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Considerations for the extension of coherent optical processors into the quantum computing regime

机译:将相干光处理器扩展到量子计算体系中的注意事项

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Previously we have examined the similarities of the quantum Fourier transform to the classical coherent optical implementation of the Fourier transform (R. Young et al, Proc SPIE Vol 87480, 874806-1, -11). In this paper, we further consider how superposition states can be generated on coherent optical wave fronts, potentially allowing coherent optical processing hardware architectures to be extended into the quantum computing regime. In particular, we propose placing the pixels of a Spatial Light Modulator (SLM) individually in a binary superposition state and illuminating them with a coherent wave front from a conventional (but low intensity) laser source in order to make a so-called 'interaction free' measurement. In this way, the quantum object, i.e. the individual pixels of the SLM in their superposition states, and the illuminating wavefront would become entangled. We show that if this were possible, it would allow the extension of coherent processing architectures into the quantum computing regime and we give an example of such a processor configured to recover one of a known set of images encrypted using the well-known coherent optical processing technique of employing a random Fourier plane phase encryption mask which classically requires knowledge of the corresponding phase conjugate key to decrypt the image. A quantum optical computer would allow interrogation of all possible phase masks in parallel and so immediate decryption.
机译:以前,我们已经研究了量子傅立叶变换与傅立叶变换的经典相干光学实现方式的相似性(R. Young等人,Proc SPIE Vol 87480,874806-1,-11)。在本文中,我们进一步考虑如何在相干光波阵面上生成叠加状态,从而有可能使相干光处理硬件体系结构扩展到量子计算方案中。特别是,我们建议将空间光调制器(SLM)的像素分别设置为二进制叠加状态,并使用来自常规(但低强度)激光源的相干波阵面照射它们,以进行所谓的“交互作用”。免费测量。这样,量子物体,即处于其叠加状态的SLM的各个像素,和照明波前将变得纠缠。我们展示了如果可能的话,它将允许将相干处理体系结构扩展到量子计算方案中,并且给出了这样一个处理器的示例,该处理器配置为恢复使用众所周知的相干光学处理加密的一组已知图像中的一个一种采用随机傅里叶平面相位加密掩码的技术,该技术通常需要了解相应的相位共轭密钥来解密图像。量子光学计算机将允许并行查询所有可能的相位掩码,从而立即解密。

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