基于相似度的作者推荐系统的命题

B. Faqihi, N. Daoudi, R. Ajhoun
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引用次数: 1

摘要

目前,各学习点的教育资源增长迅速。课程生产者是教育资源创造和编排过程中的基础性角色,也是负责任的行动者。首先,由于生产新教育资源的过程所产生的成本,以及由于这些资源的丰富性。作者被邀请避免各种徒劳的重复,因此利用和加入努力。我们的目的是在课程创建过程中为作者简介提供一个参考系统,这可能需要生产几个教育资源来响应一般和特定的目标。因此,我们之前已经为作者在全局本体中寻找的资源或创建的对象创建了一个模式或表示。在本文中,我们希望开展基于本体得出的准则和基于相似度的度量技术的研究。我们将把这篇论文与两个建议标准捆绑在一起,即;教育目标和标签。事实上,每一种教育资源不仅包含一个教育目标,而且至少从其创建环境(开放教育资源,MOOC或e-learning)中单独包含一个标签。在课程创建过程中,作者有责任识别,首先是指定的领域,具体目标,少量标签和注释或关键词;这些元素将服务于我们的本体论。基于作者与银行用例内容之间的相似度度量技术,推荐系统必须按照相似度降序排序给出结果。作者需要通过在管理员的监督下对每个资源进行加权、索引或记忆来更新结果的可能性。出于这个原因,我们首先要限制我们的学习环境;OER、MOOC和电子学习。然后,我们将研究领域限制在人工智能。之后,我们将对承认该概念的资源进行研究。最后,我们将进行这些研究之间的比较研究,以便能够选择方便的技术,我们的工作环境。第一部分提出了教育资源提取的适应方法。此后,我们将从识别提取转向本体的增强。最后,我们将根据我们的需要对标准进行优先级排序,并提出一些度量技术,并根据我们的环境选择一个采用。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Proposition of the recommendation system for the author based on similarity degrees
At present, there is a rapid increase of educational resources in various learning stands. The lesson producer is a fundamental as well as a responsible actor in the creation and the outline of educational resources. First, due to the cost caused by the process of producing new educational resources, and because of the fullness within these lasts. The author is invited to evade all sorts of vain duplications, and so take advantage and join the efforts. Our aim is to suggest a reference system to the author profile during the lesson creation, which may require the production of several educational resources to respond to general and specific objectives. Therefore, we have previously created a mode or a representation for the resource sought or the creation’s object by the author throughout a global ontology.In this paper, we hope for the launch of research based on the criteria drawn from the ontology and the mensuration techniques depending on the similarity degrees. We will bound this paper to two recommendations criteria that are; educational objectives and tags. Indeed, each educational resource contains, not only but an educational objective and at least a tag alone from its creation environment (Open Educational Resource, MOOC or e-learning). During the lesson creation, the author is beholden to identifying, above all the domain assigned, the specific objective, few tags and annotations or keywords; these elements are going to serve our ontology. Based the measures’ techniques of similarity amidst the author and the bank’s content of utilization cases, the recommendation system has to place a result sorted through a descending similarity degree. The author requires the possibility of updating the results by interposing under an administrator’s supervision a weighting, an indexation or a memorization related to each resource. For this reason, we firstly are going to limit our learning environment to; OER MOOC and e-learning. Then, we will limit the research domain to the Artificial Intelligence. Afterwards, we are going to perform researches on resources acknowledging the concept in question. Lastly, we will proceed to a comparative study amongst these studies in order to be able to choose the convenient technique to our work context. The first section consists of presenting the adapted method for the extraction educational resources. Thereafter, we are going to move towards the enhancement of our ontology from the identified extraction. Finally, we are going to prioritize the criteria according to our needs and present some measures techniques and choose one to adopt for our context.
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