移动SINCGARS分组无线网中最小阻力路由的研究

R. Martin, H. Russell
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引用次数: 5

摘要

考虑到移动性需求、对多跳(即存储转发)操作的需求以及链路条件的可变性,分布式网络协议是必要的,以便从不可靠链路的集合中创建可靠的网络。移动的多跳分组无线网络必须通过几个无线电路由数据包,以便将数据包发送到目的地。最小阻力路由(LRR)是专门为战术分组无线网络中的分组路由而设计的。LRR的一个独特之处在于它将侧信息合并到路由协议中,以检测是否存在干扰。调整路由表以避免受到高水平的部分频带或多址干扰的网络的特定无线电和区域。利用SINCGARS无线电对跳频分组无线网络进行了仿真,以检验LRR在现实战术环境中的性能。与以前的研究相比,SINCGARS无线电模型可以更详细地说明移动部分频段干扰和跳频多址干扰。链路层和传输层的确认以及丢包的重传都被建模。将LRR算法的性能与传统的最短路径路由算法进行了比较。LRR算法使用节点和链路电阻措施以及一些不同的路由度量进行了研究。模拟了静态和移动用户拓扑的网络。
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Investigation of least resistance routing in a mobile SINCGARS packet radio network
Given the mobility requirements, the need for multihop (i.e., store-and-forward) operation, and the variability of the link conditions, distributed network protocols are necessary in order to make a reliable network out of the collection of unreliable links. Mobile, multiple-hop packet radio networks must route packets through several radios in order to deliver packets to their destinations. Least resistance routing (LRR) is specifically designed for routing packets in a tactical packet radio network. A unique feature of LRR is that it incorporates side information into the routing protocol for the purpose of detecting the presence of interference. The routing tables are adjusted to avoid particular radios and regions of the network that are subjected to high levels of partial-band or multiple-access interference. A simulation of a frequency hopping packet radio network using the SINCGARS radio is utilized to examine the performance of LRR in a realistic tactical environment. The model of the SINCGARS radio allows for greater detail in accounting for mobile partial-band jamming and FH multiple-access interference than has been possible in previous investigations. Both link and transport layer acknowledgments along with retransmission of dropped packets are modeled. The performance of LRR is compared to a conventional shortest path routing algorithm. LRR algorithms using both node and link resistance measures are investigated as well as a number of different routing metrics. Networks with both static and mobile user topologies are simulated.
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