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NR-Bitstream video quality metrics for SSIM using encoding decisions in AVC and HEVC coded videos

  • Ting Lan Lin
  • , Neng Chieh Yang
  • , Ray Hong Syu
  • , Chin Chie Liao
  • , Wei Lin Tsai
  • , Chi Chan Chou
  • , Shih Lun Chen

Research output: Contribution to journalArticlepeer-review

7 Scopus citations

Abstract

We propose a no-reference compressed video quality model to predict the full-reference SSIM metrics for AVC (Advanced Video Coding, H.264) and HEVC (High Efficiency Video Coding) videos. The model we use is support vector regression (SVR) model. We use only encoding decisions made during motion estimation to perform the prediction, and do not need the information from pixel domain. We show that the Block-Partition-related features have great importance in SSIM prediction, especially for HEVC videos, due to its partition decisions being more complex than those of AVC. The proposed SVR model trained by data of two different encoding configurations can predict SSIM well for AVC videos (0.78 correlation) and for HEVC videos (0.88 correlation). The proposed models are also compared with a state-of-the-art no-reference-bitstream-pixel SSIM prediction model. We show that the proposed methods provide higher prediction correlation (as high as 13.13% improvement in correlation) with much lower complexity.

Original languageEnglish
Pages (from-to)257-271
Number of pages15
JournalJournal of Visual Communication and Image Representation
Volume32
DOIs
StatePublished - 1 Oct 2015

Bibliographical note

Publisher Copyright:
© 2015 Elsevier Inc. All rights reserved.

Keywords

  • AVC (Advanced video coding)
  • H.264
  • HEVC (High efficiency video coding)
  • No-reference video quality monitoring
  • SSIM (Structural SIMilarity index)
  • Support vector regression (SVR) model
  • Video coding motion vector information
  • Video coding partition information

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