以视频传感器和图像传感器为代表的有向传感器,在保持连通性的前提下,网络覆盖面积很难最大化,低速率拒绝服务攻击在小面积内会造成带宽混乱拥堵,造成网络带宽分配不佳、分配错误率较高。为此,提出一种低速率拒绝服务攻击下有向传感器...以视频传感器和图像传感器为代表的有向传感器,在保持连通性的前提下,网络覆盖面积很难最大化,低速率拒绝服务攻击在小面积内会造成带宽混乱拥堵,造成网络带宽分配不佳、分配错误率较高。为此,提出一种低速率拒绝服务攻击下有向传感器网络带宽分配方法。建立低速率拒绝服务攻击(Denial of Service attack,DoS)有向传感器网络模型。将攻击频率及攻击时间作为约束条件,采用设计的资源调度器控制有向传感器网络参数,使其满足资源动态调度性能需求。利用动态带宽分配算法设定三种采样周期,并通过调整采样周期实现带宽分配。仿真结果表明,所提方法的平均时延低于23 ms,带宽利用率为94%,节点平均队列长度低于1.9。验证了该方法具有可靠性更高的带宽分配结果。展开更多
A multicast routing algorithm of multiple QoS constraints based on widest-bandwidth (MRQW) which takes available bandwidth as the prime metric, considering the constraints of the surplus energy of the node, delay an...A multicast routing algorithm of multiple QoS constraints based on widest-bandwidth (MRQW) which takes available bandwidth as the prime metric, considering the constraints of the surplus energy of the node, delay and delay jitter, is presented. The process of routing based on MRQW is provided for as well. Correctness proof and the complexity analysis of the MRQW are also given in the paper. Simulation results show that the MRQW has a good performance in creating multicast trees. It not only satisfys multiple QoS constraints but also makes multicast links have larger available bandwidth展开更多
文摘以视频传感器和图像传感器为代表的有向传感器,在保持连通性的前提下,网络覆盖面积很难最大化,低速率拒绝服务攻击在小面积内会造成带宽混乱拥堵,造成网络带宽分配不佳、分配错误率较高。为此,提出一种低速率拒绝服务攻击下有向传感器网络带宽分配方法。建立低速率拒绝服务攻击(Denial of Service attack,DoS)有向传感器网络模型。将攻击频率及攻击时间作为约束条件,采用设计的资源调度器控制有向传感器网络参数,使其满足资源动态调度性能需求。利用动态带宽分配算法设定三种采样周期,并通过调整采样周期实现带宽分配。仿真结果表明,所提方法的平均时延低于23 ms,带宽利用率为94%,节点平均队列长度低于1.9。验证了该方法具有可靠性更高的带宽分配结果。
基金This project was supported by the National Natural Science Foundation of China (90304018)and the Natural ScienceFoundation of Hubei Province of China (2004ABA023)
文摘A multicast routing algorithm of multiple QoS constraints based on widest-bandwidth (MRQW) which takes available bandwidth as the prime metric, considering the constraints of the surplus energy of the node, delay and delay jitter, is presented. The process of routing based on MRQW is provided for as well. Correctness proof and the complexity analysis of the MRQW are also given in the paper. Simulation results show that the MRQW has a good performance in creating multicast trees. It not only satisfys multiple QoS constraints but also makes multicast links have larger available bandwidth