45,886 research outputs found
Ontology based approach for video transmission over the network
With the increase in the bandwidth & the transmission speed over the
internet, transmission of multimedia objects like video, audio, images has
become an easier work. In this paper we provide an approach that can be useful
for transmission of video objects over the internet without much fuzz. The
approach provides a ontology based framework that is used to establish an
automatic deployment of video transmission system. Further the video is
compressed using the structural flow mechanism that uses the wavelet principle
for compression of video frames. Finally the video transmission algorithm known
as RRDBFSF algorithm is provided that makes use of the concept of restrictive
flooding to avoid redundancy thereby increasing the efficiency.Comment: 7 pages, 2 figures, 4 table
Learned Quality Enhancement via Multi-Frame Priors for HEVC Compliant Low-Delay Applications
Networked video applications, e.g., video conferencing, often suffer from
poor visual quality due to unexpected network fluctuation and limited
bandwidth. In this paper, we have developed a Quality Enhancement Network
(QENet) to reduce the video compression artifacts, leveraging the spatial and
temporal priors generated by respective multi-scale convolutions spatially and
warped temporal predictions in a recurrent fashion temporally. We have
integrated this QENet as a standard-alone post-processing subsystem to the High
Efficiency Video Coding (HEVC) compliant decoder. Experimental results show
that our QENet demonstrates the state-of-the-art performance against default
in-loop filters in HEVC and other deep learning based methods with noticeable
objective gains in Peak-Signal-to-Noise Ratio (PSNR) and subjective gains
visually
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