首页> 外文期刊>Nuclear Instruments & Methods in Physics Research. Section A, Accelerators, Spectrometers, Detectors and Associated Equipment >Sparsity-based shrinkage approach for practicability improvement of H-LBP-based edge extraction
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Sparsity-based shrinkage approach for practicability improvement of H-LBP-based edge extraction

机译:基于稀疏性的收缩方法用于基于H-LBP的边缘提取的实用性改进

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摘要

The local binary pattern with H function (H-LBP) technique enables fast and efficient edge extraction in digital radiography. In this paper, we reformulate the model of H-LBP and propose a novel sparsity-based shrinkage approach, in which the threshold can be adapted to the data sparsity. Using this model, we upgrade fast H-LBP framework and apply it to real digital radiography. The experiments show that the method improved using the new shrinkage approach can avoid elaborately artificial modulation of parameters and possess greater robustness in edge extraction compared with the other current methods without increasing processing time.
机译:具有H函数(H-LBP)技术的局部二进制模式可在数字射线照相术中实现快速有效的边缘提取。在本文中,我们重新制定了H-LBP模型,并提出了一种新的基于稀疏性的收缩方法,其中阈值可以适应数据稀疏性。使用此模型,我们升级了快速的H-LBP框架并将其应用于实际的数字X射线照相术。实验表明,与现有的其他方法相比,使用新的收缩方法改进的方法可以避免复杂的参数调制,并且在边缘提取方面具有更大的鲁棒性,而不会增加处理时间。

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