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Neural network-based non-linear A/D conversion

机译:基于神经网络的非线性A / D转换

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This work describes how feed-forward Artificial Neural Networks (ANNs) can perform Analog-to-Digital (A/D) conversion with a linear and non-linear relationship between the analog input and the digital output in order to eliminate the linearization stage without modifying the analog-to-digital converter's elements and architecture. Adding to that, the speed of this A/D converter will not be reduced due to the unchanged conversion algorithm. Simulation for two types of non-linear input has been performed. The results are discussed and a future work is presented.
机译:这项工作描述了前馈人工神经网络(ANNS)如何使用模拟输入和数字输出之间的线性和非线性关系执行模数转换(A / D)转换,以便在没有的情况下消除线性化阶段修改模数转换器的元素和架构。另外,由于不变的转换算法,该A / D转换器的速度不会降低。已经执行了两种类型的非线性输入的仿真。讨论了结果,并提出了未来的工作。

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