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Improved Low-Complexity Algorithm for 2-D Integer Lifting-Based Discrete Wavelet Transform Using Symmetric Mask-Based Scheme

机译:基于对称掩码方案的二维整数提升基于离散小波变换的改进低复杂度算法

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Wavelet coding performs better than discrete cosine transform in visual processing. Moreover, it is scalable, which is important for modern video standards. The transpose memory requirement and operation speed are the two major concerns in 2-D lifting-based discrete wavelet transform (LDWT) implementation. This letter presents a novel algorithm, called 2-D symmetric mask-based discrete wavelet transform (SMDWT), to improve the critical issue of the 2-D LDWT, and then obtains the benefit of low-latency reduced complexity, and low transpose memory. The SMDWT also has the advantages of reduced complexity, regular signal coding, short critical path, reduced latency time, and independent subband coding processing. Furthermore, the 2-D LDWT performance can also be easily improved by exploiting an appropriate parallel method inherent to SMDWT. The proposed method has a significantly better lifting-based latency and complexity in 2-D DWT than normal 2-D 5/3 integer LDWT without degradation in image quality. The algorithm can be applied to real-time image/video applications.
机译:在视觉处理中,小波编码的性能优于离散余弦变换。此外,它具有可伸缩性,这对于现代视频标准很重要。转置内存需求和操作速度是基于二维提升的离散小波变换(LDWT)实现中的两个主要问题。这封信提出了一种新颖的算法,称为2-D基于对称掩码的离散小波变换(SMDWT),用于改进2-D LDWT的关键问题,从而获得了低延迟,降低复杂度和低转置内存的优势。 SMDWT还具有降低复杂度,规则信号编码,短关键路径,减少等待时间和独立子带编码处理的优点。此外,通过利用SMDWT固有的适当并行方法,还可以轻松地提高二维LDWT的性能。与普通的2-D 5/3整数LDWT相比,所提出的方法在2-D DWT中具有显着更好的基于提升的延迟和复杂性,而不会降低图像质量。该算法可以应用于实时图像/视频应用。

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