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Finding Optimal Team for Multiskill Task Based on Vehicle Sensors Data

Authors :
Feng Zhu
Qian Tao
Bowen Du
Tianshu Song
Source :
Journal of Sensors, Vol 2017 (2017)
Publication Year :
2017
Publisher :
Hindawi Limited, 2017.

Abstract

These days, with the increasingly widespread employment of sensors, particularly those attached to vehicles, the collection of spatial data is becoming easier and more accurate. As a result, many relevant areas, such as spatial crowdsourcing, are gaining ever more attention. A typical spatial crowdsourcing scenario involves an employer publishing a task and some workers helping to accomplish it. However, most of previous studies have only considered the spatial information of workers and tasks, while ignoring individual variations among workers. In this paper, we consider the Software Development Team Formation (SDTF) problem, which aims to assemble a team of workers whose abilities satisfy the requirements of the task. After showing that the problem is NP-hard, we propose three greedy algorithms and a multiple-phase algorithm to approximately solve the problem. Extensive experiments are conducted on synthetic and real datasets, and the results verify the effectiveness and efficiency of our algorithms.

Details

Language :
English
ISSN :
16877268
Volume :
2017
Database :
OpenAIRE
Journal :
Journal of Sensors
Accession number :
edsair.doi.dedup.....b2b0170e465ae7d03dc84e8a6946cd0b