作者单位
摘要
哈尔滨工业大学电子与信息工程学院,黑龙江 哈尔滨 150001
因安全隐蔽性和衣物穿透性等特点,被动太赫兹成像已用于关键场所的人体安检。多极化成像可丰富信息维度,提升系统性能。针对极化模式难以选择和多极化图像特性尚不明确等问题,全面评估用于被动太赫兹成像检测的多极化图像质量。首先,分析人体和隐匿物品的任意极化太赫兹辐射亮温模型;然后,通过成像实验和仿真模拟获得4个线极化图像,并计算分析6个极化参数图像;接着,利用传统全局无参考评价指标对比分析多极化图像;最后,采用受试者工作特征(ROC)曲线和差异信噪比(DSNR)定量评估用于检测的局部图像质量,并通过观察者主观评价统计实验验证了若干全局和局部指标的合理性。结果表明,合理选择极化并融合多极化对提升成像检测性能具有重要意义。
太赫兹成像 被动遥感 极化 人体安检 图像评估 
激光与光电子学进展
2023, 60(18): 1811012
Author Affiliations
Abstract
Department of Microwave Engineering, Harbin Institute of Technology, Harbin 150001, China
Depth of focus (DOF) and transverse resolution define the longitudinal range and definition of the focusing lens. Although metasurface axilenses and light-sword metalenses with radial and angular modulations can elongate the DOF, these approaches have inherent limitations in being reliable only for small numerical aperture (NA) cases, which in turn compromises the transverse resolution for the given aperture dimension. To conquer this limitation, we propose and experimentally demonstrate a birefringent metalens, achieving an ultradeep DOF of 41λ in terms of the total scattered field, corresponding to a record-breaking wide NA range from 0.14 to 0.7. Meanwhile, the diffraction limited focal spot size in this NA range can guarantee acquisition of images with high resolution. A hybrid methodology is proposed that utilizes both the accuracy of holography in electromagnetic field reconstruction and the polarization multiplexing to double the DOF. A stratified transmissive meta-atom is utilized to encode a pair of independent phase profiles in two orthogonal polarization channels. Furthermore, we combine the generalized scattering matrix with the multipole expansion theory for the first time to elucidate the mechanism of maintaining high transmittance and widening the transmission phase coverage by using the multilayered structure. The proposed metalens provides a competitive platform for devising high-resolution deep DOF systems for imaging and detection applications.
Photonics Research
2021, 9(3): 03000308

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