用深度学习实现太赫兹超衍射极限成像,仅需1.56%采样率
Deep Learning Empowered Sub-Diffraction Terahertz Backpropagation Single-Pixel Imaging
- 无训练神经网络结合物理模型迭代重建图像
- 采样率仅1.5625%即达118μm分辨率(约λ₀/7)
- 无需超薄调制器,适合太赫兹显微成像应用
太赫兹单像素成像(THz SPI)因其克服太赫兹焦平面阵列挑战的潜力备受关注。然而,太赫兹波固有的长波长限制了成像分辨率,实现亚波长分辨率需严苛实验条件和耗时过程。本文提出一种亚衍射太赫兹反向传播单像素成像技术。使用连续波0.36 THz辐射(λ₀ = 833.3 μm)照射物体,透射太赫兹波经500 μm厚硅片上的预设图案调制后,由远场单像素探测器记录。一个未训练的神经网络在物理成像过程约束下迭代重构图像,采样率低至1.5625%,显著缩短采样时间。为抑制太赫兹衍射效应,将太赫兹物理传播模型嵌入网络输出层,实现从近场到远场的反向传播成像。值得注意的是,利用无法完全记录太赫兹倏逝场的厚硅片,通过反向传播成像实现了118 μm的空间分辨率(约λ₀/7),从而避免了对超薄光调制器的需求。该方法为推进太赫兹显微成像及其他逆问题成像提供了高效解决方案。
原文摘要 · Abstract (English)
Terahertz single-pixel imaging (THz SPI) has garnered widespread attention for its potential to overcome challenges associated with THz focal plane arrays. However, the inherently long wavelength of THz waves limits imaging resolution, while achieving subwavelength resolution requires harsh experimental conditions and time-consuming processes. Here, we propose a sub-diffraction THz backpropagation SPI technique. We illuminate the object with continuous-wave 0.36-THz radiation (λ0 = 833.3 μm). The transmitted THz wave is modulated by prearranged patterns generated on a 500-μm-thick silicon wafer and subsequently recorded by a far-field single-pixel detector. An untrained neural network constrained with the physical SPI process iteratively reconstructs the THz images with an ultralow sampling ratio of 1.5625%, significantly reducing the long sampling times. To further suppress the THz diffraction-field effects, a backpropagation SPI from near field to far field is implemented by integrating with a THz physical propagation model into the output layer of the network. Notably, using the thick wafer where THz evanescent field cannot be fully recorded, we achieve a spatial resolution of 118 μm (~λ0/7) through backpropagation SPI, thus eliminating the need for ultrathin photomodulators. This approach provides an efficient solution for advancing THz microscopic imaging and addressing other inverse imaging challenges.
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