Collaborative Research: CyberTraining: Implementation: Medium: Training Users, Developers, and Instructors at the Chemistry/Physics/Materials Science Interface
Collaborative Research: CyberTraining: Implementation: Medium: Training Users, Developers, and Instructors at the Chemistry/Physics/Materials Science Interface
批准号:
2321103
负责人:
Michele Pavanello
金额:
$33.3万
依托单位国家:
美国
项目类别:
Standard Grant
财政年份:
2024
资助国家:
美国
项目状态:
未结题
起止时间:
2024-01-01 至 2027-12-31
中文摘要
在当前的教育体系中,学生和研究人员在计算工具和技术方面的培训是一个重大挑战,该体系倾向于优先考虑分析理论和实验实践。这一挑战在跨学科领域尤其突出,例如化学反应性、材料界面和材料建模的研究。传统方法依赖于单一工具和单一应用方法,限制了应用范围,阻碍了学术界和工业界的创新。该项目提出了一种全面的方法来解决这些限制,提供正式和非正式的培训活动,包括学校,研讨会,课程模块和黑客松。该方法强调通过反馈循环和社区建设活动将用户、开发人员和教师整合在一起。主要目标是建立一个强大的材料建模开发人员社区,并加强本科和研究生水平的计算培训。该项目旨在招募和培训未来的材料建模领导者,促进社区参与,并促进跨学科的编码素养。该项目提出了一个四管齐下的方法,包括正式(学校,研讨会,课程模块)和非正式(黑客松)的培训活动,解决研究培训和更基础的本科生/研究生培训,用于数据分析和材料建模的计算方法。该方法设想了用户,开发人员和教师之间的强大联系,包括反馈循环和社区建设活动。我们的目标是形成一个强大的美国开发人员社区,用于材料建模和STEM代码开发。该项目将通过为具有各种背景的学习者提供最先进的技术和技能来实现其目标,向他们展示如何通过结合理论和算法或通过无偏见的模式学习来克服复杂性的挑战。它将促进学习者,开发人员和教师在其职业生涯的不同阶段在多个连续的事件,旨在创造一个有凝聚力和可持续的环境,研究和教育发展可以超越项目的持续时间增长之间的社区建设。使用计算工具作为特定学科课程的功能组件,并采用非正式的学习活动,使该项目能够克服由不归属感和低自信感所带来的常见障碍。该奖项反映了NSF的法定使命,并通过使用基金会的智力价值和更广泛的影响审查标准进行评估,被认为值得支持。
英文摘要
The training of students and researchers in computational tools and techniques is a significant challenge in the current educational system, which tends to prioritize analytical theory and experimental practice. This challenge is particularly prominent in interdisciplinary fields such as the study of chemical reactivity, materials interfaces, and materials modeling. Conventional approaches that rely on single-tool and single-application methods limit the range of applications and hinder innovation in academia and industry. This project proposes a comprehensive approach to address these limitations by offering formal and informal training events, including schools, workshops, course modules, and hackathons. The approach emphasizes the integration of users, developers, and instructors through feedback loops and community-building activities. The primary objectives are to establish a robust community of materials modeling developers and to enhance computational training at both undergraduate and graduate levels. The project seeks to recruit and train future leaders in materials modeling, foster community engagement, and promote coding literacy across disciplines.The project proposes a four-pronged approach involving formal (schools, workshops, course modules) and informal (hackathons) training events that address research training and more fundamental undergraduate/graduate training in computational methods for data analysis and materials modeling. The approach envisions a strong connection between users, developers, and instructors, encompassing feedback loops and community-building activities. The goal is to form a robust US-based community of developers for materials modeling and, generally, STEM code development. The project will achieve its aims by providing learners with various backgrounds exposure to state-of-the-art techniques and skills, showing them how to overcome the challenges of complexity by combining theories and algorithms or by unbiased learning of patterns. It will foster community-building among learners, developers, and instructors at different stages of their careers in multiple successive events designed to create a cohesive and sustainable environment where research and educational developments can grow beyond the project's duration. Using computational tools as functional components of discipline-specific curricula and adopting informal learning events allows the project to overcome common barriers given by feelings of non-belonging and low self-confidence.This award reflects NSF's statutory mission and has been deemed worthy of support through evaluation using the Foundation's intellectual merit and broader impacts review criteria.
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依托单位:
Electron-Rich Oxide Surfaces
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负责人:Michele Pavanello
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依托单位:
国内基金
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