Real-Time Cross Online Matching in Spatial Crowdsourcing
Yurong Cheng, Boyang Li, Xiangmin Zhou, Ye Yuan, Guoren Wang, Lei Chen
摘要
With the development of mobile communication techniques, spatial crowdsourcing has become popular recently. A typical topic of spatial crowdsourcing is task assignment, which assigns crowd workers to users' requests in real time and maximizes the total revenue. However, it is common that the available crowd workers over a platform are too far away to serve the requests, so some user requests may be rejected or responded at high money cost after long waiting. Fortunately, the neighbors of a platform usually have available resources for the same services. Collaboratively conducting the task allocation among different platforms can greatly improve the quality of services, but have not been investigated yet. In this paper, we propose a Cross Online Matching (COM), which enables a platform to "borrow" unoccupied crowd workers from other platforms for completing the user requests. We propose two algorithms, deterministic cross online matching (DemCOM) and randomized cross online matching (RamCom) for COM. DemCOM focuses on the largest obtained revenue in a greedy manner, while RamCom considers the trade-off between the obtained revenue and the probability of request being accepted by the borrowed workers. Extensive experimental results verify the effectiveness and efficiency of our algorithms.
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- Privacy-preserving Cooperative Online Matching over Spatial Crowdsourcing PlatformsYi Yang, Yurong Cheng, Ye Yuan, Guoren Wang 等VLDB 2023 · 被引用 18 次
- Task Recommendation in Spatial Crowdsourcing: A Trade-Off Between Diversity and CoverageLiwei Deng, Yan Zhao, Yue Cui, Yuyang Xia 等ICDE 2024 · 被引用 16 次
- ACTA: Autonomy and Coordination Task Assignment in Spatial Crowdsourcing PlatformsBoyang Li, Yurong Cheng, Ye Yuan, Yi Yang 等VLDB 2023 · 被引用 15 次
- DATA-WA: Demand-Based Adaptive Task Assignment with Dynamic Worker Availability WindowsJinwen Chen, Jiannan Guo, Dazhuo Qiu, Yawen Li 等ICDE 2025 · 被引用 4 次
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