Diagnosing link-level anomalies using passive probes

被引:10
|
作者
Agrawal, Shipra [1 ]
Naidu, K. V. M. [2 ]
Rastogi, Rajeev [2 ]
机构
[1] Stanford Univ, Dept Comp Sci, Stanford, CA 94305 USA
[2] Lucent Technol, Bell Labs, Bangalore, Karnataka, India
来源
INFOCOM 2007, VOLS 1-5 | 2007年
关键词
D O I
10.1109/INFCOM.2007.205
中图分类号
TM [电工技术]; TN [电子技术、通信技术];
学科分类号
0808 ; 0809 ;
摘要
In this paper, we develop passive network tomography techniques for inferring link-level anomalies like excessive loss rates and delay from path-level measurements. Our approach involves placing a few passive monitoring devices on strategic links within the network, and then passively monitoring the performance of network paths that pass through those links. In order to keep the monitoring infrastructure and communication costs low, we focus on minimizing (1) the number of passive probe devices deployed, and (2) the set of monitored paths. For mesh topologies, we show that the above two minimization problems are NP-hard, and consequently, devise polynomial-time greedy algorithms that achieve a logarithmic approximation factor, which is the best possible for any algorithm. We also consider tree topologies typical of Enterprise networks, and show that while similar NP-hardness results hold, constant factor approximation algorithms are possible for such topologies.
引用
收藏
页码:1757 / +
页数:2
相关论文
共 50 条
  • [31] Automatic allocation of identifiers in linear wireless sensor networks using link-level processes
    Carlos Egas, A.
    Gil-Castineira, Felipe
    Costa-Montenegro, Enrique
    Silva, Jorge Sa
    2016 8TH IEEE LATIN-AMERICAN CONFERENCE ON COMMUNICATIONS (LATINCOM), 2016,
  • [32] Link-level vulnerability indicators for real-world networks
    Knoop, Victor L.
    Snelder, Maaike
    van Zuylen, Henk J.
    Hoogendoorn, Serge P.
    TRANSPORTATION RESEARCH PART A-POLICY AND PRACTICE, 2012, 46 (05) : 843 - 854
  • [33] Framework for Link-Level Energy Efficiency Optimization with Informed Transmitter
    Isheden, Christian
    Chong, Zhijiat
    Jorswieck, Eduard
    Fettweis, Gerhard
    IEEE TRANSACTIONS ON WIRELESS COMMUNICATIONS, 2012, 11 (08) : 2946 - 2957
  • [34] Bottom up algorithm to identify link-level transition probability
    Zhu, WP
    NETWORKING AND MOBILE COMPUTING, PROCEEDINGS, 2005, 3619 : 385 - 394
  • [35] Quasi-static method for predicting link-level performance
    Ratasuk, R
    Ghosh, A
    Classon, B
    IEEE 55TH VEHICULAR TECHNOLOGY CONFERENCE, VTC SPRING 2002, VOLS 1-4, PROCEEDINGS, 2002, : 1298 - 1302
  • [36] Link-Level Analysis of Low Latency Operation in LTE Networks
    Hosseini, Kianoush
    Patel, Shim
    Damnjanovic, Aleksandar
    Chen, Wanshi
    Montojo, Juan
    2016 IEEE GLOBAL COMMUNICATIONS CONFERENCE (GLOBECOM), 2016,
  • [37] Link-Level Analysis of a Multiservice Indoor Distributed Antenna System
    Chen, Xiaoming
    Guo, Shuang
    Wu, Qi
    IEEE ANTENNAS AND PROPAGATION MAGAZINE, 2017, 59 (03) : 154 - 162
  • [38] Influence of power control and link-level retransmissions on wireless TCP
    Möller, N
    Johansson, KH
    QUALITY FOR ALL, 2003, 2811 : 193 - 202
  • [39] Link-level Measurements of Outdoor 802.11g Links
    Gupta, Pulkit
    Jain, Bharat
    Raman, Bhaskaran
    Kulkarni, Purushottam
    2009 6TH ANNUAL IEEE COMMUNICATION SOCIETY CONFERENCE ON SENSOR, MESH AND AD HOC COMMUNICATIONS AND NETWORKS WORKSHOPS, 2009, : 39 - 44
  • [40] An explanation for unexpected 802.11 outdoor link-level measurement results
    Giustiniano, Domenico
    Bianchi, Giuseppe
    Scalia, Luca
    Tinnirello, Ilenia
    27TH IEEE CONFERENCE ON COMPUTER COMMUNICATIONS (INFOCOM), VOLS 1-5, 2008, : 341 - 345