TY - JOUR
T1 - Temporal-Layer-Motivated Lambda Domain Picture Level Rate Control for Random-Access Configuration in H.265/HEVC
AU - Gong, Yanchao
AU - Wan, Shuai
AU - Yang, Kaifang
AU - Wu, Hong Ren
AU - Liu, Ying
N1 - Publisher Copyright:
© 1991-2012 IEEE.
PY - 2019/1
Y1 - 2019/1
N2 - Rate control is a key technique for video communication systems. The aim of rate control is to transmit the best possible quality video sequences under various restrictions, such as channel bandwidth, buffer capacity, maximum time delay allowed for a given service, and so on. The $\lambda $ domain rate control technique ( $\lambda $ -RC) has been integrated into the latest High Efficiency Video Coding standard (H.265/HEVC) test model, due to its accurate bit estimation and high rate-distortion performance. However, it is found that the $\lambda $ -RC is not the optimal choice under the random-access configuration. When the random-access configuration is used, pictures are organized into temporal layers, where pictures in different layers are of different importance in terms of prediction. In this paper, a picture level lambda domain rate control technique for the random-access configuration in H.265/HEVC is proposed. The influence of temporal layers is effectively considered in the proposed algorithm referred to as TL- $\lambda $ -PRC. Experimental results verify that the proposed TL- $\lambda $ -PRC is efficient in coding performance and accurate in bit estimation. Compared with the $\lambda $ -RC with the fixed ration bit allocation which has been implemented in the test model of H.265/HEVC (HM 14.0), TL- $\lambda $ -PRC achieves an average reduction of 4.10% and 3.49% for slow motion and fast motion sequences, respectively, in BD-rate (Bjontegaard-Delta bitrate) with more accurate bit estimation. The performance of different algorithms in terms of algorithm complexity and quality fluctuation are also carefully analyzed in this contribution.
AB - Rate control is a key technique for video communication systems. The aim of rate control is to transmit the best possible quality video sequences under various restrictions, such as channel bandwidth, buffer capacity, maximum time delay allowed for a given service, and so on. The $\lambda $ domain rate control technique ( $\lambda $ -RC) has been integrated into the latest High Efficiency Video Coding standard (H.265/HEVC) test model, due to its accurate bit estimation and high rate-distortion performance. However, it is found that the $\lambda $ -RC is not the optimal choice under the random-access configuration. When the random-access configuration is used, pictures are organized into temporal layers, where pictures in different layers are of different importance in terms of prediction. In this paper, a picture level lambda domain rate control technique for the random-access configuration in H.265/HEVC is proposed. The influence of temporal layers is effectively considered in the proposed algorithm referred to as TL- $\lambda $ -PRC. Experimental results verify that the proposed TL- $\lambda $ -PRC is efficient in coding performance and accurate in bit estimation. Compared with the $\lambda $ -RC with the fixed ration bit allocation which has been implemented in the test model of H.265/HEVC (HM 14.0), TL- $\lambda $ -PRC achieves an average reduction of 4.10% and 3.49% for slow motion and fast motion sequences, respectively, in BD-rate (Bjontegaard-Delta bitrate) with more accurate bit estimation. The performance of different algorithms in terms of algorithm complexity and quality fluctuation are also carefully analyzed in this contribution.
KW - H.265/HEVC
KW - Random-access configuration
KW - rate control
KW - temporal-layer-motivated
KW - video coding
UR - http://www.scopus.com/inward/record.url?scp=85033693879&partnerID=8YFLogxK
U2 - 10.1109/TCSVT.2017.2769703
DO - 10.1109/TCSVT.2017.2769703
M3 - 文章
AN - SCOPUS:85033693879
SN - 1051-8215
VL - 29
SP - 156
EP - 170
JO - IEEE Transactions on Circuits and Systems for Video Technology
JF - IEEE Transactions on Circuits and Systems for Video Technology
IS - 1
M1 - 8094910
ER -