured and unstructured multimedia data in order to be processed in 23-bit Golay Code for cluster recognition.
机译:过去的研究向我们挑战了任务,即显示基于文本的数据之间的关系模式,然后使用Golay Code技术进行聚类以进行预测分析。我们专注于一种新颖的方法来提取多媒体数据集中的元知识。我们的合作一直是一项正在进行的任务,它基于从多媒体数据集中的元知识中提取的气象要素,研究数据点之间的关系模式。选择的那些对于适合我们应用的采矿技术Golay Code算法具有重要意义。在这篇研究论文中,我们总结了结构化和非结构化多媒体数据的23位表示的元知识表示的最优化,以便在23位Golay代码中进行处理以进行簇识别。

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