Niu Yajun, Chang Jun, Lv Fengxiang, Shen Benlan, Chen Weilin
Appl Opt. 2017 Oct 1;56(28):7915-7920. doi: 10.1364/AO.56.007915.
Foveated imaging systems have the ability to capture local high-resolution or high-magnification images with wide field of view (FOV); thus, they have great potential for applications in the field of monitoring and remote sensing of unmanned aerial vehicles. Hence, foveated optical systems are in strong demand. However, the existing foveated imaging systems either are equipped with expensive modulators or require fixing the local high resolution imaging field, which is not suitable for mass production or object tracking in industrial applications. We propose a low-cost dynamic real-time foveated imaging system for extensive use in the listed applications. Specifically, we place a microlens behind the first intermediary image plane to modulate the local focal length, constructing a local high magnification imaging channel. One two-axis translation stage drives the microlens to scan in the plane perpendicular to the optical axis, resulting in dynamic local high magnifying imaging. Furthermore, the peripheral imaging channel and the foveated imaging channel focus on the same detector, and the post image fusion is unnecessary; the system consists of only a common aspherical lens and thus is very inexpensive. The experimental system has a focal length of 25 mm, a full FOV of 30°, and an entrance pupil diameter of 5 mm, while the local high magnifying imaging channel has a focal length of 35 mm and FOV of 15°. Experiment results show that the low-cost dynamic real-time foveated imaging system performs very well.
中央凹成像系统有能力在宽视场(FOV)下捕获局部高分辨率或高放大倍率图像;因此,它们在无人机监测和遥感领域有很大的应用潜力。因此,对中央凹光学系统有强烈需求。然而,现有的中央凹成像系统要么配备昂贵的调制器,要么需要固定局部高分辨率成像区域,这不适用于大规模生产或工业应用中的目标跟踪。我们提出一种低成本的动态实时中央凹成像系统,以便在所列应用中广泛使用。具体而言,我们在第一个中间像平面后面放置一个微透镜来调制局部焦距,构建一个局部高放大倍率成像通道。一个两轴平移台驱动微透镜在垂直于光轴的平面内扫描,从而实现动态局部高放大倍率成像。此外,周边成像通道和中央凹成像通道聚焦于同一个探测器,无需进行后期图像融合;该系统仅由一个普通非球面透镜组成,因此非常便宜。实验系统的焦距为25毫米,全视场为30°,入瞳直径为5毫米,而局部高放大倍率成像通道的焦距为35毫米,视场为15°。实验结果表明,该低成本动态实时中央凹成像系统性能良好。