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Error-Resilient Analog Image Storage and Compression with Analog-Valued RRAM Arrays: An Adaptive Joint Source-Channel Coding Approach

机译:具有模拟值RRAM阵列的抗错模拟图像存储和压缩:一种自适应联合源通道编码方法

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We demonstrate by experiment an image storage and compression task by directly storing analog image data onto an analog-valued RRAM array. A joint source-channel coding algorithm is developed with a neural network to encode and retrieve natural images. The encoder and decoder adapt jointly to the statistics of the images and the statistics of the RRAM array in order to minimize distortion. This adaptive joint source-channel coding method is resilient to RRAM array non-idealities such as cycle-to-cycle and device-to-device variations, time-dependent variability, and non-functional storage cells, while achieving a reasonable reconstruction performance of ~ 20 dB using only 0.1 devices/pixel for the analog image.
机译:我们通过将模拟图像数据直接存储到模拟值RRAM阵列上,通过实验图像存储和压缩任务来证明。用神经网络开发联合源通道编码算法以进行编码和检索自然图像。编码器和解码器共同适应图像的统计和RRAM阵列的统计信息,以便最小化失真。这种自适应联合源通道编码方法对RRAM阵列非理想,诸如循环到循环和设备到设备变化,时间依赖性可变性和非功能存储单元,同时实现了合理的重建性能〜20 dB使用仅为模拟图像的0.1个设备/像素。

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