An Image Processing Approach for Improving the Recognition of Cluster-like Spheroidized Carbides

Wesley Huang, K. Hsu, Chia-Sui Wang, Yih-Feng Chang, Chia-Mao Yei
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引用次数: 0

Abstract

This paper was mainly applied to image identification of metallographic structure of carbon steel. Though metallographic image identification is now needed by industry, it is rarely discussed in literature due to its industrial characteristics, let alone the theory of identifying complex structures. The identification of metallographic structure of common carbon steel is mostly carried out manually, which is mainly plagued by empiricism and subjective identification. This paper intended to calculate the percentage of spheroidized carbide in metallography. However, the distribution of carbides is affected by the insufficient heating process. For example, low heating temperature or short holding time will result in carbide connection, which leads to the reduction of the accuracy rate in calculating the spheroidization rate of carbide. However, the algorithm proposed in this paper mainly strengthens the accuracy rate of carbide cutting, and the connected carbide is morphologically cut to improve the identification accuracy rate. For carbide cutting, it is carried out in two stages. First, all disconnected components are cut by using the connected components, and then morphological erosion and expansion calculus are carried out for all carbides to cut connected carbides.
一种提高簇状球化碳化物识别的图像处理方法
本文主要应用于碳钢金相组织的图像识别。虽然金相图像识别现在是工业上的需要,但由于其工业特性,文献中很少讨论,更不用说识别复杂结构的理论了。普通碳钢的金相组织鉴定多采用人工进行,主要受经验主义和主观鉴定的困扰。本文旨在计算球化碳化物在金相中的百分比。但由于加热过程不充分,影响了碳化物的分布。例如,加热温度过低或保温时间过短会导致碳化物连接,从而导致计算碳化物球化率的准确率降低。而本文提出的算法主要是加强硬质合金切割的准确率,对连接的硬质合金进行形态切割,提高识别准确率。硬质合金切削分两个阶段进行。首先用连通成分切割所有断连成分,然后对所有碳化物进行形态侵蚀和膨胀演算,切割连通碳化物。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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