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Organization of Meta-knowledge in the Form of 23-Bit Templates for Big Data Processing

机译:大数据处理的23位模板形式的元知识组织

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We are living and facing an unprecedented growth of available large-scale structured and unstructured data both. From different broad range of online websites and applications, data is being collected at significantly exceptional rate. For instance, as described in [11] "Facebook reports about 6 billion new photos every month and 72 hours of video are uploaded to YouTube every minute". Researchers and developers are faced with this large amount of data that needs to be processed, analyzed, and clustered. Analysis of Big Data essentially drives every aspect of our daily life, including and not limited to, retail services, mobile services, financial services, manufacturing, and life sciences. The existing and conventional data processing techniques and clustering algorithms were not initially designed to handle this large amount of data and we face challenges to analyze Big Data. This research paper attempts to enhance these existing clustering algorithms to process Big Data. This research introduces an unprecedented big data processing technique using a 23-bit question meta-knowledge template for Big Data clustering in a linear time complexity O(n).
机译:我们正在生活,并面临着可用的大规模结构化和非结构化数据的空前增长。从各种广泛的在线网站和应用程序中,数据的收集速度非常快。例如,如[11]中所述,“ Facebook每月报告约60亿张新照片,每分钟将72小时的视频上传到YouTube”。研究人员和开发人员面临着需要处理,分析和群集的大量数据。大数据分析从根本上推动了我们日常生活的方方面面,包括但不限于零售服务,移动服务,金融服务,制造业和生命科学。现有的和常规的数据处理技术以及聚类算法最初并不是为处理大量数据而设计的,我们在分析大数据方面面临挑战。本研究论文试图增强这些现有的聚类算法以处理大数据。这项研究介绍了一种空前的大数据处理技术,该技术使用23位问题元知识模板以线性时间复杂度O(n)进行大数据聚类。

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