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Self-deployment of mobile underwater acoustic sensor networks for maximized coverage and guaranteed connectivity

机译:自我部署移动式水下声传感器网络,以实现最大覆盖范围并确保连接性

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Self-deployment of sensors with maximized coverage in Underwater Acoustic Sensor Networks (UWASNs) is challenging due to difficulty of access to 3-D underwater environments. The problem is further compounded if the connectivity of the final network is desired. One possible approach to this problem is to drop the sensors on the water surface and then move them to certain depths in the water to maximize the 3-0 coverage while maintaining the initial connectivity. In this paper, we propose a fully distributed node deployment scheme for UWASNs which only requires random dropping of sensors on the water surface. The idea is based on determining the connected dominating set (CDS) of the initial network on the surface and then adjust the depths of all neighbors of a particular dominator node (i.e., the backbone of the network) for minimizing the coverage overlaps among them while still keeping the connectivity with the dominator. The process starts with a leader node and spans all the dominators in the network for repositioning them. In addition to depth adjustment, we studied the effects of possible topology alterations due to water mobility caused by several factors such as waves, winds, currents, vortices or random surface effects, on network coverage and connectivity performance. On the one hand the mobility of nodes may help the topology to get stretched in 2-D, which helps to maximize the coverage in 3-0. On the other hand the mobility may cause the network to get partitioned where some of the nodes are disconnected from the rest of the topology. We investigated the best node deployment time where 2-D coverage is maximized and the network is still connected. To simulate the mobility of the sensors, we implemented meandering current mobility model which is one of the existing mobility models for UWASNs that fits our needs. The performance of the proposed approach is validated through simulation. Simulations results indicate that connectivity can be guaranteed regardless of the transmission and sensing range ratio with a coverage very close to a coverage-aware deployment approach. (C) 2014 Elsevier B.V. All rights reserved.
机译:由于难以进入3-D水下环境,在水下声传感器网络(UWASN)中实现最大覆盖范围的传感器的自我部署具有挑战性。如果需要最终网络的连通性,则问题将进一步恶化。解决此问题的一种可能方法是将传感器放在水面上,然后将它们移动到水中的特定深度,以在保持初始连接性的同时最大程度地提高3-0的覆盖范围。在本文中,我们提出了一种用于UWASN的完全分布式节点部署方案,该方案仅需要将传感器随机掉落在水面上即可。该思想基于确定表面上初始网络的连接控制集(CDS),然后调整特定控制节点(即网络的骨干网)的所有邻居的深度,以最小化它们之间的覆盖重叠。仍保持与统治者的连通性。该过程从领导节点开始,并跨越网络中的所有控制者以重新定位它们。除了进行深度调整外,我们还研究了由于波浪,风,洋流,涡旋或随机表面效应等多种因素引起的水流动性可能引起的拓扑变化对网络覆盖和连接性能的影响。一方面,节点的移动性可以帮助拓扑在二维中拉伸,这有助于最大化3-0的覆盖范围。另一方面,移动性可能导致网络分区,其中某些节点与拓扑的其余部分断开连接。我们研究了最佳的节点部署时间,其中二维覆盖范围最大化并且网络仍然连接。为了模拟传感器的移动性,我们实施了蜿蜒的当前移动性模型,该模型是适合我们需求的UWASN的现有移动性模型之一。通过仿真验证了所提出方法的性能。仿真结果表明,无论传输和传感范围比如何,都可以保证连接性,并且覆盖范围非常接近覆盖感知的部署方法。 (C)2014 Elsevier B.V.保留所有权利。

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