生成式AI与跨模态学习融合的中国古典园林认知教学探索 ——以园林绘画复原为例
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国家社会科学基金冷门绝学研究专项学术团队项目“东南亚华侨华人建筑文化遗产保护传承研究”(编号:24VJXT013)


Integrating Generative AI and Cross-modal Learning for Chinese Garden Cognition Pedagogy: An Exploratory Study on Reconstructing Gardens from Ancient Landscape Paintings
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    随着信息技术的飞速发展,生成式人工智能与跨模态学习技术的出现,为风景园林专业教学创新提供了重要机遇。为提升中国古典园林认知教学效果,探索并构建了一种AI赋能下的园林认知教学新模式。以园林绘画复原为媒介,设计“五阶递进式”教学框架,引导学生完成从知识学习、视觉解读到AI实践与批判反思的完整学习闭环。通过分阶段AI技术流程,实现引导式园林场景复原。此技术路径旨在将抽象园林知识、园林绘画图像与前沿AI技术有机融合,构建从数据处理、模型构建到成果生成的完整技术支撑。教学实施层面,该框架与技术流程围绕代表性的园林绘画复原任务,通过理论授课与技术实操结合,引导学生分组协作,完成从文献研究到AI复原的全过程。教学成果表明,该模式初步实现对园林绘画的AI复原。学生不仅生成较高写实度和历史氛围的园林图像,更深化了对古典园林设计法则、空间意境与文化内涵的理解。相较传统方法,融合AI的教学模式在激发学生主动性与探究性、实现认知方式动态化与体验感、提升知识获取多模态性与高效率,以及系统培养数字技术应用、批判性思维等方面展现出明显优势,有效缩短了认知周期,为风景园林教育从“知识传授型”向“能力导向、探究学习型”的范式转型提供实践依据与方法论参考,对推动AI时代风景园林教育的创新与可持续发展具有积极意义。

    Abstract:

    With the rapid development of information technology, the emergence of Generative AI and cross-modal learning technology provides essential opportunities for innovative teaching in landscape architecture. This teaching research aims to enhance the effectiveness of cognitive teaching in Chinese classical gardens and explore and construct a new model of garden cognitive teaching empowered by AI. This teaching utilizes landscape painting restoration as a medium and designs a “five-step progressive” teaching framework to guide students through a complete learning loop, from knowledge acquisition to visual interpretation, AI practice, and critical reflection. Through a phased AI technology process, guided landscape scene restoration is achieved. This technological path aims to organically integrate garden knowledge, garden painting images, and cutting-edge AI technology, and build a complete technical support from data processing, model construction, to result generation. At the level of teaching implementation, this framework and technical process revolve around representative landscape painting restoration tasks. Through a combination of theoretical teaching and practical technical operations, students are guided to collaborate in groups to complete the entire process from literature research to AI restoration. The teaching results indicate that this model has preliminarily achieved AI restoration of garden painting. Students not only generate garden images with high realism and historical atmosphere but also deepen their understanding of classical garden design principles, spatial imagery, and cultural connotations. Compared with traditional methods, the teaching model that integrates AI has shown significant advantages in stimulating students’ initiative and inquiry, achieving dynamic and experiential cognitive modes, enhancing multimodal and efficient knowledge acquisition, and systematically cultivating digital technology applications and critical thinking. It effectively shortens the cognitive cycle and provides a practical basis and methodological reference for the paradigm transformation of landscape education from “knowledge imparting” to “ability-oriented and inquiry learning”. It has positive significance for promoting innovation and sustainable development of landscape education in the AI era.

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  • 在线发布日期: 2025-10-11
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