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Intelligent system for prediction of mechanical properties of material based on metallographic images

机译:基于金相图像的材料力学性能智能预测系统

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This article presents developed intelligent system for prediction of mechanical properties of material based on metallographic images. The system is composed of two modules. The first module of the system is an algorithm for features extraction from metallographic images. The first algorithm reads metallographic image, which was obtained by microscope, followed by image features extraction with developed algorithm and in the end algorithm calculates proportions of the material microstructure. In this research we need to determine proportions of graphite, ferrite and ausferrite from metallographic images as accurately as possible. The second module of the developed system is a system for prediction of mechanical properties of material. Prediction of mechanical properties of material was performed by feed-forward artificial neural network. As inputs into artificial neural network calculated proportions of graphite, ferrite and ausferrite were used, as targets for training mechanical properties of material were used. Training of artificial neural network was performed on quite small database, but with parameters changing we succeeded. Artificial neural network learned to such extent that the error was acceptable. With the oriented neural network we successfully predicted mechanical properties for excluded sample.
机译:本文介绍了一种基于金相图像预测材料力学性能的智能系统。该系统由两个模块组成。系统的第一个模块是用于从金相图像中提取特征的算法。第一种算法读取通过显微镜获得的金相图像,然后使用改进的算法提取图像特征,最后通过算法来计算材料微观结构的比例。在这项研究中,我们需要从金相图像中尽可能准确地确定石墨,铁素体和奥氏体的比例。所开发系统的第二个模块是用于预测材料机械性能的系统。通过前馈人工神经网络进行材料力学性能的预测。作为人工神经网络的输入,使用了石墨,铁氧体和奥氏体的比例,并以此作为训练材料力学性能的目标。人工神经网络的训练是在很小的数据库上进行的,但是随着参数的更改,我们成功了。人工神经网络了解到误差可以接受的程度。通过定向神经网络,我们成功地预测了排除样品的机械性能。

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