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=Controlling Queuing Delays for Low Delay Communication=
 
=Controlling Queuing Delays for Low Delay Communication=
  
== End-to-end algorithms ==
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Delay sensitive applications require not only congestion control but also minimization of queuing delays to provide interactivity.
  
== Network assistance ==
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<paper authors="G. Carlucci, L. De Cicco, and S. Mascolo" conference="ACM SIGCOMM Computer Communication Review" date="July 2016" pdf="gcc_aqm.pdf">
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Controlling Queuing Delays for Real-Time Communication: Interplay of E2E and AQM Algorithms
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</paper>
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This paper considers the case of real-time communication between web browsers (WebRTC) and we focus on the interplay of an end-to-end delay-based
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congestion control algorithm with delay-based AQM algorithms, namely CoDel and PIE, and flow queuing schedulers, i.e. SFQ and Fq Codel.

Revisione 09:59, 26 Gen 2017

Controlling Queuing Delays for Low Delay Communication

Delay sensitive applications require not only congestion control but also minimization of queuing delays to provide interactivity.

  • G. Carlucci, L. De Cicco, and S. Mascolo
    Controlling Queuing Delays for Real-Time Communication: Interplay of E2E and AQM Algorithms
    ACM SIGCOMM Computer Communication Review, July 2016 (PDF)

This paper considers the case of real-time communication between web browsers (WebRTC) and we focus on the interplay of an end-to-end delay-based congestion control algorithm with delay-based AQM algorithms, namely CoDel and PIE, and flow queuing schedulers, i.e. SFQ and Fq Codel.

Controlling Queuing Delays for Low Delay Communication[edit]

Delay sensitive applications require not only congestion control but also minimization of queuing delays to provide interactivity.

This paper considers the case of real-time communication between web browsers (WebRTC) and we focus on the interplay of an end-to-end delay-based congestion control algorithm with delay-based AQM algorithms, namely CoDel and PIE, and flow queuing schedulers, i.e. SFQ and Fq Codel.