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A Proposal of Collation Method Using Nonlinear SVM for Restoration of Stone Wall in Kumamoto Castle

机译:一种使用非线性SVM进行熊本城修复石墙的整理方法的建议

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The Kumamoto Castle in Japan was disastrously damaged by the Kumamoto earthquakes in 2016. In this study, we focus on collapsed stone collation of the Kumamoto Castle. Stone wall in Kumamoto Castle is a important cultural facilities, it is required to find an accurate original position for each stone. In the previous research, contour information is used to collate the location of stones. This previous study showed that contour information was useful for stone wall collation. However, there are some problems, it was impossible to obtain complete contour information and stones with few features are difficult to identify correctly stone. Then, we were focused on the position of the fallen stones to improve the ability to find the correct original location in previous study. By using non-linear SVM that trained by fall position information, it is expected that we can narrow down collapse area of the collapsed stones compared to the previous study. The effectiveness is illustrated by numerical simulations. Moreover, we propose an stone wall collation algorithm by multimedia using fall position information in addition to contour information.
机译:日本的熊本城堡在2016年遭受熊本地震的灾难性破坏。在本研究中,我们重点研究熊本城堡的坍塌石头整理。熊本城的石墙是重要的文化设施,必须为每块石料找到准确的原始位置。在先前的研究中,轮廓信息用于整理石头的位置。先前的研究表明轮廓信息对于核对石墙很有用。但是,存在一些问题,无法获得完整的轮廓信息,并且具有很少特征的宝石难以正确识别。然后,我们专注于下落的石头的位置,以提高在以前的研究中找到正确的原始位置的能力。通过使用由跌落位置信息训练的非线性SVM,与以前的研究相比,我们可以缩小塌陷石头的塌陷区域。数值模拟说明了有效性。此外,我们提出了一种通过使用轮廓信息之外的跌倒位置信息通过多媒体实现的石墙整理算法。

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