Soulez Ferréol, Denis Loïc, Fournier Corinne, Thiébaut Eric, Goepfert Charles
Université de Lyon, Lyon, F-69000, France; Université Lyon 1, Villeurbanne, F-69622, France.
J Opt Soc Am A Opt Image Sci Vis. 2007 Apr;24(4):1164-71. doi: 10.1364/josaa.24.001164.
We propose a microparticle localization scheme in digital holography. Most conventional digital holography methods are based on Fresnel transform and present several problems such as twin-image noise, border effects, and other effects. To avoid these difficulties, we propose an inverse-problem approach, which yields the optimal particle set that best models the observed hologram image. We resolve this global optimization problem by conventional particle detection followed by a local refinement for each particle. Results for both simulated and real digital holograms show strong improvement in the localization of the particles, particularly along the depth dimension. In our simulations, the position precision is > or =1 microm rms. Our results also show that the localization precision does not deteriorate for particles near the edge of the field of view.
我们提出了一种数字全息术中的微粒定位方案。大多数传统数字全息术方法基于菲涅耳变换,存在诸如孪生像噪声、边界效应和其他效应等若干问题。为避免这些困难,我们提出一种逆问题方法,该方法可产生最能模拟观测到的全息图图像的最优微粒集。我们通过传统的微粒检测,然后对每个微粒进行局部细化来解决这个全局优化问题。模拟数字全息图和真实数字全息图的结果均表明,微粒定位有显著改善,尤其是在深度维度上。在我们的模拟中,位置精度的均方根误差大于或等于1微米。我们的结果还表明,对于视野边缘附近的微粒,定位精度不会降低。