Spatial Analysis of Villages in Jilin Province Based on Space Syntax and Machine Learning

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Abstract

The development of machine learning technology gives architects and urban planners a new tool that can be used for research and design. The topic of this paper is to analyze the rural space of Jilin Province with the machine learning algorithms and space syntax theory, and to obtain the inherent formation and development laws of rural spatial forms, which can be used as a reference and evaluation system for subsequent rural development, and also can emphasize the locality and continuity of rural development. First, based on geographic information data, researching the connection between the distribution of villages and geographic data at a macro level and to classify them. Then, from each category, selecting one township and use all villages in its area as samples for the more specific study. Spatial features of individual village are extracted based on space syntax theory, and representative spatial features which can as feature values for cluster analysis are selected through comparative analysis. Then classify villages from high-dimensional data and explore their type characteristics. Finally, we hope the result of this study can help provide useful theoretical references for rural construction and nature conservation in the future.

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Liu, D., & Wang, K. (2023). Spatial Analysis of Villages in Jilin Province Based on Space Syntax and Machine Learning. In Computational Design and Robotic Fabrication (Vol. Part F1309, pp. 3–13). Springer. https://doi.org/10.1007/978-981-19-8637-6_1

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