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Urban Scale Trade Area Characterization for Commercial Districts with Cellular Footprints

机译:具有蜂窝足迹的商业区的城市规模贸易区特征

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摘要

Understanding customer mobility patterns to commercial districts is crucial for urban planning, facility management, and business strategies. Trade areas are a widely applied measure to quantify where the visitors are from. Traditional trade area analysis is limited to small-scale or store-level studies, because information such as visits to competitor commercial entities and place of residence is collected by labour-intensive questionnaires or heavily biased location-based social media data. In this article, we propose CellTradeMap, a novel district-level trade area analysis framework using mobile flow records (MFRs), a type of fine-grained cellular network data. We show that compared to traditional cellular data and social network check-in data, MFRs can model customer mobility patterns comprehensively at urban scale. CellTradeMap extracts robust location information from the irregularly sampled, noisy MFRs, adapts the generic trade area analysis framework to incorporate cellular data, and enhances the original trade area model with cellular-based features. We evaluate CellTradeMap on two large-scale cellular network datasets covering 3.5 million and 1.8 million mobile phone users in two metropolis in China, respectively. Experimental results show that the trade areas extracted by CellTradeMap are aligned with domain knowledge and CellTradeMap can model trade areas with a high predictive accuracy.
机译:了解商业区的客户移动模式对于城市规划,设施管理和商业策略至关重要。贸易领域是广泛应用的措施,以量化游客来自哪里。传统的贸易区分析仅限于小规模或商店级别研究,因为劳动密集型问卷或居住地收集竞争对手商业实体和居住地等信息,或偏见的基于位置的社交媒体数据。在本文中,我们提出了一种使用移动流记录(MFR)的新型地区级贸易区分析框架的CelltradeMap,一种细粒度的蜂窝网络数据。我们表明,与传统的蜂窝数据和社交网络检入数据相比,MFRS可以在城市规模上全面模拟客户移动模式。 CellTradeMAP从不规则采样的嘈杂MFR中提取强大的位置信息,适应通用的贸易区分析框架来包含蜂窝数据,并增强了基于蜂窝的特征的原始贸易区模型。我们分别评估了两个大型蜂窝网络数据集的CellTradeMAP,分别在中国的两个大都市中占用350万和180万手机用户。实验结果表明,CelltradeMap提取的贸易区与域知识和CelltradeMap进行对齐,可以模拟具有高预测精度的贸易区域。

著录项

  • 来源
    《ACM transactions on sensor networks》 |2020年第4期|42.1-42.20|共20页
  • 作者单位

    Tsinghua Univ Sch Software Beijing Peoples R China|Tsinghua Univ BNRist Beijing Peoples R China;

    Singapore Management Univ Sch Informat Syst Singapore Singapore;

    Tsinghua Univ Sch Software Beijing Peoples R China|Tsinghua Univ BNRist Beijing Peoples R China;

    Tsinghua Univ Sch Software Beijing Peoples R China|Tsinghua Univ BNRist Beijing Peoples R China;

    Tsinghua Univ Sch Software Beijing Peoples R China|Tsinghua Univ BNRist Beijing Peoples R China;

  • 收录信息
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Cellular networks; crowdsensing; trade area analysis; human mobility;

    机译:蜂窝网络;众包;贸易区分析;人类流动性;
  • 入库时间 2022-08-18 21:31:25

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