基于统计转换的压缩音频感知驱动可扩展MDCT增强

D. Cantzos, A. Mouchtaris, C. Kyriakakis
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引用次数: 1

摘要

许多在变换域中运行的最先进的音频编解码器通过允许选择性地减去比特(通常根据全比特率数据流的非感知标准)作为核心功能提供可扩展性。这项工作提出了一种不同的,甚至是相反的可扩展性方法,在这种方法中,可扩展的编解码器可以选择性地向低比特率数据流添加具有感知意义的比特。本文提出的可扩展增强算法在改进离散余弦变换域运行,这在感知音频变换编码器中很流行,但它在其他领域的扩展是直接的。通过利用现有的低比特率基础层的信息,该算法根据心理声学模型向数据流中添加感知上重要的数据,并以通常编码或传输相同质量的整个音频片段所需的比特率的一小部分提高音频质量。这种方法可以应用于压缩音频网络的分组重传方案和远程音频增强。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Perceptually-Driven Scalable MDCT Enhancement of Compressed Audio Based on Statistical Conversion
Many state-of-the-art audio codecs operating in a transform domain provide scalability as a core function by allowing to selectively subtract bits -- usually according to a nonperceptual criterion from the full bit rate data stream. This work presents a different, or even reverse, scalability approach in which a scalable codec can selectively add perceptually significant bits to a low bit rate data stream. The scalable enhancement algorithm presented here operates in the Modified Discrete Cosine Transform domain, which is popular among perceptual audio transform encoders, but its extension on other domains is straightforward. By exploiting the information of an existing low bit rate base layer, the algorithm adds perceptually significant data to the data stream according to a psycho acoustic model, and improves the audio quality at a fraction of the bit rate that would normally be required for the encoding or transmission of the whole audio piece of the same quality. Applications of this can be found in packet retransmission schemes of compressed audio networks and in remote audio enhancement.
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