Title :
Connectivity-Based Boundary Extractionof Large-Scale 3D Sensor Networks:Algorithm and Applications
Author :
Hongbo Jiang ; Shengkai Zhang ; Guang Tan ; Chonggang Wang
Author_Institution :
Dept. of Electron. & Inf. Eng., Huazhong Univ. of Sci. & Technol., Wuhan, China
Abstract :
Sensor networks are invariably coupled tightly with the geometric environment in which the sensor nodes are deployed. Network boundary is one of the key features that characterize such environments. While significant advances have been made for 2D cases, so far boundary extraction for 3D sensor networks has not been thoroughly studied. We present CABET, a novel Connectivity-Based Boundary Extraction scheme for large-scale 3D sensor networks. To the best of our knowledge, CABET is the first 3D-capable and pure connectivity-based solution for detecting sensor network boundaries. It is fully distributed, and is highly scalable, requiring overall message cost linear with the network size. A highlight of CABET is its non-uniform critical node sampling , called r´-sampling , that selects landmarks to form boundary surfaces with bias toward nodes embodying salient topological features. Simulations show that CABET is able to extract a well-connected boundary in the presence of holes and shape variation, with performance superior to that of some state-of-the-art alternatives. In addition, we show how CABET benefits a range of sensor network applications including 3D skeleton extraction, 3D segmentation, and 3D localization.
Keywords :
sampling methods; solid modelling; telecommunication computing; wireless sensor networks; 3D localization; 3D segmentation; 3D skeleton extraction; CABET scheme; connectivity-based boundary extraction; connectivity-based solution; geometric environment; large-scale 3D sensor networks; message cost; network size; nonuniform critical node sampling; r-sampling; sensor network boundaries detection; sensor nodes; topological features; Data mining; Feature extraction; Image edge detection; Knowledge engineering; Shape; Three-dimensional displays; Topology; 3D boundary; Sensor networks; algorithm/protocol design;
Journal_Title :
Parallel and Distributed Systems, IEEE Transactions on
DOI :
10.1109/TPDS.2013.97