Sangam: A Confluence of Knowledge Streams

3D multiple description coding for error resilience over wireless networks

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dc.contributor Sadka, AH
dc.contributor Aggoun, A
dc.creator Umar, Abubakar
dc.date 2012-05-03T15:12:37Z
dc.date 2012-05-03T15:12:37Z
dc.date 2011
dc.date.accessioned 2022-05-25T14:04:12Z
dc.date.available 2022-05-25T14:04:12Z
dc.identifier http://bura.brunel.ac.uk/handle/2438/6418
dc.identifier.uri http://localhost:8080/xmlui/handle/CUHPOERS/169255
dc.description This thesis was submitted for the degree of Doctor of Philosophy and awarded by Brunel University.
dc.description Mobile communications has gained a growing interest from both customers and service providers alike in the last 1-2 decades. Visual information is used in many application domains such as remote health care, video –on demand, broadcasting, video surveillance etc. In order to enhance the visual effects of digital video content, the depth perception needs to be provided with the actual visual content. 3D video has earned a significant interest from the research community in recent years, due to the tremendous impact it leaves on viewers and its enhancement of the user’s quality of experience (QoE). In the near future, 3D video is likely to be used in most video applications, as it offers a greater sense of immersion and perceptual experience. When 3D video is compressed and transmitted over error prone channels, the associated packet loss leads to visual quality degradation. When a picture is lost or corrupted so severely that the concealment result is not acceptable, the receiver typically pauses video playback and waits for the next INTRA picture to resume decoding. Error propagation caused by employing predictive coding may degrade the video quality severely. There are several ways used to mitigate the effects of such transmission errors. One widely used technique in International Video Coding Standards is error resilience. The motivation behind this research work is that, existing schemes for 2D colour video compression such as MPEG, JPEG and H.263 cannot be applied to 3D video content. 3D video signals contain depth as well as colour information and are bandwidth demanding, as they require the transmission of multiple high-bandwidth 3D video streams. On the other hand, the capacity of wireless channels is limited and wireless links are prone to various types of errors caused by noise, interference, fading, handoff, error burst and network congestion. Given the maximum bit rate budget to represent the 3D scene, optimal bit-rate allocation between texture and depth information rendering distortion/losses should be minimised. To mitigate the effect of these errors on the perceptual 3D video quality, error resilience video coding needs to be investigated further to offer better quality of experience (QoE) to end users. This research work aims at enhancing the error resilience capability of compressed 3D video, when transmitted over mobile channels, using Multiple Description Coding (MDC) in order to improve better user’s quality of experience (QoE). Furthermore, this thesis examines the sensitivity of the human visual system (HVS) when employed to view 3D video scenes. The approach used in this study is to use subjective testing in order to rate people’s perception of 3D video under error free and error prone conditions through the use of a carefully designed bespoke questionnaire.
dc.description Petroleum Technology Development Fund (PTDF)
dc.language en
dc.publisher Brunel University School of Engineering and Design PhD Theses
dc.relation http://bura.brunel.ac.uk/bitstream/2438/6418/1/FulltextThesis.pdf
dc.subject Subjective
dc.subject Objective
dc.subject QoE
dc.subject H.264 coding
dc.subject JSVM
dc.title 3D multiple description coding for error resilience over wireless networks
dc.type Thesis


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