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Low-complexity 8-point DCT approximation based on angle similarity for image and video coding

机译:基于图像和视频编码的角度相似性的低复杂性8点DCT近似

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摘要

The principal component analysis (PCA) is widely used for data decorrelation and dimensionality reduction. However, the use of PCA may be impractical in real-time applications, or in situations were energy and computing constraints are severe. In this context, the discrete cosine transform (DCT) becomes a low-cost alternative to data decorrelation. This paper presents a method to derive computationally efficient approximations to the DCT. The proposed method aims at the minimization of the angle between the rows of the exact DCT matrix and the rows of the approximated transformation matrix. The resulting transformations matrices are orthogonal and have extremely low arithmetic complexity. Considering popular performance measures, one of the proposed transformation matrices outperforms the best competitors in both matrix error and coding capabilities. Practical applications in image and video coding demonstrate the relevance of the proposed transformation. In fact, we show that the proposed approximate DCT can outperform the exact DCT for image encoding under certain compression ratios. The proposed transform and its direct competitors are also physically realized as digital prototype circuits using FPGA technology.
机译:主要成分分析(PCA)广泛用于数据去相关性和维度降低。然而,在实时应用中使用PCA可能是不切实际的,或者在情况下是能量和计算限制严重。在这种情况下,离散余弦变换(DCT)成为数据去相关性的低成本替代品。本文介绍了将计算有效近似到DCT的方法。所提出的方法旨在最小化精确DCT矩阵的行与近似变换矩阵的行之间的角度。得到的变换矩阵是正交的并且具有极低的算术复杂度。考虑到流行的性能措施,其中一个建议的转换矩阵优于矩阵误差和编码能力中的最佳竞争对手。图像和视频编码中的实际应用展示了所提出的转化的相关性。实际上,我们表明所提出的近似DCT可以在某些压缩比下越高,用于在某些压缩比下进行图像编码的精确DCT。建议的变换及其直接竞争对手也使用FPGA技术物理地实现为数字原型电路。

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