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Hybrid Scalable Researcher Recommendation System Using Azure Data Lake Analytics
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作者 Dinesh Kalla Nathan Smith +1 位作者 Fnu Samaah Kiran Polimetla 《Journal of Data Analysis and Information Processing》 2024年第1期76-88,共13页
This research paper has provided the methodology and design for implementing the hybrid author recommender system using Azure Data Lake Analytics and Power BI. It offers a recommendation for the top 1000 Authors of co... This research paper has provided the methodology and design for implementing the hybrid author recommender system using Azure Data Lake Analytics and Power BI. It offers a recommendation for the top 1000 Authors of computer science in different fields of study. The technique used in this paper is handling the inadequate Information for citation;it removes the problem of cold start, which is encountered by very many other recommender systems. In this paper, abstracts, the titles, and the Microsoft academic graphs have been used in coming up with the recommendation list for every document, which is used to combine the content-based approaches and the co-citations. Prioritization and the blending of every technique have been allowed by the tuning system parameters, allowing for the authority in results of recommendation versus the paper novelty. In the end, we do observe that there is a direct correlation between the similarity rankings that have been produced by the system and the scores of the participant. The results coming from the associated scrips of analysis and the user survey have been made available through the recommendation system. Managers must gain the required expertise to fully utilize the benefits that come with business intelligence systems [1]. Data mining has become an important tool for managers that provides insights about their daily operations and leverage the information provided by decision support systems to improve customer relationships [2]. Additionally, managers require business intelligence systems that can rank the output in the order of priority. Ranking algorithm can replace the traditional data mining algorithms that will be discussed in-depth in the literature review [3]. 展开更多
关键词 Azure Data Lake U-SQL Author Recommendation System Power bi microsoft Academic big Data Word Embedding
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介绍一种污染源数据整合算法及应用 被引量:1
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作者 张富江 《环境保护科学》 CAS 2017年第6期40-44,共5页
面对环保数据普遍存在的"数据孤岛"现状,要开展大数据应用是非常困难的事情,必须要对多源的环保数据进行整合。文章以建设沈阳市智慧环保信息共享平台的环境数据中心(EDC)为例,探讨了在保持原有的环境管理业务应用系统正常运... 面对环保数据普遍存在的"数据孤岛"现状,要开展大数据应用是非常困难的事情,必须要对多源的环保数据进行整合。文章以建设沈阳市智慧环保信息共享平台的环境数据中心(EDC)为例,探讨了在保持原有的环境管理业务应用系统正常运行的同时,对多源污染源数据库的整合算法。并介绍了采用微软BI技术构建"一源一档"的污染源数据中心的关键应用。 展开更多
关键词 环境保护 数据中心 数据整合 多元融合 微软bi
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