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[journal article]

dc.contributor.authorEl-Khatib, Khalilde
dc.contributor.authorJalali, Roozbehde
dc.contributor.authorLi, Hengde
dc.contributor.authorKoohi-Fayegh, Seamade
dc.contributor.authorHoornweg, Danielde
dc.date.accessioned2018-08-09T15:12:57Z
dc.date.available2018-08-09T15:12:57Z
dc.date.issued2017de
dc.identifier.issn2183-7635de
dc.identifier.urihttps://www.ssoar.info/ssoar/handle/document/58366
dc.description.abstractAs urban populations grow, cities need new strategies to maintain a good standard of living while enhancing services and infrastructure development. A key area for improving city operations and spatial layout is the transportation of people and goods. While conventional transportation systems (i.e., fossil fuel based) are struggling to serve mobility needs for growing populations, they also represent serious environmental threats. Alternative-fuel vehicles can reduce emissions that contribute to local air pollution and greenhouse gases as mobility needs grow. However, even if alternative-powered vehicles were widely employed, road congestion would still increase. This paper investigates ridesharing as a mobility option to reduce emissions (carbon, particulates and ozone) while accommodating growing transportation needs and reducing overall congestion. The potential of ridesharing to reduce carbon emissions from personal vehicles in Changsha, China, is examined by reviewing mobility patterns of approximately 8,900 privately-owned vehicles over two months. Big data analytics identify ridesharing potential among these drivers by grouping vehicles by their trajectory similarity. The approach includes five steps: data preprocessing, trip recognition, feature vector creation, similarity measurement and clustering. Potential reductions in vehicle emissions through ridesharing among a specific group of drivers are calculated and discussed. While the quantitative results of this analysis are specific to the population of Changsha, they provide useful insights for the potential of ridesharing to reduce vehicle emissions and the congestion expected to grow with mobility needs. Within the study area, ridesharing has the potential to reduce total kilometers driven by about 24% assuming a maximum distance between trips less than 10 kilometers, and schedule time less than 60 minutes. For a more conservative maximum trip distance of 2 kilometers and passenger schedule time of less than 40 minutes, the reductions in traveled kilometers could translate to the equivalent of approximately 4.0 tons CO2 emission reductions daily.de
dc.languageende
dc.subject.ddcÖkologiede
dc.subject.ddcEcologyen
dc.subject.otheremission reductions; ridesharing; spatiotemporal data mining; trajectory clustering; trajectory miningde
dc.titleInvestigating the Potential of Ridesharing to Reduce Vehicle Emissionsde
dc.description.reviewbegutachtet (peer reviewed)de
dc.description.reviewpeer revieweden
dc.identifier.urlhttps://www.cogitatiopress.com/urbanplanning/article/view/937de
dc.source.journalUrban Planning
dc.source.volume2de
dc.publisher.countryPRT
dc.source.issue2de
dc.subject.classozÖkologie und Umweltde
dc.subject.classozEcology, Environmenten
dc.rights.licenceCreative Commons - Namensnennung 4.0de
dc.rights.licenceCreative Commons - Attribution 4.0en
internal.statusformal und inhaltlich fertig erschlossende
dc.type.stockarticlede
dc.type.documentZeitschriftenartikelde
dc.type.documentjournal articleen
dc.source.pageinfo26-40de
internal.identifier.classoz20900
internal.identifier.journal794
internal.identifier.document32
internal.identifier.ddc577
dc.source.issuetopicSmart Cities - Infrastructure and Informationde
dc.identifier.doihttps://doi.org/10.17645/up.v2i2.937de
dc.description.pubstatusVeröffentlichungsversionde
dc.description.pubstatusPublished Versionen
internal.identifier.licence16
internal.identifier.pubstatus1
internal.identifier.review1
internal.dda.referencehttps://www.cogitatiopress.com/urbanplanning/oai/@@oai:ojs.cogitatiopress.com:article/937
ssoar.urn.registrationfalsede


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