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Survey: When semantics meet crowdsourcing to enhance big data variety

机译:调查:当语义遇到众包以增强大数据多样性时

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摘要

With the rapid growth of collected data and the variety of its content, the need for efficient integration at a Big Data level becomes crucial. Semantic technologies, as a means of integration and coordination of heterogeneous systems, may help big data to manage terminology and relationships to link various data from different data sources. However, and due to the difficulty of integration and analytics of some datasets with high-precision, automated processes cannot reach a high level of accuracy without the human cognitive ability. Crowdsourcing platforms have the potential to integrate (entity matching, entity resolution) and analyze (sentiment analysis, image recognition) heterogeneous data sources when in some cases these integration tasks may prove to be problematic for computers. In this survey, we explore and compare empirical research studies that rely on merging semantic and crowdsourcing technologies. And, in the light of this comparison, we propose a high-level integration workflow, which shows how merging these technologies can enhance the big data integration process and tackle the data analysis challenges.
机译:随着收集数据的快速增长及其内容的多样性,在大数据级别进行有效集成的需求变得至关重要。语义技术,作为集成和协调异构系统的一种手段,可以帮助大数据管理术语和关系,以链接来自不同数据源的各种数据。但是,由于难以高精度地集成和分析某些数据集,因此,如果没有人类的认知能力,自动化过程就无法达到很高的准确性。当在某些情况下这些整合任务可能对计算机造成问题时,众包平台具有整合(实体匹配,实体解析)和分析(情感分析,图像识别)异构数据源的潜力。在本次调查中,我们探索并比较了依赖于语义和众包技术融合的实证研究。并且,根据这种比较,我们提出了一个高级集成工作流,该工作流显示了合并这些技术如何能够增强大数据集成过程并解决数据分析挑战。

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