Title :
Hierarchical HDTV/SDTV compatible coding using Kalman statistical filtering
Author :
Chiang, Tihao ; Anastassiou, Dimitris
Author_Institution :
Sarnoff Corp., Princeton, NJ, USA
fDate :
4/1/1999 12:00:00 AM
Abstract :
This paper addresses the issue of hierarchical coding of digital television. A two-layer coding scheme is presented to provide compatibility of standard-definition television (SDTV) and high-definition television (HDTV). The scheme is based on a spatio-temporal pyramid coding technique. We address the problem of interlaced-to-interlaced two-layer compatible coding where both layers are interlaced. The resolution translation is important for the visual quality of the SDTV layer and for the performance of the HDTV layer. A motion-compensated up/down deinterlacing scheme is used to improve the performance. A spatio-temporal averaging technique is used to give a better compatible prediction so that the HDTV layer has a high compression performance. To offer an improved prediction, systematic analysis of the remaining statistical redundancy of the enhancement signal is conducted. Based on an autoregressive model of the difference signal, a Kalman statistical filtering is used to exploit such a redundancy. We combine a recursive filtering and discrete cosine transform (DCT) coding using QR decomposition, where Q is an orthonormal matrix and R is an upper triangular matrix. The error accumulation is cancelled in the DCT frequency domain. The results show peak signal-to-noise-ratio improvements over simulcast as high as 1.2 dB. The new technique, which is referred to as spatial scalability using a Kalman filter (SSKF), achieves a comparable or better picture quality than that of a nonscalable approach for high-quality video coding. The near optimal performance is demonstrated by the white Gaussian noise property of the residual signal
Keywords :
AWGN; adaptive Kalman filters; autoregressive processes; data compression; discrete cosine transforms; filtering theory; high definition television; image resolution; motion compensation; prediction theory; recursive filters; statistical analysis; transform coding; video coding; DCT coding; Kalman statistical filtering; QR decomposition; autoregressive model; difference signal; digital television; discrete cosine transform; hierarchical HDTV/SDTV compatible coding; hierarchical coding; high compression performance; high-definition television; interlaced two-layer compatible coding; motion-compensated up/down deinterlacing; orthonormal matrix; peak signal-to-noise-ratio improvements; recursive filtering; residual signal; resolution translation; simulcast; spatio-temporal averaging technique; spatio-temporal pyramid coding; standard-definition television; statistical redundancy; upper triangular matrix; video coding; visual quality; white Gaussian noise; Digital TV; Discrete cosine transforms; Filtering; Frequency domain analysis; HDTV; Kalman filters; Matrix decomposition; Redundancy; Signal analysis; Signal to noise ratio;
Journal_Title :
Circuits and Systems for Video Technology, IEEE Transactions on