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COUPON: A Cooperative Framework for Building Sensing Maps in Mobile Opportunistic Networks

机译:优惠券:在移动机会网络中构建传感图的合作框架

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Human-carried or vehicle-mounted sensors can be exploited to collect data ubiquitously for building various sensing maps. Most of existing mobile sensing applications consider users reporting and accessing sensing data through the Internet. However, this approach cannot be applied in the scenarios with poor network coverage or expensive network access. Existing data forwarding schemes for mobile opportunistic networks are not sufficient for sensing applications as spatial-temporal correlation among sensory data has not been explored. In order to build sensing maps satisfying specific sensing quality with low delay and energy consumption, we design COUPON, a novel cooperative sensing and data forwarding framework. We first notice that cooperative sensing scheme can eliminate sampling redundancy and hence save energy. Then we design two cooperative forwarding schemes by leveraging data fusion: Epidemic Routing with Fusion (ERF) and Binary Spray-and-Wait with Fusion (BSWF). Different from previous work assuming that all packets are propagated independently, we consider that packets are spatial-temporal correlated in the forwarding process, and derive the dissemination law of correlated packets. Both the theoretic analysis and simulation results show that our cooperative forwarding schemes can achieve better tradeoff between delivery delay and transmission overhead. We also evaluate our proposed framework and schemes with real mobile traces. Extensive simulations demonstrate that the cooperative sensing scheme can reduce the number of samplings by 93 percent compared with the non-cooperative scheme; ERF can reduce the transmission overhead by 78 percent compared with Epidemic Routing (ER); BSWF can increase the delivery ratio by 16 percent, and reduce the delivery delay and transmission overhead by 5 and 32 percent respectively, compared with Binary Spray-and-Wait (BSW).
机译:可以利用车载或车载传感器来无处不在地收集数据,以构建各种传感图。大多数现有的移动传感应用程序都考虑用户通过Internet报告和访问传感数据。但是,这种方法不能应用于网络覆盖范围较差或网络访问成本较高的情况。用于移动机会网络的现有数据转发方案不足以感测应用,因为尚未探索感官数据之间的时空相关性。为了构建低延迟和低能耗的满足特定传感质量的传感图,我们设计了一种新型的协同传感和数据转发框架COUPON。我们首先注意到,协作感测方案可以消除采样冗余,从而节省能源。然后,我们利用数据融合设计了两种协作转发方案:带有融合的流行病路由(ERF)和带有融合的二进制喷雾等待(BSWF)。与先前的工作假设所有数据包均独立传播不同,我们认为数据包在转发过程中是时空相关的,并推导了相关数据包的传播规律。理论分析和仿真结果均表明,我们的协作转发方案可以在传递延迟和传输开销之间取得更好的权衡。我们还使用真实的移动轨迹评估了我们提出的框架和方案。大量的仿真表明,与非合作方案相比,合作感知方案可以将采样数量减少93%。与流行路由(ER)相比,ERF可以将传输开销减少78%;与二元等待喷涂(BSW)相比,BSWF可以将交付比率提高16%,并将交付延迟和传输开销分别减少5%和32%。

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