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Application of Nonnegative Tensor Factorization for Intercity Rail–Air Transport Supply Configuration Pattern Recognition

机译:非负张量分解在城际轨道空运供应形态识别中的应用

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With the rapid expansion of the railway represented by high-speed rail (HSR) in China, competition between railway and aviation will become increasingly common on a large scale. Beijing, Shanghai, and Guangzhou are the busiest cities and the hubs of railway and aviation transportation in China. Obtaining their supply configuration patterns can help identify defects in planning. To achieve that, supply level is proposed, which is a weighted supply traffic volume that takes population and distance factors into account. Then supply configuration can be expressed as the distribution of supply level over time periods with different railway stations, airports, and city categories. Furthermore, nonnegative tensor factorization (NTF) is applied to pattern recognition by introducing CP (CANDECOMP/PARAFAC) decomposition and the block coordinate descent (BCD) algorithm for the selected data set. Numerical experiments show that the designed method has good performance in terms of computation speed and solution quality. Recognition results indicate the significant pattern characteristics of rail–air transport for Beijing, Shanghai, and Guangzhou are extracted, which can provide some theoretical references for practical policymakers.
机译:随着以高铁(HSR)为代表的铁路在中国的快速发展,铁路和航空之间的竞争将在规模上越来越普遍。北京,上海和广州是中国最繁忙的城市以及铁路和航空运输的枢纽。获得他们的供应配置模式可以帮助识别计划中的缺陷。为此,提出了供应水平,即考虑人口和距离因素的加权供应量。然后,供应配置可以表示为不同火车站,机场和城市类别在一段时间内的供应水平分布。此外,通过为所选数据集引入CP(CANDECOMP / PARAFAC)分解和块坐标下降(BCD)算法,将非负张量因子分解(NTF)应用于模式识别。数值实验表明,所设计的方法在计算速度和求解质量上具有良好的性能。识别结果表明,提取了北京,上海和广州铁路运输的显着模式特征,可为实际决策者提供一些理论参考。

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