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A Node-Regulated Deflection Routing Framework for Contention Minimization

机译:用于争用最小化的节点调节偏转路由框架

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Optical Burst Switching (OBS) paradigm coupled with Dense Wavelength Division Multiplexing (DWDM) has become a practical candidate solution for the next-generation optical backbone networks. In its practical deployment only the edge nodes are provisioned with buffering capabilities, whereas all interior (core) nodes remain buffer-less. In that way the implementation becomes quite simple as well as cost effective as there will be no need for optical buffers in the interior. However, the buffer-less nature of the interior nodes makes such networks prone to data burst contention occurrences that lead to a degradation in overall network performance as a result of sporadic heavy burst losses. Such drawbacks can be partly countered by appropriately dimensioning available network resources and reactively by way of deflecting excess as well as contending data bursts to available least-cost alternate paths. However, the deflected data bursts (traffic) must not cause network performance degradations in the deflection routes. Because minimizing contention occurrences is key to provisioning a consistent Quality of Service (QoS), we therefore in this paper propose and analyze a framework (scheme) that seeks to intelligently deflect traffic in the core network such that QoS degradations caused by contention occurrences are minimized. This is by way of regulated deflection routing (rDr) in which neural network agents are utilized in reinforcing the deflection route choices at core nodes. The framework primarily relies on both reactive and proactive regulated deflection routing approaches in order to prevent or resolve data burst contentions. Simulation results show that the scheme does effectively improve overall network performance when compared with existing contention resolution approaches. Notably, the scheme minimizes burst losses, end-to-end delays, frequency of contention occurrences, and burst deflections.
机译:光学突发切换(OBS)范式与密集波分复用(DWDM)耦合已成为下一代光学骨干网的实用候选解决方案。在其实际部署中,只有边缘节点被配置为缓冲功能,而所有内部(核心)节点仍保持缓冲。以这种方式,实现变得非常简单,并且由于内部中不需要光学缓冲器而具有成本效益。然而,内部节点的缓冲性质使得这些网络容易出现数据突发争用事项,这导致总网络性能的降低,这是散发性重型突发损耗。这种缺点可以通过适当地尺寸可用的网络资源和通过偏转过量的方式和竞争数据突发到可用的最低成本替代路径来部分地抵消这些缺点。但是,偏转的数据突发(流量)不得导致偏转路由中的网络性能下降。因为最小化争用发生是提供一致的服务质量(QoS)的关键,因此我们在本文中提出并分析了寻求智能地偏转核心网络中流量的框架(方案),使得由争用事件引起的QoS降级是最小化的。这是通过调节偏转路由(RDR),其中利用神经网络代理在核心节点中加强偏转路由选择。该框架主要依赖于反应性和主动调节偏转路由方法,以防止或解决数据突发符号。仿真结果表明,与现有争用解决方法相比,该方案确实有效提高整体网络性能。值得注意的是,该方案最小化了突发损耗,截止端延迟,争用频率和突发偏转。

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