DocumentCode
3340281
Title
An Abnormal Area Scanning for Scalable and Energy-Efficient and Secure SensorNet Management
Author
Oh, Hayoung ; Chae, Kijoon
Author_Institution
Dept. of Comput. Sci. & Eng., Seoul Nat. Univ., Seoul
fYear
2008
fDate
24-26 April 2008
Firstpage
592
Lastpage
596
Abstract
Wireless Sensor Networks (WSNs) is a very attractive technique for a variety of applications due to many merits such as compact form, low-power and potential low cost. However, the more the number of sensor node is increased, the more difficult the manager monitors WSNs individually. And faults such as the malfunction of the sensor device itself are common due to the vulnerable security. Therefore, a new approach to manage secure sensorNet considering scalability, energy- efficiency and faulty tendency is needed. Therefore, we propose an abnormal area scanning algorithm using spatial, temporal correlation and in-network aggregation for scalable and energy- efficient secure sensorNet management. Simulations show that our scheme has good scalability and energy-efficiency characteristics, compared to the previous scheme and it can clearly identify the abnormal sensors with high accuracy even in the existence of normal sensors, abnormal sensor and event- detecting sensors.
Keywords
energy conservation; wireless sensor networks; abnormal area scanning algorithm; abnormal sensor; energy-efficient characteristics; event-detecting sensors; normal sensors; scalability; secure sensorNet management; wireless sensor network; Costs; Data processing; Energy efficiency; Energy management; Power engineering and energy; Scalability; Security; Sensor phenomena and characterization; Testing; Wireless sensor networks; Abnormal; Normal; Scalability; Scanning; Security; SensorNet Fault Management; SensorNet MIB; energy-efficiency;
fLanguage
English
Publisher
ieee
Conference_Titel
Multimedia and Ubiquitous Engineering, 2008. MUE 2008. International Conference on
Conference_Location
Busan
Print_ISBN
978-0-7695-3134-2
Type
conf
DOI
10.1109/MUE.2008.91
Filename
4505793
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