DocumentCode :
136297
Title :
QoE space based QoE adaptation algorithm for SVC-P2P video streaming systems
Author :
Junping Song ; Yanwei Liu ; Jinxia Liu ; Song Ci ; Yifang Qin ; Yang Li
Author_Institution :
Inst. of Acoust., Beijing, China
fYear :
2014
fDate :
10-13 Jan. 2014
Firstpage :
23
Lastpage :
28
Abstract :
In this paper, we propose a QoE Space (QS) based QoE Adaptation (QSQA) algorithm for SVC based peer-to-peer (SVC-P2P) video streaming systems. The QS records the users´ experiences in terms of Mean Opinion Scores (MOS) with different content type, packet loss rate, spatial resolution, frame rate and video compression Quantization Parameter (QP). The two features of QS, the video content classification and the linear interpolation of MOS, make it can be universally used for QoE prediction in video streaming systems. The prediction accuracy of QS is also validated from these two aspects. By utilizing the initial QoE adaptation and progressive QoE adaptation, the QSQA algorithm determines layer subscription for client according to network environments, terminal conditions and video content characteristics. Extensive subjective experimental results of SVC-P2P video streaming show that QSQA obviously outperforms quality adaptation algorithms that based on Layer-by-Layer and JSVM bit stream extraction.
Keywords :
data compression; peer-to-peer computing; quality of experience; quantisation (signal); video coding; video streaming; MOS linear interpolation; QSQA algorithm; QoE space based QoE adaptation algorithm; SVC based peer-to-peer video streaming systems; SVC-P2P video streaming systems; content type; frame rate; layer subscription determination; mean opinion scores; packet loss rate; spatial resolution; terminal conditions; video compression quantization parameter; video content characteristics; video content classification; Accuracy; Bandwidth; Interpolation; Packet loss; Spatial resolution; Streaming media;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Consumer Communications and Networking Conference (CCNC), 2014 IEEE 11th
Conference_Location :
Las Vegas, NV
Print_ISBN :
978-1-4799-2356-4
Type :
conf
DOI :
10.1109/CCNC.2014.6940489
Filename :
6940489
Link To Document :
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