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Recommender-as-a-service with chatbot guided domain-science knowledge discovery in a science gateway

机译:带有Chatbot引导域名 - 科学知识发现的推荐人服务在科学网关中

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Scientists in disciplines such as neuroscience and bioinformatics are increasingly relying on science gateways for experimentation on voluminous data, as well as analysis and visualization in multiple perspectives. Though current science gateways provide easy access to computing resources, data sets and tools specific to the disciplines, scientists often use slow and tedious manual efforts to perform knowledge discovery to accomplish their research/education tasks. Recommender systems can provide expert guidance and can help them to navigate and discover relevant publications, tools, data sets, or even automate cloud resource configurations suitable for a given scientific task. To realize the potential of integration of recommenders in science gateways in order to spur research productivity, we present a novel "OnTimeRecommend" recommender system. The OnTimeRecommend comprises of several integrated recommender modules implemented as microservices that can be augmented to a science gateway in the form of a recommender-as-a-service. The guidance for use of the recommender modules in a science gateway is aided by a chatbot plug-in viz., Vidura Advisor. To validate our OnTimeRecommend, we integrate and show benefits for both novice and expert users in domain-specific knowledge discovery within two exemplar science gateways, one in neuroscience (CyNeuro) and the other in bioinformatics (KBCommons).
机译:神经科学和生物信息学等学科的科学家越来越依赖于科学网关进行大量数据的实验,以及多种角度分析和可视化。虽然目前的科学网关提供了轻松访问计算资源,数据集和对学科的工具,但科学家们经常使用缓慢而繁琐的手工努力来执行知识发现,以完成他们的研究/教育任务。推荐系统可以提供专家指导,可以帮助他们导航和发现相关的出版物,工具,数据集或甚至自动化云资源配置,适用于给定的科学任务。为了实现科学网关中推荐的集成潜力,以便刺激研究生产力,我们提出了一部小说“OntimerCommend”推荐制度。 OntimereCommend包括几种集成的推荐模块,该模块实现为微服务,这些模块可以以推荐者服务的形式增强到科学网关。在科学网关中使用推荐模块的指导是由Chatbot插件viz辅助的。,vidura顾问。为了验证我们的OntimerCommend,我们在两个示例性科学网关中整合并显示新手和专家用户在域的特定知识发现中,在两个示例性科学网关中,一个在神经科学(Cyneuro)和其他生物信息学(KBCommons)中的域名知识发现。

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