Han Yuting, Shen Honghai, Yuan Fang, Ma Tianxiang, Dai Pengzhang, Sun Yang, Chu Hairong
State Key Laboratory of Dynamic Optical Imaging and Measurement, Changchun Institute of Optics, Fine Mechanics and Physics, Chinese Academy of Sciences, Changchun 130033, China.
University of Chinese Academy of Sciences, Beijing 100039, China.
Sensors (Basel). 2024 Mar 21;24(6):2002. doi: 10.3390/s24062002.
Imaging using scattering media is a very important yet challenging technology. As one of the most widely used scattering imaging methods, speckle autocorrelation technology has important applications in several fields. However, traditional speckle autocorrelation imaging methods usually use iterative phase recovery algorithms to obtain the Fourier phase of hidden objects, posing issues such as large data calculation volumes and uncertain reconstruction results. Here, we propose a single-shot scattering imaging method based on the bispectrum truncation method. The bispectrum analysis is utilized for hidden object phase recovery, the truncation method is used to avoid the computation of redundant data when calculating the bispectrum data, and the method is experimentally verified. The experimental results show that our method does not require uncertain iterative calculations and can reduce the bispectrum data computation by more than 80% by adjusting the truncation factor without damaging the imaging quality, which greatly improves imaging efficiency. This method paves the way for rapid imaging through scattering media and brings benefits for imaging in dynamic situations.
利用散射介质进行成像,是一项非常重要但具有挑战性的技术。作为应用最广泛的散射成像方法之一,散斑自相关技术在多个领域有着重要应用。然而,传统的散斑自相关成像方法通常采用迭代相位恢复算法来获取隐藏物体的傅里叶相位,存在数据计算量大、重建结果不确定等问题。在此,我们提出一种基于双谱截断法的单次散射成像方法。利用双谱分析进行隐藏物体相位恢复,采用截断法避免在计算双谱数据时冗余数据的计算,并通过实验对该方法进行了验证。实验结果表明,我们的方法无需进行不确定的迭代计算,通过调整截断因子可将双谱数据计算量减少80%以上,且不损害成像质量,大大提高了成像效率。该方法为通过散射介质进行快速成像铺平了道路,并为动态场景成像带来便利。