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      KCI등재 SCIE SCOPUS

      Discovering Station Patterns of Urban Transit Network with Multisource Data: Empirical Evidence in Jinan, China

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      https://www.riss.kr/link?id=A107269812

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      다국어 초록 (Multilingual Abstract)

      The various performances of buses at stations bring lots of difficulties for operators to manage them to improve the service quality. This paper proposes a data-driven framework to analyze the patterns of stations with network structure data, points o...

      The various performances of buses at stations bring lots of difficulties for operators to manage them to improve the service quality. This paper proposes a data-driven framework to analyze the patterns of stations with network structure data, points of interest (POI) data and vehicle global positioning system (GPS) trajectory data. First, we build six indicators based on these data to measure the performance from station perspective. The results show that the number of POI around stations within 1 kilometer follows an exponential distribution. Moreover, the average headway and headway deviation of stations follow lognormal distributions. Second, we use agglomerative hierarchical clustering method to divided bus stations into different groups. Results indicate that the bus stations of Jinan could be divided into four groups with obvious characteristics. The findings could help operators to make exclusive strategies to manage bus systems.

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      참고문헌 (Reference)

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      10 Esfahani RK, "Three-phase classification of an uninterrupted traffic flow : A k-means clustering study" 7 (7): 546-558, 2019

      1 Mulley C, "Will bus travelers walk further for a more frequent service? An international study using a stated preference approach" 69 : 88-97, 2018

      2 Lü LY, "Vital nodes identification in complex networks" 650 : 1-63, 2016

      3 Zeng W, "Visualizing the relationship between human mobility and points of interest" 18 (18): 2271-2284, 2017

      4 Li MY, "Using points-of-interest data to estimate commuting patterns in central Shanghai, China" 72 : 201-210, 2018

      5 Ma XL, "Understanding commuting patterns using transit smart card data" 58 : 135-145, 2017

      6 Wang SW, "Transit trip distribution model considering land use differences between catchment areas" 50 : 1820-1830, 2016

      7 Greater Vancouver Transportation Authority, "Transit service guidelines public summary report" Greater Vancouver Transportation Authority 2004

      8 Sukaryavichute E, "Transit planning, access, and justice : Evolving visions of bus rapid transit and the Chicago street" 69 : 58-72, 2018

      9 Yu Zhao, "Towards Sustainable Urban Communities: A Composite Spatial Accessibility Assessment for Residential Suitability Based on Network Big Data" MDPI AG 10 (10): 4767-, 2018

      10 Esfahani RK, "Three-phase classification of an uninterrupted traffic flow : A k-means clustering study" 7 (7): 546-558, 2019

      11 An XL, "Synchronization analysis of complex networks with multi-weights and its application in public traffic network" 412 : 149-156, 2014

      12 Zhou ZP, "Support vector machine and back propagation neutral network approaches for trip mode prediction using mobile phone data" 12 (12): 1220-1226, 2018

      13 Yang XH, "Study on some bus transport networks in China with considering spatial characteristics" 69 : 1-10, 2014

      14 Zhang H, "Statistical analysis of the stability of bus vehicles based on GPS trajectory data" 33 (33): 1950015-, 2019

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      16 Li JW, "Spatial-temporal analysis on spring festival travel rush in China based on multisource big data" 8 (8): 1184-, 2016

      17 Yaya LHP, "Service quality assessment of public transport and the implication role of demographic characteristics" 7 (7): 409-428, 2014

      18 Zhao D, "Recognizing metro-bus transfer from smart card data" 42 (42): 70-83, 2019

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      20 Tahmasbi B, "Public transport accessibility measure based on weighted door to door travel time" 76 : 163-177, 2019

      21 Yang XC, "Population mapping with multisensory remote sensing images and point-of-interest data" 11 : 574-, 2019

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      25 Ma XL, "Mining smart card data for transit rider’s travel pattern" 36 : 1-12, 2013

