Liu Chao, Man Tianlong, Wan Yuhong
Appl Opt. 2022 Jan 20;61(3):661-668. doi: 10.1364/AO.444783.
Motivated by the key role of point spread function in an imaging system, we propose an interferenceless coded aperture correlation holographic (I-COACH) technology with low speckle and high energy efficiency annular sparse coded phase mask (CPM) as system pupil to improve imaging performance. In the proposed method, a modified Gerchberg-Saxton (GS) algorithm is proposed to obtain a low speckle and high energy efficiency annular sparse CPM and to suppress speckle and increase the intensity of the holograms. Therefore, the randomly distributed amplitude in the bandwidth of the GS algorithm is replaced by the annular amplitude to determine the spatial position, and the band-limited random phase and quadratic phase are used as the initial phase to approximately meet band-limited conditions; meanwhile, in the iterative process of the algorithm, appropriate constraints are imposed on the information within and outside the band limit. All are used for obtaining the CPM with low speckle and high energy efficiency. Therefore, the proposed technique here is coined as low speckle I-COACH owing to the characteristics of CPM and imaging performances. The experimental results show that, under the same experimental conditions, the proposed method can obtain holograms with low speckle and intensity enhancement of about 8%, and further improve the quality of reconstructed images due to the improvement signal-to-noise ratio (SNR) of the holograms. The proposed method provides a powerful reference method for further expanding the I-COACH system to the field of low-intensity optical signals detection and imaging.
受点扩散函数在成像系统中的关键作用启发,我们提出了一种无干涉编码孔径相关全息(I-COACH)技术,该技术采用低散斑且高能效的环形稀疏编码相位掩模(CPM)作为系统光瞳,以提高成像性能。在所提出的方法中,提出了一种改进的格尔奇贝格-萨克斯顿(GS)算法,用于获得低散斑且高能效的环形稀疏CPM,并抑制散斑并提高全息图的强度。因此,将GS算法带宽内随机分布的幅度替换为环形幅度来确定空间位置,并将带限随机相位和二次相位用作初始相位以近似满足带限条件;同时,在算法的迭代过程中,对带限内外的信息施加适当的约束。所有这些都用于获得低散斑且高能效的CPM。因此,鉴于CPM的特性和成像性能,这里提出的技术被称为低散斑I-COACH。实验结果表明,在相同实验条件下,所提出的方法可以获得低散斑且强度增强约8%的全息图,并且由于全息图的信噪比(SNR)提高,进一步提高了重建图像的质量。所提出的方法为将I-COACH系统进一步扩展到低强度光信号检测和成像领域提供了有力的参考方法。