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XML数据流中面向聚类的指数直方图
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作者 高明霞 姚文集 毛国君 《北京工业大学学报》 EI CAS CSCD 北大核心 2011年第8期1242-1248,共7页
为了实现XML(extensible markup language)数据流的在线动态聚类,提出一种XML聚类特征指数直方图.该结构以XML时间聚类特征为基础,遵循指数直方图的维护规律.采用该结构的聚类算法在真实和模拟数据集上的实验结果说明:这一结构在聚类质... 为了实现XML(extensible markup language)数据流的在线动态聚类,提出一种XML聚类特征指数直方图.该结构以XML时间聚类特征为基础,遵循指数直方图的维护规律.采用该结构的聚类算法在真实和模拟数据集上的实验结果说明:这一结构在聚类质量上可以达到甚至超过静态聚类方法;直方图个数固定时,内存开销基本稳定. 展开更多
关键词 可扩展标记语言(XML) 指数直方图 时间聚类特征
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Relationship Between Urban Road Traffic Characteristics and Road Grade Based on a Time Series Clustering Model: A Case Study in Nanjing, China 被引量:6
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作者 WANG Jiechen WU Jiayi +2 位作者 NI Jianhua CHEN Jie XI Changbai 《Chinese Geographical Science》 SCIE CSCD 2018年第6期1048-1060,共13页
With the increasing number of vehicles in large-and medium-sized cities challenges in urban traffic management, control, and road planning are being faced. Taxi GPS trajectory data is a novel data source that can be u... With the increasing number of vehicles in large-and medium-sized cities challenges in urban traffic management, control, and road planning are being faced. Taxi GPS trajectory data is a novel data source that can be used to study the potential dynamic traffic characteristics of urban roads, and thus identify locations that show a notable lack of road planning. Considering that road traffic characteristics on their own are insufficient for a comprehensive understanding of urban traffic, we develop a road traffic characteristic time series clustering model to analyze the relationship between urban road traffic characteristics and road grade based on existing taxi trajectory data. We select the main urban area of Nanjing as our study area and use the taxi trajectory data of a single month for evaluating our method. The experiments show that the clustering model exhibit good performance and can be successfully used for road traffic characteristic classification. Moreover, we analyze the correlation between traffic characteristics and road grade to identify road segments with planning designs that do not match the actual traffic demands. 展开更多
关键词 time series clustering temporal characteristics of road speed taxi trajectory data urban computation MACHINE-LEARNING
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