安徽农学通报 >
2025 , Vol. 31 >Issue 14: 126 - 128
DOI: https://doi.org/10.16377/j.cnki.issn1007-7731.2025.14.029
智慧农业驱动下的大数据人才培养体系构建与实践
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张耀军(1979—),男,河南信阳人,博士,副教授,从事人工智能、图像信息处理等研究。 |
Copy editor: 杨欢
收稿日期: 2025-04-08
网络出版日期: 2025-07-31
基金资助
河南省高等教育教学改革研究与实践项目(2024SJGLX0551)
信阳农林学院校内教育教学改革研究与实践项目(2024XJGGJ09)
信阳农林学院校内教育教学改革研究与实践项目(2024XJGGJ42)
Construction and practice of big data talent training system driven by smart agriculture
Received date: 2025-04-08
Online published: 2025-07-31
为适应智慧农业发展对大数据人才的需求,本文从教学内容、实践教学等方面入手分析人才培养体系现状,并针对性地提出相应对策。当前,农业大数据人才培养体系中存在学科交叉融合度不足,较难紧跟行业发展趋势,缺乏足够的实践教学基地且实践效果较难评定,大数据实践教学开展程度不深等问题。基于此,提出如下改进措施。优化课程设置,增设跨学科内容,确保教学内容与时俱进;创新教学模式,运用项目驱动等教学方法,打造线上线下智慧化教学平台;强化实践教学,引导学生积极投身企业委托的横向项目;深化校企合作,利用校企共建模拟农业生产的场地搭建大数据实践平台,邀请企业专家作为外聘导师;完善评价体系,设置知识掌握(40%)+实践能力(30%)+创新素养(20%)+职业素养(10%)相结合的评价体系。实践表明,该人才培养体系可以提高学生知识掌握情况、实践操作技能、创新能力、职业素养等。本文为适应大数据发展需求培养高素质人才提供参考。
张耀军 , 刘昊然 , 吴桂玲 . 智慧农业驱动下的大数据人才培养体系构建与实践[J]. 安徽农学通报, 2025 , 31(14) : 126 -128 . DOI: 10.16377/j.cnki.issn1007-7731.2025.14.029
To meet the demand for big data talents in the development of smart agriculture, the current situation of talent cultivation system was analyzed from the aspects of teaching content and practical teaching, and the targeted measures were proposed. At present, there are problems in the talent cultivation system for agricultural big data, such as insufficient interdisciplinary integration, difficulty in keeping up with industry development trends, lack of sufficient practical teaching bases and difficulty in evaluating practical effects, and shallow implementation of big data practical teaching. Based on this, the following improvement measures are proposed. Optimize curriculum design, add interdisciplinary content, and ensure that teaching content keeps pace with the times; innovate teaching models, use project-based teaching methods, and create intelligent online and offline teaching platforms; strengthen practical teaching and guide students to actively participate in horizontal projects commissioned by enterprises; deepen school enterprise cooperation, use school enterprise joint construction to build a big data practice platform for simulating agricultural production, and invite enterprise experts as external mentors; improve the evaluation system and establish an evaluation system that combines knowledge mastery (40%), practical ability (30%), innovation literacy (20%), and professional competence (10%). Practice has shown that this talent cultivation system can improve students' knowledge mastery, practical operation skills, innovation ability, professional ethics, and so on. This article provides a reference for cultivating high quality talents to meet the development needs of big data.
Key words: smart agriculture; big data; Internet of Things; agricultural digitization
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