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助推株洲清水塘片区物流业集聚发展的路径研究
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作者 李正军 贺俊华 《长沙民政职业技术学院学报》 2024年第1期55-61,共7页
清水塘片区位于湖南省株洲市石峰区,是株洲市的工业核心、湖南省新型工业化标志性区域。首先根据钻石模型分析清水塘片区的区位优势以及交通与物流需求、支持性产业与相关产业状况,物流企业的战略、结构、竞争,发展机遇与政府推动等条件... 清水塘片区位于湖南省株洲市石峰区,是株洲市的工业核心、湖南省新型工业化标志性区域。首先根据钻石模型分析清水塘片区的区位优势以及交通与物流需求、支持性产业与相关产业状况,物流企业的战略、结构、竞争,发展机遇与政府推动等条件,初步说明可以实现物流业集聚发展;采用区位论、生产函数的解析、灰色(1,1)模型法,先分析为何选择清水塘作为物流业集聚的中心,再根据株洲市历年货运量预测未来主要年份货运量,从而确定未来株洲市的物流需求,并基于清水塘片区存在的物流范围经济差,通过生产函数的定量分析,深入剖析物流业集聚所带来的经济效益,探讨如何实现良性循环。最后根据宏观与微观分析得到的结果从多角度进行社会效益分析并提出助推物流业集聚发展的路径建议。 展开更多
关键词 物流业集聚 清水塘片区 货运量预测模型 路径研究
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Forecasting freight volume based on wavelet denoising and FG-Markov 被引量:1
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作者 ZHU Chang-feng WANG Qing-rong +1 位作者 LIU Dao-kuan YE Qian-yun 《Journal of Measurement Science and Instrumentation》 CAS CSCD 2020年第3期267-275,共9页
To eliminate the grey bias and improve ant-jamming performance of the standard grey-Markov forecasting model,a forecasting model based on wavelet packet decomposition and fuzzy grey Markov(FG-Markov)is proposed consid... To eliminate the grey bias and improve ant-jamming performance of the standard grey-Markov forecasting model,a forecasting model based on wavelet packet decomposition and fuzzy grey Markov(FG-Markov)is proposed considering the characteristics of randomness and nonlinearility of freight volume forecasting.Firstly,based on the data analysis ability of wavelet packet to non-stationary random signal,wavelet packet decomposition is used to improve the analysis ability of data signal by decomposing historical freight volume data into wavelet packet component.On this basis,FG-Markov chain is proposed to obtain the transfer probability matrix of wavelet packet coefficients by introducing fuzzy grey variables,and forecast the freight volume by reconstructing wavelet packet coefficients.Finally,an example of Lanzhou railroad hub is carried out in order to testify the validity and applicability of this forecasting model.Compared with neural network model and other forecasting models,the proposed forecasting model can improve the forecasting accuracy under the same conditions.The forecasting accuracy of wavelet packet decomposition and FG-Markov is not only greater than that of any other single forecasting models,but also superior to that of other traditional combinational forecasting models,which can meet the actual requirements of freight volume forecasting. 展开更多
关键词 freight volume forecasting fuzzy grey model wavelet packet Markov chain
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