通过协议内测量的延迟特性

I. Marsh, L. McNamara, Rebecca Portelli
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引用次数: 1

摘要

提出了一种基于协议的网络延迟测量技术。通过使用TCP协议交换的握手和拆除阶段作为计时器,我们可以在不使用外部工具、命令或ICMP的情况下估计往返时间。在网页请求和检索过程中,遇到的延迟通常是由终端和网络处理延迟共同造成的。延迟的一部分,本质上是确定性的,来自协议处理或光传播的速度。另一部分延迟,本质上更随机,来自交叉流量的交互,缓冲区排队或web服务器响应时间。我们在这项工作中的方法是明确地将来源分为确定性或随机类型的延迟。为了评估我们的协议内测量方法,我们在两个环境中确定了两个场景。第一种场景是客户端只在公共Internet上看到的延迟,从用户的角度来看,这是最具代表性的场景。为了更详细地量化延迟,我们在自己的研究环境中测量了客户机和服务器上的延迟。我们称这个环境为CheesePi,它是树莓派的测量基础设施。它目前在SUNET瑞典学术网络上运行。在第二个场景中,我们可以访问多个位置的客户机和服务器,这一点很重要。
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Delay characterization through in-protocol measurements
We present an in-protocol Internet delay measurement technique for web browsing. By using the handshake and tear-down phases of a TCP protocol exchange as timers, we can make estimates of the round trip times without using an external tool, command or ICMP. During a web page request and retrieval, the latency encountered is typically caused by a combination of the end-terminal and network processing delays. One proportion of the delay, deterministic in nature, arises from the protocol processing or the speed of light propagation. Another proportion of the delay, more stochastic in nature, arises from interaction with cross traffic, queuing in buffers or web server response times. Our approach in this work is to clearly separate the sources into deterministic or stochastic types of delays. In order to evaluate our in-protocol measurement approach, we have identified two scenarios in two environments. The first scenario is the delays as seen by a client only on the public Internet, this is the most representative scenario from a user perspective. To quantify delays in more detail we have measured the delays at both a client and a server in our own research environment. We call this environment CheesePi, which is a Raspberry Pi measurement infrastructure. It currently runs over the SUNET Swedish academic network. It is important in this second scenario we can access both clients and servers in several locations.
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