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Sparse Bit-Allocations Based on Partial Ordering Schemes With Application to Speech and Audio Coding

机译:基于偏序方案的稀疏比特分配及其在语音和音频编码中的应用

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The majority of speech and audio encoders today operate at rates of less than 1-2 bit/input-sample. Reducing the rates even further is a challenge in particular for coders using waveform-based coding paradigms. Specifically for transform-based coders it is often the case that transform coefficients are quantized at less than 1 bit/coefficient (on average) in many areas of the spectrum. Dealing with such cases is particularly challenging when some coefficients are assumed to be independent identically distributed random variables with little underlying predictable structure. This prompts a study on how to improve encoding in such situations beyond simply increasing the dimension of quantizers, an option that may not be practical or perceptually relevant in some coder designs. This paper looks at a general class of schemes motivated by observations on statistical variations at low dimensions. These schemes, termed partial ordering schemes, show advantages objectively (in mean square error) and perceptually by targeting randomly positioned peaks in the spectrum. At low rates, such schemes create sparse bit allocations that allow for further optimization using random noise fill. A listening test is presented demonstrating the advantages of such an approach
机译:当今,大多数语音和音频编码器的工作速率均小于1-2位/输入样本。尤其对于使用基于波形的编码范例的编码器而言,进一步降低速率是一个挑战。特别是对于基于变换的编码器,通常在许多频谱区域中,变换系数的量化系数小于1位/系数(平均)。当假设某些系数是独立的,均布的,随机分布的,几乎没有可预测结构的变量时,处理此类情况尤其具有挑战性。这促使人们开始研究如何在这种情况下改善编码,而不仅仅是增加量化器的尺寸,这种选择在某些编码器设计中可能不切实际或在感知上不相关。本文着眼于对低维统计变化的观察所激发的一类通用方案。这些方案被称为偏序方案,通过以光谱中随机定位的峰为目标,在客观上(均方误差)和感知上显示了优势。在低速率下,此类方案会创建稀疏的位分配,从而允许使用随机噪声填充进行进一步优化。进行了听力测试,证明了这种方法的优势

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