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Classy AA-NECTAR: Personalized Ubiquitous E-Learning Recommender System with Ontology and Data Science Techniques

机译:Classy AA-Nectar:具有本体和数据科学技术的个性化无处的电子学习推荐系统

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Learners have different learning styles each tailored to their own personality. Incompatibility of learning and teaching style is inconvenient. This paper integrates learner behavior modeling, academic web crawling and content retrieval using state of the art technology. This research work aims to propose a personalized ubiquitous learning model to identify learner learning styles and deploy type of content that is corresponding to the learner’s learning style. Felder-Solomon model is one of the models being used for the learner profiling. This gives ease not only to the learners but the pedagogical instructors as well for not making different type of content. Real time monitoring makes the self-adaptive system learn through the learner’s gestures and self-adjusts autonomously. Learners’ aptitude increases, saving time and inconvenience. This will give an easy access to certifying organizations to get more capable skill oriented people.
机译:学习者有不同的学习风格,每个学习方式都针对自己的个性量身定制。 学习和教学风格的不相容是不方便的。 本文将学习者行为建模,学术网络爬网和内容检索使用现有技术集成了。 本研究工作旨在提出个性化无处不在的学习模型来识别学习者学习方式,并部署与学习者的学习风格对应的内容。 Felder-Solomon模型是用于学习者分析的模型之一。 这不仅可以向学习者提供轻松,而是对教学教师以及没有做出不同类型的内容。 实时监控使自适应系统通过学习者的手势来学习,自动调整自动调整。 学习者的能力增加,节省时间和不便。 这将轻松访问认证组织,以获得更有能力的技能。

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