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Chessboard-interpolation-based multiple description video coding 被引量:2

Chessboard-interpolation-based multiple description video coding
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摘要 To enhance the robustness of video transmission over noisy channels, this paper presents a multiple description video coding algorithm based on chessboard-interpolation. In the algorithm, the input image is decomposed according to the chessboard pattern, and then interpolated to produce two approximate images with the same resolution. Consequently, the state-of-the-art DCT+MC (Discrete Cosine Transform + Motion Compensation) video codec is independently applied to the two approximate images to generate two descriptions of the original image. In this framework, a fairely good reconstructed image quality is obtained when two descriptions are received simultaneously, while an acceptable reconstructed image quality could be yielded if only one description is available. Moreover, the mismatch between the encoder and the decoder could be effectively controlled through partial coding of the difference signal between two descriptions. In bidirectional video communications, a drift control scheme is further proposed, in which the error drift could be eliminated after the encoder imitating the error concealment actions of the decoder. Since the inherent correlation among adjacent blocks of DCT+MC video coding is efficiently exploited, this algorithm has a better redundancy-rate-distortion (RRD) performance than other multiple description algorithms. Simulation results show that the proposed algorithm is fairly robust while preserves a high compression rate. A more constant reconstructed image quality is achieved over extremely noisy channels, compared with traditional single description coding. In addition, it is observed that the mismatch and the error drift are effectively controlled. To enhance the robustness of video transmission over noisy channels, this paper presents a multiple description video coding algorithm based on chessboard-interpolation. In the algorithm, the input image is decomposed according to the chessboard pattern, and then interpolated to produce two approximate images with the same resolution. Consequently, the state-of-the-art DCT+MC (Discrete Cosine Transform + Motion Compensation) video codec is independently applied to the two approximate images to generate two descriptions of the original image. In this framework, a fairely good reconstructed image quality is obtained when two descriptions are received simultaneously, while an acceptable reconstructed image quality could be yielded if only one description is available. Moreover, the mismatch between the encoder and the decoder could be effectively controlled through partial coding of the difference signal between two descriptions. In bidirectional video communications, a drift control scheme is further proposed, in which the error drift could be eliminated after the encoder imitating the error concealment actions of the decoder. Since the inherent correlation among adjacent blocks of DCT+MC video coding is efficiently exploited, this algorithm has a better redundancy-rate-distortion (RRD) performance than other multiple description algorithms. Simulation results show that the proposed algorithm is fairly robust while preserves a high compression rate. A more constant reconstructed image quality is achieved over extremely noisy channels, compared with traditional single description coding. In addition, it is observed that the mismatch and the error drift are effectively controlled.
出处 《Science in China(Series F)》 2004年第1期66-74,共9页 中国科学(F辑英文版)
关键词 video coding multiple description coding chessboard interpolation error drift. video coding, multiple description coding, chessboard interpolation, error drift.
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参考文献16

  • 1[1]Goyal, V. K., Multiple description coding: compression meets the network, IEEE Signal Processing Magazine.2001, 18(5): 74-93.
  • 2[2]Reibman, A., Jafarkhani, H., Wang, Y. et al., Multiple description video using rate-distortion splitting,International Conference on Image Processing, 2001, 1: 978-981.
  • 3[3]Tang, X., Zakhor, A., Matching pursuits multiple description coding for wireless video, IEEE Trans. on Circuits and Systems for Video Technology, 2002, 12(6): 566-575.
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  • 8[8]Wang, Y., Orchard, M. T., Vaishampayan, V. A. et al., Multiple description coding using pairwise correlating transforms, IEEE Trans. on Image Proc., 2001, 10(3): 351-366.
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  • 10[10]Goyal, V. K., Kovacevic, J., Generalized multiple description coding with correlating transforms, IEEE Trans.on Information Theory, 2001, 47(6): 2199-2224.

同被引文献11

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