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Boosted Stable Path for Staff-Line Detection Using Order Statistic Downscaling and Coarse-to-Fine Technique

机译:使用阶跃统计缩小法和粗到精技术提高了员工线检测的稳定路径

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摘要

Staff-line detection is the key component in any Optical Music Recognition (OMR) system. The state-of-the-art Stable Path method has the powerful capability on skewed and distorted music sheets. However, the naive cost function calculation and graph-traversing for shortest paths is time consuming. In this paper we present a novel method to overcome this challenge. A coarse-to-fine technique is applied for accelerating the speed of staff-line detection. First, coarse-level staff-line detection is performed on a 2D order-statistic-based scaled binary image to estimate staff-line positions. Second, we estimate staff-line boundaries by interpolation and translation of coarse detection results. Finally, fine-level staff-line detection is applied for refining the result from the first step. Experiments show that our Boosted Stable Path technique can impressively speed-up the naive method, hence a user-friendly mobile OMR application is possible.
机译:员工线检测是任何光学音乐识别(OMR)系统中的关键组件。最先进的“稳定路径”方法在偏斜和失真的乐谱上具有强大的功能。然而,最短路径的朴素成本函数计算和图形遍历非常耗时。在本文中,我们提出了一种新颖的方法来克服这一挑战。应用从粗到精的技术来加快人员线检测的速度。首先,对基于2D订单统计量的缩放二进制图像执行粗略的人员线检测,以估计人员线位置。其次,我们通过对粗略检测结果进行插值和转换来估计人员线边界。最后,应用细线人员线检测来完善第一步的结果。实验表明,我们的Boosted Stable Path技术可以显着加快天真的方法的速度,因此可以实现用户友好的移动OMR应用程序。

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