Title :
Cost-Minimizing Mobile Access Point Deployment in Workflow-Based Mobile Sensor Networks
Author :
Haiming Jin ; He Huang ; Lu Su ; Nahrstedt, Klara
Author_Institution :
Dept. of Comput. Sci., Univ. of Illinois at Urbana-Champaign, Urbana, IL, USA
Abstract :
In mission-based mobile environments such as airplane maintenance, workflow-based mobile sensor networks emerge, where mobile users (MUs) with sensing devices visit sequences of mission-driven locations defined by workflows, and demand the gathering of sensory data within mission durations. To satisfy this demand in a cost-efficient manner, mobile access point (AP) deployment needs to be part of the overall solution. Therefore, we study the mobile AP deployment in workflow-based mobile sensor networks. We categorize MUs´ workflows according to a priori knowledge of MUs´ staying durations at mission locations into complete and incomplete information workflows. In both categories, we formulate the cost-minimizing mobile AP deployment problem into multiple (mixed) integer optimization problems, satisfying MUs´ QoS constraints. We prove that the formulated optimization problems are NP-hard and design approximation algorithms with guaranteed approximation ratios. We demonstrate using simulations that the AP deployment cost calculated using our algorithms is 50-60% less than the stationary baseline approach and fairly close to the optimal AP deployment cost. In addition, the run times of our approximation algorithms are only 10-25% of those of the branch-and-bound algorithm used to derive the optimal AP deployment cost.
Keywords :
approximation theory; computational complexity; integer programming; mobile computing; tree searching; wireless sensor networks; NP-hard problem; QoS constraints; airplane maintenance; approximation ratios; branch-and-bound algorithm; complete information workflows; cost-minimizing mobile AP deployment problem; cost-minimizing mobile access point deployment; design approximation algorithm; incomplete information workflows; mission durations; mission-based mobile environments; mission-driven locations; mixed integer optimization problem; mobile users; multiple integer optimization problem; sensing devices; sensory data gathering; workflow-based mobile sensor networks; Bandwidth; Data collection; Mobile communication; Mobile computing; Optimization; Quality of service; Robot sensing systems;
Conference_Titel :
Network Protocols (ICNP), 2014 IEEE 22nd International Conference on
Conference_Location :
Raleigh, NC
Print_ISBN :
978-1-4799-6203-7
DOI :
10.1109/ICNP.2014.29