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      27 Tan PN, "Introduction to data mining" Pearson Addison Wesley 2005

      28 Zhang H, "Identifying hub stations and important lines of bus networks : A case study in Xiamen, China" 502 : 394-402, 2018

      29 Li M, "Identifying hotspots and representative monitoring area of groundwater changes with time stability analysis" 667 : 419-426, 2019

      30 Li KH, "Identification of typical building daily electricity usage profiles using Gaussian mixture model-based clustering and hierarchical clustering" 231 : 331-342, 2018

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      32 Bai L, "Fast graph clustering with a new description model for community detection" 388 : 37-47, 2017

      33 Li BZ, "Exploring urban taxi ridership and local associated factors using GPS data and geographically weighted regression" 87 : 68-86, 2019

      34 Kim K, "Exploring the difference between ridership patterns of subway and taxi : Case study in Seoul" 66 : 213-223, 2018

      35 Pan YJ, "Exploring spatial variation of the bus stop influence zone with multi-source data : A case study in Zhejiang, China" 76 : 166-177, 2019

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      40 Gordon JB, "Estimation of population origin-interchange-destination flows on multimodal transit networks" 90 : 350-365, 2018

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      44 Hui Zhang, "Detecting Taxi Travel Patterns using GPS Trajectory Data: A Case Study of Beijing" 대한토목학회 23 (23): 1797-1805, 2019

      45 Maeda TN, "Comparative examination of network clustering methods for extracting community structures of a city from public transportation smart card data" 7 : 53377-53391, 2019

      46 Sun PG, "Community detection by fuzzy clustering" 419 : 408-416, 2015

      47 Coletta LFS, "Combining clustering and active learning for the detection and learning of new imagine classes" 358 : 150-165, 2019

      48 Xing Zhao, "Clustering Analysis of Ridership Patterns at Subway Stations: A Case in Nanjing, China" American Society of Civil Engineers (ASCE) 145 (145): 04019005-, 2019

      49 Wang SG, "Analyzing urban traffic demand distribution and the correlation between traffic flow and the built environment based on detector data and POIs" 10 (10): 50-, 2018

      50 Ren T, "Analysis of robustness of urban bus network" 25 (25): 020101-, 2016

      51 Qi GQ, "Analysis and prediction of regional mobility patterns of bus travelers using smart card data and points of interest data" 20 (20): 1197-1214, 2019

      52 Zhao PX, "A trajectory clustering approach based on decision graph and data field for detecting hotspots" 31 (31): 1101-1127, 2017

      53 Hawas YE, "A multi-criteria approach of assessing public transport accessibility at a strategic level" 57 : 19-34, 2016

      54 Zhang H, "A data-driven analysis for operational vehicle performance of public transport network" 7 : 96404-96413, 2019

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      학술지 이력

      학술지 이력
      연월일 이력구분 이력상세 등재구분
      2023 평가예정 해외DB학술지평가 신청대상 (해외등재 학술지 평가)
      2020-01-01 평가 등재학술지 유지 (해외등재 학술지 평가) KCI등재
      2010-01-01 평가 등재학술지 유지 (등재유지) KCI등재
      2008-01-01 평가 등재학술지 유지 (등재유지) KCI등재
      2005-05-27 학술지명변경 한글명 : 대한토목학회 영문논문집 -> KSCE Journal of Civil Engineering KCI등재
      2005-01-01 평가 등재학술지 선정 (등재후보2차) KCI등재
      2004-01-01 평가 등재후보 1차 PASS (등재후보1차) KCI등재후보
      2002-01-01 평가 등재후보학술지 선정 (신규평가) KCI등재후보
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      학술지 인용정보

      학술지 인용정보
      기준연도 WOS-KCI 통합IF(2년) KCIF(2년) KCIF(3년)
      2016 0.59 0.12 0.49
      KCIF(4년) KCIF(5년) 중심성지수(3년) 즉시성지수
      0.42 0.39 0.286 0.06
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