通过教育和软件基础设施支持计算学徒制:一个数学肿瘤学研究实验室的案例研究

Aasakiran Madamanchi, Madison Thomas, Alejandra J. Magana, R. Heiland, P. Macklin
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引用次数: 4

摘要

人们越来越意识到需要数学和计算来定量地理解生命科学中复杂的动态和反馈。虽然个别机构和研究小组正在进行开创性的多学科研究,但跨领域的交流和教育仍然是一个瓶颈。利用教育研究原理在数学、计算和生物学交叉领域开发跨学科训练新机制的时机已经成熟。在本文中,我们提出了一个案例研究,描述了一个计算生物学实验室的努力,以快速原型,测试和完善指导基础设施,以符合计算学徒理论框架的本科生研究经验。我们描述了挑战、好处和经验教训,以及计算学徒框架在支持计算/数学学生学习和贡献生物学方面的效用,以及生物学家在学习计算方法方面的效用。我们也探讨了对本科课堂教学和跨学科科学交流的影响。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Supporting Computational Apprenticeship Through Educational and Software Infrastructure: A Case Study in a Mathematical Oncology Research Lab
There is growing awareness of the need for mathematics and computing to quantitatively understand the complex dynamics and feedbacks in the life sciences. Although individual institutions and research groups are conducting pioneering multidisciplinary research, communication and education across fields remains a bottleneck. The opportunity is ripe for using education research principles to develop new mechanisms of cross-disciplinary training at the intersection of mathematics, computation and biology. In this paper we present a case study which describes the efforts of one computational biology lab to rapidly prototype, test, and refine a mentorship infrastructure for undergraduate research experiences in alignment with the computational apprenticeship theoretical framework. We describe the challenges, benefits, and lessons learned, as well as the utility of the computational apprenticeship framework in supporting computational/math students learning and contributing to biology, and biologists in learning computational methods. We also explore implications for undergraduate classroom instruction, and cross-disciplinary scientific communication.
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