Pulse-Code Modulation to Voice Conversion - Binary Rate Multiplier Differential Pulse-Code-Modulation Decoder

C. Weller
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引用次数: 1

Abstract

An experimental and computer investigation of a 9-bit, 16-MHz binary rate multiplier (BRM) used in converting digital signals differential pulse-code modulation (DPCM) to analog signals (voice) is reported in this paper. The physical electronic circuitry was provided with a stream of real-time digital samples at a 32-kHz rate from a magnetic tape which had been generated by a computer simulation. The output power spectrum of the electronic circuit was observed and compared to that of the computer calculation. Before exciting the experimental circuit with the digital samples the circuit noise in absence of signal was measured at - 11 decibels above a reference noise using a C message weighting filter (dBrnC0). Three different input signals were used to probe the BRM. Two consisted of single sine waves at various levels and in one test ten arbitrary phase superimposed sine waves were used to simulate white noise. Experimental and theoretical results are in good agreement and together demonstrate that the BRM approach is a viable technique for digital-to-analog (D/A) conversion.
脉冲编码调制到语音转换-二进制速率乘法器差分脉冲编码调制解码器
本文报道了一种用于将数字信号差分脉冲编码调制(DPCM)转换为模拟信号(语音)的9位、16 mhz二进制倍率乘法器(BRM)的实验和计算机研究。物理电子电路以32千赫的速率从计算机模拟产生的磁带中获得实时数字样本流。观察了电子电路的输出功率谱,并与计算机计算结果进行了比较。在用数字样本激励实验电路之前,使用C消息加权滤波器(dBrnC0)测量了没有信号的电路噪声,比参考噪声高- 11分贝。三种不同的输入信号被用来探测BRM。两个测试由不同电平的单个正弦波组成,在一个测试中使用十个任意相位的叠加正弦波来模拟白噪声。实验和理论结果吻合良好,共同证明了BRM方法是一种可行的数字模拟(D/ a)转换技术。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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