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Algorithms for Network Topology Discovery using End-to-End Measurements

机译:使用端到端测量的网络拓扑发现算法

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Identifying and inferring performances of a network topology is a well known problem. Achieving this by using only end-to-end measurements at the application level is a method known as network tomography. When the topology produced reflects capacities of sets of links with respect to a metric, the topology is called a Metric-Induced Network Topology (MINT). Tomography producing MINT has been widely used in order to predict performances of communications between clients and server. Nowadays grids connect up to thousands communicating resources that may interact in a partially or totally coordinated way. Consequently, applications running upon this kind of platform often involve massively concurrent bulk data transfers. This implies that the client/server model is no longer valid. In this paper, we introduce new algorithms that reconstruct a novel representation of the knowledge inferred from the network which is able to deal with multiple sources/multiple destinations transfers.
机译:识别和推断网络拓扑的性能是众所周知的问题。通过在应用程序级别使用的端到端测量仅实现这一点是称为网络断层扫描的方法。当产生的拓扑反映了相对于度量标准集合集合的能力时,拓扑被称为度量诱导的网络拓扑(MINT)。生产薄荷的断层扫描已被广泛使用,以预测客户端和服务器之间的通信的性能。如今电网连接到数千个可以以部分或完全协调的方式进行交互的传送资源。因此,在这种平台上运行的应用程序通常涉及大量并发的批量数据传输。这意味着客户端/服务器模型不再有效。在本文中,我们介绍了新的算法,该算法重建了从网络推断的知识的新颖表示,该信息能够处理多个源/多个目的地传输。

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