DocumentCode :
741274
Title :
Global Sensor Deployment and Local Coverage-Aware Recovery Schemes for Smart Environments
Author :
Ting-Yu Lin ; Santoso, Hendro Agus ; Kun-Ru Wu
Author_Institution :
Dept. of Electr. & Comput. Eng., Nat. ChiaoTung Univ., Hsinchu, Taiwan
Volume :
14
Issue :
7
fYear :
2015
Firstpage :
1382
Lastpage :
1396
Abstract :
One critical issue, for a wireless sensor network (WSN) to operate successfully, is to provide sufficient sensing coverage. Define the smart sensing environment as a sensing system with the capability to sense the environment and respond properly in an automated manner. In this paper, we target on smart sensing environments and deal with heterogeneous sensors (here sensor heterogeneity is defined as sensors having different sensing ranges) equipped with actuation facilities to assist in the sensor self-deployment. A coverage-aware sensor automation (CASA) protocol is proposed to realize an automated smart monitoring network. Two centralized algorithms are included in the CASA protocol suite: enhanced virtual forces algorithm with boundary forces (EVFA-B) and sensor self-organizing algorithm (SSOA). Unlike most previous works that tackle the deployment problem only partially, we intend to address the problem from both global deployment (EVFA-B) and local repairing (SSOA) perspectives. The EVFA-B protocol exerts weighted attractive and repulsive forces on each sensor based on predefined distance thresholds. Resultant forces then guide the sensors to their suitable positions with the objective of enhancing the sensing coverage (after a possibly random placement of sensors). Furthermore, in the presence of sensor energy depletions and/or unexpected failures, our SSOA algorithm is activated to perform local repair by repositioning sensors around the sensing void (uncovered area). This capability of local recovery is advantageous in terms of saving the communication and moving energies. Performance of the proposed sensor deployment strategies is evaluated in terms of surveillance coverage, monitoring density, network self-healing competence, and moving energy consumption. We also implement our CASA protocol suite in a real-life monitoring network (MoNet) to demonstrate the protocol feasibility and validate the MoNet detection capability of emergency events.
Keywords :
sensor placement; wireless sensor networks; EVFA-B protocol; MoNet detection capability; automated smart monitoring network; coverage-aware sensor automation protocol; emergency events; enhanced virtual forces algorithm with boundary forces; global sensor deployment; heterogeneous sensors; local coverage-aware recovery schemes; monitoring density; moving energy consumption; network self-healing competence; predefined distance thresholds; repulsive forces; sensing coverage; sensing void; sensor energy depletions; sensor heterogeneity; sensor self-deployment; sensor self-organizing algorithm; smart environments; smart sensing environment; surveillance coverage; wireless sensor network; Automation; Force; Monitoring; Protocols; Robot sensing systems; Wireless sensor networks; Wireless sensor deployment; coverage problem; self-healing; sensor automation; smart sensing environment;
fLanguage :
English
Journal_Title :
Mobile Computing, IEEE Transactions on
Publisher :
ieee
ISSN :
1536-1233
Type :
jour
DOI :
10.1109/TMC.2014.2353613
Filename :
6888509
Link To Document :
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