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Research on the Influencing Factors of Package Storage Time in the Parcel Lockers Based on User Classification

机译:基于用户分类的包裹储物柜中包裹存放时间的影响因素研究

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Under the circumstance that parcel locker has gradually become an important way of terminal distribution, the resource turnover rate of intelligent parcel locker is low, which cannot meet more needs. In China, there is a huge B2 e-commerce business here, and there is a relatively large population density in first-tier cities, causing the last mile of Chinese e-commerce delivery to face tremendous pressure every day. However, through analysis of survey data, in a certain tier city in China, each parcel was stored in a parcel locker for more than 10 hours, which caused a very low turnover rate of the lockers. In order to explore the influencing factors that affect the turnover rate of parcel lockers, this article started with obtaining real-time data of parcel lockers, and then analyzed the characteristics of the data to find the effect function of the storage time for the cargo in the parcel lockers. During the empirical analysis, we found that users showed significantly different characteristics, that is, they were divided into two types of users. Then, this article mines the characteristics of the two types of users and names them as the First-class users, Second-class users. On this basis, this article finds that the length of parcel storage is related to user classification. In addition, this article conducted a series of rigorous empirical research and analysis in order to explore the impact of other factors on the storage time of the package,, and finally found that under the same type of user, there is a significant correlation between the length of storage time and the pickup time. Therefore, this paper established a dumb linear regression model to explore the law of parcel staying time in parcel locker, which the user type was used as a dummy variable, and the pickup time was used as another independent variable. The model passed the significance test.Therefore, this article further analyzes the influencing factors of the utilization efficiency of lockers. This provides some perspectives for us to find measures to improve the utilization rate of lockers in the future. For example, the idea of user classification can be applied to the research of pickup users and provide some personalized distribution services.
机译:在包裹寄存柜逐渐成为终端分配的重要方式的情况下,智能包裹寄存柜的资源周转率较低,无法满足更多需求。在中国,这里的B2电子商务业务庞大,一线城市的人口密度相对较高,导致中国电子商务交付的最后一英里每天都面临巨大压力。然而,通过对调查数据的分析,在中国的某个等级城市中,每个包裹在包裹储物柜中的存放时间都超过10小时,这导致储物柜的周转率非常低。为了探索影响包裹柜周转率的影响因素,本文首先获取包裹柜的实时数据,然后分析数据的特征,以求出货物在仓库中的存放时间的影响函数。包裹储物柜。在实证分析中,我们发现用户表现出明显不同的特征,即,他们被分为两种类型的用户。然后,本文挖掘两种类型的用户的特征,并将它们命名为第一类用户,第二类用户。在此基础上,本文发现包裹存储的长度与用户分类有关。另外,本文进行了一系列严格的实证研究和分析,以探索其他因素对包裹存储时间的影响,并最终发现,在相同类型的用户下,两者之间存在显着的相关性。存储时间长度和取货时间。因此,本文建立了一种哑线性回归模型,探讨了包裹寄存柜中包裹停留时间的规律,以用户类型为假变量,以提取时间为另一个自变量。该模型通过了显着性检验。因此,本文进一步分析了影响储物柜利用效率的因素。这为我们将来寻找提高储物柜利用率的措施提供了一些见解。例如,用户分类的思想可以应用于接送用户的研究,并提供一些个性化的分发服务。

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