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Enhancing Science and Mathematics Education with Computational Modelling

机译:通过计算模型增强科学和数学教育

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The development of knowledge in science and mathematics involves modelling processes where theory, experiment and computation are dynamically interconnected. For education in these fields to be in contact with their rapid progress and closer to the nature of research, it is crucial that both curricula and learning environments from high school to university manifest effectively a balanced interplay between theoretical, experimental and computational elements. We present an approach to improve the integration process of computational modelling in the science and mathematics high school and university curricula while respecting the cognitive balance between theoretical aspects, experimentation and scientific computation. As strategy, we propose the creation of learning activities built around exploratory and expressive computational modelling experiments which are presented in digital documents where the fundamental concepts and problem solving processes are explained using interactive text, images and embedded movies. To design the activities, special emphasis is given to cognitive conflicts in the understanding of scientific and mathematical concepts, to the manipulation of multiple representations of mathematical models and to the interaction between analytical and numerical solutions. We discuss illustrative examples constructed with Modellus which are relevant for the high school and undergraduate university curricula in mathematics and physics .
机译:科学和数学知识的发展涉及建模过程,其中理论,实验和计算是动态互连的。为了使这些领域的教育与他们的快速发展和接近研究的本质保持联系,从高中到大学的课程和学习环境都必须有效地体现理论,实验和计算元素之间的平衡相互作用,这一点至关重要。我们提出一种在尊重理论,实验和科学计算之间的认知平衡的同时,改善科学和数学高中及大学课程中计算模型集成过程的方法。作为策略,我们建议围绕探索性和表达性计算建模实验建立学习活动,这些实验以数字文档形式呈现,其中使用交互式文本,图像和嵌入式电影解释了基本概念和解决问题的过程。为了设计活动,特别强调了对科学和数学概念的理解中的认知冲突,对数学模型的多种表示的操纵以及分析和数值解之间的相互作用。我们讨论了用Modellus构建的与高中和大学的数学和物理课程有关的示例。

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