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农耕型传统村落的公共空间保护与更新研究——以天长市汊河村为例
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作者 沈超 《风景名胜》 2019年第7期204-205,207,共3页
传统村落的保护发展是现在的热门话题之一,进而从传统村落的公共空间入手,重点对于传统村落中的传统农耕型村落进行研究。对于此类村落的公共空间中的空间构成、形态以及人的活动方式进行研究,从而提出对于传统农耕型村落的公共空间的... 传统村落的保护发展是现在的热门话题之一,进而从传统村落的公共空间入手,重点对于传统村落中的传统农耕型村落进行研究。对于此类村落的公共空间中的空间构成、形态以及人的活动方式进行研究,从而提出对于传统农耕型村落的公共空间的保护与更新提出相应的建议以及策略。运用观察法、文献研究法对传统农耕型村落进行特征分析,通过对于村落中的重点部分进行研究分析,主要在于美学价值、景观特色的营造、以及满足人的行为活动和对于乡土树种的运用等,从而提出对于此类传统村落的整体保护、特色景观、视觉美感、街巷整治、以及传统村落的活力提升等方面的建议和保护方法。对于传统农耕型村落,对于此类村中人们的活动方式以及场地的不同,与此同时要结合当地人们的需求,因地制宜的营造符合村民需求的特色民俗活动场所。 展开更多
关键词 传统村落 农耕型 公共空间 保护 更新
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Modeling of Spatial Distributions of Farmland Density and Its Temporal Change Using Geographically Weighted Regression Model 被引量:2
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作者 ZHANG Haitao GUO Long +3 位作者 CHEN Jiaying FU Peihong GU Jianli LIAO Guangyu 《Chinese Geographical Science》 SCIE CSCD 2014年第2期191-204,共14页
This study used spatial autoregression(SAR)model and geographically weighted regression(GWR)model to model the spatial patterns of farmland density and its temporal change in Gucheng County,Hubei Province,China in 199... This study used spatial autoregression(SAR)model and geographically weighted regression(GWR)model to model the spatial patterns of farmland density and its temporal change in Gucheng County,Hubei Province,China in 1999 and 2009,and discussed the difference between global and local spatial autocorrelations in terms of spatial heterogeneity and non-stationarity.Results showed that strong spatial positive correlations existed in the spatial distributions of farmland density,its temporal change and the driving factors,and the coefficients of spatial autocorrelations decreased as the spatial lag distance increased.SAR models revealed the global spatial relations between dependent and independent variables,while the GWR model showed the spatially varying fitting degree and local weighting coefficients of driving factors and farmland indices(i.e.,farmland density and temporal change).The GWR model has smooth process when constructing the farmland spatial model.The coefficients of GWR model can show the accurate influence degrees of different driving factors on the farmland at different geographical locations.The performance indices of GWR model showed that GWR model produced more accurate simulation results than other models at different times,and the improvement precision of GWR model was obvious.The global and local farmland models used in this study showed different characteristics in the spatial distributions of farmland indices at different scales,which may provide the theoretical basis for farmland protection from the influence of different driving factors. 展开更多
关键词 spatial lag model spatial error model geographically weighted regression model global spatial autocorrelation local spatial aurocorrelation
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