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Context Modeling and Correction of Quantization Errors in Prediction Loop

机译:预测环中量化误差的上下文建模和校正

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摘要

In lossy predictive coding of Differential Pulse Code Modulation (DPCM) type, quantization performed in the prediction loop induces propagation of quantization errors, resulting in biased predictions of the subsequent samples. In this work, we aim to alleviate the negative effect of quantization errors on the robustness of prediction. We propose some practical techniques for context modeling of quantization errors and cancellation of estimation biases in the DPCM reconstruction. The resulting refined estimates are fed into the prediction to improve coding efficiency. When applied to 1D audio and 2D image signals, the proposed techniques can reduce the bit rate and at the same time improve the PSNR performance significantly.
机译:在差分脉冲编码调制(DPCM)类型的有损预测编码中,在预测环路中执行的量化会引起量化误差的传播,从而导致后续样本的预测有偏差。在这项工作中,我们旨在减轻量化误差对预测鲁棒性的负面影响。我们提出了一些实用的技术,用于DPCM重构中量化误差的上下文建模和估计偏差的抵消。将所得的精确估计值输入到预测中以提高编码效率。当应用于一维音频和二维图像信号时,所提出的技术可以降低比特率,同时显着提高PSNR性能。

著录项

  • 来源
  • 会议地点 Snowbird UT(US)
  • 作者

    Jiantao Zhou;

  • 作者单位

    Dept. of Electr. Comput. Eng., McMaster Univ., Hamilton, ON, Canada;

  • 会议组织
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 TP311.56;
  • 关键词

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