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Towards Trouble-Free Networks for End Users

机译:面向最终用户的无故障网络

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摘要

Network applications and Internet services fail all too frequently. However, end users cannot effectively identify the root cause using traditional troubleshooting techniques due to the limited capability to distinguish failures caused by local network elements from failures caused by elements located outside the local area network.;To overcome these limitations, we propose a new approach, one that leverages collaboration of user machines to assist end users in diagnosing various failures related to Internet connectivity and poor network performance.;First, we present DYSWIS ("Do You See What I See?"), an automatic network fault detection and diagnosis system for end users. DYSWIS identifies the root cause(s) of network faults using diagnostic rules that consider diverse information from multiple nodes. In addition, the DYSWIS rule system is specially designed to support crowdsourced and distributed probes. We also describe the architecture of DYSWIS and compare its performance with other tools. Finally, we demonstrate that the system successfully detects and diagnoses network failures which are difficult to diagnose using a single-user probe.;Failures in lower layers of the protocol stack also have the potential to disrupt Internet access; for example, slow Internet connectivity is often caused by poor Wi-Fi performance. Channel contention and non-Wi-Fi interference are the primary reasons for this performance degradation. We investigate the characteristics of non-Wi-Fi interference that can severely degrade Wi-Fi performance and present WiSlow ("Why is my Wi-Fi slow?"), a software tool that diagnoses the root causes of poor Wi-Fi performance. WiSlow employs user-level network probes and leverages peer collaboration to identify the physical location of these causes. The software includes two principal methods: packet loss analysis and 802.11 ACK number analysis. When the issue is located near Wi-Fi devices, the accuracy of WiSlow exceeds 90%.;Finally, we expand our collaborative approach to the Internet of Things (IoT) and propose a platform for network-troubleshooting on home devices. This platform takes advantage of built-in technology common to modern devices---multiple communication interfaces. For example, when a home device has a problem with an interface it sends a probe request to other devices using an alternative interface. The system then exploits cooperation of both internal devices and remote machines. We show that this approach is useful in home networks by demonstrating an application that contains actual diagnostic algorithms.
机译:网络应用程序和Internet服务经常失败。但是,由于区分本地网络元素引起的故障和局域网外部元素引起的故障的能力有限,最终用户无法使用传统的故障排除技术有效地找出根本原因。为了克服这些限制,我们提出了一种新方法,它利用用户机器的协作来协助最终用户诊断与Internet连接和不良网络性能有关的各种故障。首先,我们介绍DYSWIS(“您看到我看到了吗?”),这是一种自动的网络故障检测和诊断。最终用户的系统。 DYSWIS使用考虑来自多个节点的各种信息的诊断规则来确定网络故障的根本原因。此外,DYSWIS规则系统是专门设计用于支持众包和分布式探针的。我们还将描述DYSWIS的体系结构,并将其性能与其他工具进行比较。最后,我们证明了该系统可以成功检测并诊断使用单用户探针难以诊断的网络故障。协议栈较低层的故障也有可能破坏Internet访问;例如,Internet连接速度慢通常是由于Wi-Fi性能不佳引起的。信道争用和非Wi-Fi干扰是造成此性能下降的主要原因。我们调查了会严重降低Wi-Fi性能的非Wi-Fi干扰的特征,并提出了WiSlow(“为什么我的Wi-Fi速度慢?”),这是一种诊断Wi-Fi性能不佳的根本原因的软件工具。 WiSlow使用用户级网络探针,并利用对等协作来识别这些原因的物理位置。该软件包括两种主要方法:丢包分析和802.11 ACK编号分析。当问题位于Wi-Fi设备附近时,WiSlow的准确性超过90%。最后,我们将协作方法扩展到了物联网(IoT),并提出了一个在家用设备上进行网络故障排除的平台。该平台利用了现代设备通用的内置技术-多种通信接口。例如,当家用设备的接口出现问题时,它将使用备用接口将探测请求发送到其他设备。然后,系统利用内部设备和远程机器的协作。通过演示包含实际诊断算法的应用程序,我们证明了这种方法在家庭网络中很有用。

著录项

  • 作者

    Kim, Kyung Hwa.;

  • 作者单位

    Columbia University.;

  • 授予单位 Columbia University.;
  • 学科 Computer science.
  • 学位 Ph.D.
  • 年度 2018
  • 页码 117 p.
  • 总页数 117
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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