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Clustering-Based, Fully Automated Mixed-Bag Jigsaw Puzzle Solving

机译:基于聚类的全自动混合袋拼图拼图解决方案

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The jig swap puzzle is a variant of the traditional jigsaw puzzle, wherein all pieces are equal-sized squares that must be placed adjacent to one another to reconstruct an original, unknown image. This paper proposes an agglomerative hierarchical clustering-based solver that can simultaneously reconstruct multiple, mixed jig swap puzzles. Our solver requires no additional information beyond an unordered input bag of puzzle pieces, and it significantly outperforms the current state of the art in terms of both the reconstructed output quality as well the number of input puzzles it supports. In addition, we define the first quality metrics specifically tailored for multi-puzzle solvers, the Enhanced Direct Accuracy Score (EDAS), the Shiftable Enhanced Direct Accuracy Score (SEDAS), and the Enhanced Neighbor Accuracy Score (ENAS).
机译:跳拼图游戏是传统拼图游戏的一种变体,其中所有棋子都是大小相等的正方形,必须彼此相邻放置才能重建原始的未知图像。本文提出了一种基于聚类层次聚类的求解器,该求解器可以同时重建多个混合夹具交换难题。除了无序输入的拼图块外,我们的求解器不需要任何其他信息,就重构的输出质量及其支持的输入拼图的数量而言,它大大优于当前的最新技术水平。此外,我们定义了专门为多难题求解器量身定制的首个质量指标,增强的直接精度得分(EDAS),可移动的增强的直接精度得分(SEDAS)和增强的邻居精度得分(ENAS)。

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