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Adaptation algorithms for selecting personalised learning experience based on learning style and dyslexia type

机译:适应算法选择个性化基于学习风格和学习经验阅读障碍类型

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Purpose Through harnessing the benefits of the internet, e-learning systems provide flexible learning opportunities that can be delivered at a fixed cost at a time and place to suit the user. As such, e-learning systems can allow students to learn at their own pace while also being suitable for both distance and classroom-based learning activities. Adaptive educational hypermedia systems are e-learning systems that employ artificial intelligence. They deliver personalised online learning interventions that extend electronic learning experiences beyond a mere computerised book through the use of intelligence that adapts the content presented to a user according to a range of factors including individual needs, learning styles and existing knowledge. The purpose of this paper is to describe a novel adaptive e-learning system called dyslexia adaptive e-learning management system (DAELMS). For the purpose of this paper, the term DAELMS will be employed to describe the overall e-learning system that incorporates the required functionality to adapt to students' learning styles and dyslexia type. Design/methodology/approach The DAELMS is a complex system that will require a significant amount of time and expertise in knowledge engineering and formatting (i.e. dyslexia type, learning styles, domain knowledge) to develop. One of the most effective methods of approaching this complex task is to formalise the development of a DAELMS that can be applied to different learning styles models and education domains. Four distinct phases of development are proposed for creating the DAELMS. In this paper, we will discuss Phase 3 which is the implementation and some adaption algorithms while in future papers will discuss the other phases. Findings An experimental study was conducted to validate the proposed generic methodology and the architecture of the DAELMS. The system has been evaluated by group of university students studying a Computer Science related majors. The evaluation results proves that when the system provide the user with learning materials matches their learning style or dyslexia type it enhances their learning outcomes. Originality/value The DAELMS correlates each given dyslexia type with its associated preferred learning style and subsequently adapts the learning material presented to the student. The DAELMS represents an adaptive e-learning system that incorporates several personalisation options including navigation, structure of curriculum, presentation, guidance and assistive technologies that are designed to ensure the learning experience is directly aligned with the user's dyslexia type and associated preferred learning style.
机译:目的通过利用的好处互联网,电子学习系统提供灵活的学习机会,可以交货固定成本在一个时间和地点,以适应用户。因此,电子学习系统可以允许学生按照自己的节奏学习同时也合适距离和课堂学习活动。系统采用在线学习系统人工智能。个性化在线学习的干预措施扩展电子学习经验之外仅仅通过使用计算机的书智能调整显示的内容根据一系列因素,包括一个用户个人需求、学习风格和现有的知识。描述一种新颖的自适应学习系统叫诵读困难适应在线学习管理系统(DAELMS)。DAELMS会使用这个词来形容整体的在线学习系统,包含了需要的功能以适应学生学习方式和阅读障碍类型。设计/方法/方法DAELMS是复杂的系统,需要一个重要的的时间和专业知识工程和格式(即阅读障碍类型,学习方式、领域知识)来培养。接近的最有效的方法之一这个复杂的任务是正规化发展的DAELMS可以应用于不同学习风格模型和教育领域。提出了四个不同的发展阶段用于创建DAELMS。第三阶段是实现和讨论一些适应算法在未来的论文将讨论另一个阶段。试验研究进行了验证提出了通用的方法和体系结构DAELMS。群大学生学习计算机科学相关专业。证明当系统向用户提供学习材料匹配他们的学习风格它增强了他们的学习或阅读障碍类型结果。每个特定的阅读障碍类型及其相关首选的学习风格,随后适应对学生提供的学习材料。DAELMS代表了一种自适应学习系统包含多个个性化选项包括导航结构课程,演示,指导和辅助技术,确保设计的直接与学习经验用户的阅读障碍类型和相关的优先学习风格。

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