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运用区域聚类法 分析晋中县域经济与财政收入前景 被引量:1
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作者 武志远 张健 《中国财经信息资料》 北大核心 2005年第25期36-42,共7页
本文将主要运用实证方法。以衡量经济与财政收入(以下简称“收入”)水平若干指标为基础,对山西省晋中11个县(市、区)进行聚类分析,粗略地划分出不同经济与收入的聚类区域。研究的最终目标是为了揭示县域经济与收入在全市框架性坐... 本文将主要运用实证方法。以衡量经济与财政收入(以下简称“收入”)水平若干指标为基础,对山西省晋中11个县(市、区)进行聚类分析,粗略地划分出不同经济与收入的聚类区域。研究的最终目标是为了揭示县域经济与收入在全市框架性坐标参照系中表现出的不同特征.考察各区域经济发展水平、收入能力和对全市的贡献程度。从而为区域经济和收入的发展壮大提供一些建设性建议。 展开更多
关键词 区域聚类法 晋中市 财政收入 县域经济 中国 市场导向
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Application of different clustering approaches to hydroclimatological catchment regionalization in mountainous regions, a case study in Utah State 被引量:1
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作者 Elnaz SHARGHI Vahid NOURANI +1 位作者 Saeed SOLEIMANI Fahreddin SADIKOGLU 《Journal of Mountain Science》 SCIE CSCD 2018年第3期461-484,共24页
With respect to the different hydrological responses of catchments, even the adjacent ones, in mountainous regions, there are a great number of motivations for classifying them into homogeneous clusters. These motivat... With respect to the different hydrological responses of catchments, even the adjacent ones, in mountainous regions, there are a great number of motivations for classifying them into homogeneous clusters. These motivations include prediction in ungauged basins(PUB), model parameterization, understanding the potential impact of environmental changes, transferring information from gauged catchments to the ungauged ones. The present study investigated the similarity of catchments through the hydro-climatological pure time-series of a 14-year period from 2001 to 2015. Data sets encompass more than 13,000 month-station streamflow, rainfall, and temperature data obtained from 27 catchments in Utah State as one of the eight mountainous states of the USA. The identification, analysis, and interpretation of homogeneous catchments were investigated by applying the four approaches ofclustering, K-means, Ward, and SOM(Self-Organized Map) and a newly proposed Wavelet-Entropy-based(WE-SOM) clustering method. By using two clustering evaluation criteria, 3, 5, and 6 clusters were determined as the best numbers of clusters, depending on the method employed, where each cluster represents different hydro-climatological behaviors. Despite the absence of geographic characteristics in input data matrix, the results indicated a regionalization in agreement with topographic characteristics. Considering the dependency of the hydrological behavior of catchments on the physiographic field aspects and characteristics, WE-SOM method demonstrated a more acceptable performance, compared to the other three conventional clustering methods, by providing more clusters. WE-SOM appears to be a promising approach in catchment clustering. It preserves the topological structure of data which can, as a result, be proofed in a greater number of clusters by dividing data into higher numbers of distinct clusters withsimilar altitudes of catchments in each cluster. The results showed the aptitude of wavelets to quantify the time-based variability of temperature, rainfall and streamflow, in the way contributing to the regionalization of diverse catchments. 展开更多
关键词 Catchment clustering K-means WARD Self-Organized Map Wavelet–Entropy UTAH
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