一种新的动态软件定义网络方法来中和流量突发

Comput. Pub Date : 2023-06-27 DOI:10.3390/computers12070131
Aakanksha Sharma, V. Balasubramanian, J. Kamruzzaman
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引用次数: 0

摘要

软件定义网络(SDN)对网络有一个整体的看法。它非常适合处理传统网络中的动态负载,而只需对网络基础结构进行最小的更新。然而,标准的SDN架构控制平面是针对单个或多个分布式SDN控制器设计的,面临着严重的瓶颈问题。我们最初的研究为传统网络创建了一个参考模型,在一个名为NetSim的网络模拟器中使用标准SDN(以下简称SDN)。根据网络流量,参考模型根据连接物联网设备的数量分为轻型、中型和重型网络。此外,在标准SDN中提出了一种优先级调度和拥塞控制算法,称为扩展SDN (eSDN),该算法使拥塞最小化,性能优于标准SDN。然而,这种增强只适用于小规模网络,因为在大规模网络中,eSDN不支持动态SDN控制器映射。通常,同一个SDN控制器会过载,导致单点故障。我们的文献综述表明,大多数提出的解决方案都是基于静态SDN控制器部署,没有考虑流量波动和流量突发,导致SDN控制器之间缺乏实时负载均衡,最终增加网络延迟。因此,为了保持网络中的服务质量(QoS),静态SDN控制器必须中和动态流量突发。因此,我们在SDN中放置多控制器的新型动态控制器映射算法对于解决所识别的问题至关重要。在dSDN中,SDN控制器随负载波动动态映射。当任何一个SDN控制器达到最大阈值时,剩余的流量将被分流到另一个控制器上,大大减少了时延,提高了整体性能。该技术考虑了网络中的延迟和负载波动,解决了静态映射无法处理动态流量变化的问题。
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A Novel Dynamic Software-Defined Networking Approach to Neutralize Traffic Burst
Software-defined networks (SDN) has a holistic view of the network. It is highly suitable for handling dynamic loads in the traditional network with a minimal update in the network infrastructure. However, the standard SDN architecture control plane has been designed for single or multiple distributed SDN controllers facing severe bottleneck issues. Our initial research created a reference model for the traditional network, using the standard SDN (referred to as SDN hereafter) in a network simulator called NetSim. Based on the network traffic, the reference models consisted of light, modest and heavy networks depending on the number of connected IoT devices. Furthermore, a priority scheduling and congestion control algorithm is proposed in the standard SDN, named extended SDN (eSDN), which minimises congestion and performs better than the standard SDN. However, the enhancement was suitable only for the small-scale network because, in a large-scale network, the eSDN does not support dynamic SDN controller mapping. Often, the same SDN controller gets overloaded, leading to a single point of failure. Our literature review shows that most proposed solutions are based on static SDN controller deployment without considering flow fluctuations and traffic bursts that lead to a lack of load balancing among the SDN controllers in real-time, eventually increasing the network latency. Therefore, to maintain the Quality of Service (QoS) in the network, it becomes imperative for the static SDN controller to neutralise the on-the-fly traffic burst. Thus, our novel dynamic controller mapping algorithm with multiple-controller placement in the SDN is critical to solving the identified issues. In dSDN, the SDN controllers are mapped dynamically with the load fluctuation. If any SDN controller reaches its maximum threshold, the rest of the traffic will be diverted to another controller, significantly reducing delay and enhancing the overall performance. Our technique considers the latency and load fluctuation in the network and manages the situations where static mapping is ineffective in dealing with the dynamic flow variation.
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