论文标题
基于双向编码模式的绝对相测量方法
Absolute phase measurement method based on bidirectional coding patterns
论文作者
论文摘要
楼梯相编码模式已被广泛用于确定以3D形状测量的包裹相位拆开的边缘顺序。尽管特殊的编码序列算法可以通过大量代码字可以实现,但它需要当前的代码字及其相邻的代码字,以共同确定附带顺序。如果错误地识别了分组相邻的代码字的任何代码字,则将导致虚假的附带顺序。因此,显着增加代码字数量是一项挑战。当有必要同时测量两个以上具有较大尺寸差异的孤立对象时,如果条纹频率很高,则较小对象上的条纹数量太少,无法确定条纹订单。另一方面,如果条纹频率较低,则图像不能同时包含所有隔离对象。为了解决这个问题,我们提出了一种基于双向编码模式的绝对相测量方法。对象的包裹相是通过fou阶段相移模式获得的,并通过两个双向编码模式获得边缘顺序。在编码双向模式时,我们沿水平方向将两组的楼梯相编码不同,分别代表局部边缘订单信息和分区信息,然后,我们交替地沿着垂直方向重复了两组楼梯相,以在整个模式中获得双向编码模式。每个本地附带订单信息和小区域中的相应分区信息共同确定包装阶段每个位置的附带顺序。为了验证我们方法的有效性,我们进行了模拟和三个实验。仿真和实验结果表明,我们的方法对具有不同大小的复杂表面和孤立的对象有效。
The stair phase coding patterns have been widely used to determine the fringe order for phase unwrapping of the wrapped phase in 3D shape measurement. Although the special coding sequence algorithm can achieve with a large number of codewords, it needs current codeword and its adjacent codewords to jointly determine the fringe order. If any codeword of the grouped adjacent codewords is incorrectly recognized, it will result in false fringe order.Therefore, it is challenging to significantly increase the number of codewords. When it is necessary to simultaneously measure more than two isolated objects with large size differences, if the fringe frequency is high, the number of fringes on the smaller objects is too few to determine the fringe orders. On the other hand, if the fringe frequency is low, the image can not contain all isolated objects at the same time. To solve this problem, we propose an absolute phase measurement method based on bidirectional coding patterns. The wrapped phase of the object is obtained by fou step phase shifting patterns, and the fringe orders is obtained by two bidirectional coded patterns. When coding the bidirectional patterns, we code two groups of stair phase with different frequency along horizontal direction, which respectively represent local fringe order information and partition information, then, we alternately repeated the two groups of stair phase along the vertical direction to obtain the bidirectional coding patterns in the whole pattern. Each local fringe order information and the corresponding partition information in small region jointly determine the fringe order of each position in the wrapped phase. To verify the effectiveness of our method, we did simulations and three experiments. Simulation and experimental results show that our method is effective for complex surfaces and isolated objects with different sizes.