NOSS: Sensor Data Ghosting: A Framework for the Survival of Critical Data under Sensor Failures
NOSS: Sensor Data Ghosting: A Framework for the Survival of Critical Data under Sensor Failures
批准号:
0721550
负责人:
Hayder Radha
金额:
$35.0万
依托单位国家:
美国
项目类别:
Continuing Grant
财政年份:
2007
资助国家:
美国
项目状态:
已结题
起止时间:
2007-09-01 至 2011-08-31
中文摘要
在人为或自然灾害中收集的关键传感器数据的存续可以说比传统的传感器网络设计目标更重要,例如延长传感器的使用寿命。在这个项目下,正在开发一个传感器数据重影框架。该框架创建了最小的数据冗余,称为传感器数据幽灵,它们在传感器网络中向接收器漫游。当传感器发生故障时,数据幽灵被加速到接收器,以便及时恢复。由于有足够的数据(由于数据重影而产生),接收器上传感器数据的恢复变得可行。编码和网络解决方案正在以协同的方式开发和集成,以实现传感器数据的生存能力和持久性。特别是,在网络图上映射有效信道代码的网络编码方法正在开发中。在网络方面,正在研究一种新的拓扑进化解决方案,该解决方案能够对随机故障做出快速反应,并快速向接收器提供关键数据。这种拓扑进化方法将传统的传感器网络几何拓扑重新排列为小世界网络拓扑,从而允许少量的长途“捷径”到达接收器。相关的网络研究,如定向扩散和优先转发,也在拓扑进化的研究中。除了使传感器数据的生存能力达到新的水平外,该项目还具有比目标传感器应用更广泛的理论和实践影响。这包括开发新型“网络图上的代码”和自适应网络拓扑的方法。
英文摘要
The survival of critical sensor data that is collected during manmade or natural disasters is arguably more important than traditional sensor-network design objectives, such as prolonging the sensors' lifetime. Under this project, a sensor data ghosting framework is being developed. This framework creates minimal data redundancy, known as sensor data ghosts, which roam around the sensor network toward a sink. Under sensor failures, the data ghosts are expedited toward the sink for their timely recovery. Recovery of the sensor data at the sink becomes feasible due to the availability of just enough data (generated due to data ghosting). Coding and networking solutions are being developed and integrated in a synergetic manner to achieve sensor data survivability and persistence. In particular, network coding approaches that map efficient channel codes over network graphs are being developed. On the networking side, a novel topology evolution solution that is capable of reacting rapidly to random failures and providing expedited delivery of critical data to the sink is being researched. This topology evolution approach rearranges a traditional sensor-network geometric topology toward a small-world network topology, which allows a small number of long-haul "shortcuts" toward the sink. Related networking research, such as directed diffusion and prioritized forwarding, is also being investigated under topology evolution. In addition to enabling new levels of sensor data survivability, this project has significantly broader theoretical and practical impact than the target sensor application. This includes the development of new types of "codes on network graphs" and approaches in adaptive network topologies.
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