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Multiple-point statistics using multi-resolution images

机译:使用多分辨率图像的多点统计

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Multiple-point statistics (MPS) is a simulation technique allowing to generate images that reproduce the spatial features present in a training image (TI). MPS algorithms consist in sequentially filling a simulation grid such that patterns around the simulated values come from the TI. Following this principle, joint simulations of multiple variables can be handled and complex heterogeneous fields can be generated. However, inconsistent patterns are often found in the results and some spatial features can be difficult to reproduce. In this paper, a new MPS algorithm based on a multi-resolution representation of the TI is proposed to enhance the quality of the realizations. The method consists in first building a pyramid of images from the TI by successive convolution using Gaussian-like kernels. Secondly, a MPS simulation is done at the lowest resolution level. Then, the result is expanded to the next level of resolution (one rank higher) and used as a conditioning variable for a joint MPS simulation at that level. This last step is repeated up to the initial resolution, where the final simulation is retrieved. The method is implemented in the DeeSse code based on the direct sampling algorithm. Most of the features provided by the direct sampling (conditioning to hard data, uni- or multi-variate simulation of categorical and continuous variables, scaling and rotation of the training structures) are compatible with the proposed method and the usability is maintained. Finally, various examples show that in most of the situations, combining Gaussian pyramids with MPS allows to get results of better quality and in less time compared to direct MPS simulations.
机译:多点统计(MPS)是一种模拟技术,允许生成再现训练图像(TI)中存在的空间特征的图像。 MPS算法在顺序填充模拟网格中,使得模拟值周围的图案来自TI。在这个原理之后,可以处理多变量的联合模拟,并且可以生成复杂的异构字段。然而,在结果中经常发现不一致的模式,并且一些空间特征可能难以再现。本文提出了一种基于Ti的多分辨率表示的新的MPS算法,以增强实现的质量。该方法在首先通过使用高斯的内核通过连续的卷积首先从TI构建图像的金字塔。其次,MPS模拟以最低分辨率级别完成。然后,结果将结果扩展到下一个分辨率(一个排名更高),并用作该级别的关节MPS模拟的调节变量。最后一步被重复到初始分辨率,其中检索最终仿真。该方法基于直接采样算法在Deese码中实现。直接采样提供的大多数功能(对硬数据的调理,单一或多变量的分类和连续变量的多变化模拟,训练结构的缩放和旋转)与所提出的方法兼容,并且保持可用性。最后,各种例子表明,在大多数情况下,与MPS相结合的高斯金字塔允许在与直接MPS模拟相比,在更短的时间内获得更好的质量和更短的时间的结果。

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