语义网对民间剪纸文化基因分类的启示

Xuemiao Chen, Varsha Arya
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引用次数: 0

摘要

本研究旨在利用语义网(Semantic Web)和 LSTM 技术,对民间剪纸图案进行地域文化分类,从而揭示这些图案如何反映出鲜明的文化特征。通过开发能够识别这些图案并对其进行分类的 LSTM 模型,我们的研究不仅在地区文化基因分类方面表现出很高的准确性,而且还揭示了剪纸艺术所蕴含的深厚文化底蕴。研究结果凸显了计算方法在理解和保存剪纸中丰富的文化表现形式方面的潜力。这项工作为今后探索文化遗产的数字化保存奠定了基础,凸显了技术在保护和诠释地区文化背景下的传统艺术方面的关键作用。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Semantic Web Insights Into the Classification of Folk Paper-Cut Cultural Genes
This study aims to classify folk paper-cut patterns by regional culture, leveraging Semantic Web and LSTM technologies to discern how these patterns reflect distinct cultural characteristics. By developing an LSTM model capable of recognizing and categorizing these patterns, our study not only demonstrates high accuracy in classifying regional cultural genes but also reveals the depth of cultural heritage embedded in paper-cut art. The findings underscore the potential of computational methods in understanding and preserving the rich tapestry of cultural expressions through paper cuts. This work sets a foundation for future explorations into the digital preservation of cultural heritage, highlighting the critical role of technology in safeguarding and interpreting traditional arts in the context of regional culture.
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