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Advanced Steel Microstructural Classification by Deep Learning Methods

journal contribution
posted on 2023-11-29, 18:07 authored by Seyedmajid Azimi, Dominik Britz, Michael Engstler, Mario FritzMario Fritz, Frank Mücklich
The inner structure of a material is called microstructure. It stores the genesis of a material and determines all its physical and chemical properties. While microstructural characterization is widely spread and well known, the microstructural classification is mostly done manually by human experts, which gives rise to uncertainties due to subjectivity. Since the microstructure could be a combination of different phases or constituents with complex substructures its automatic classification is very challenging and only a few prior studies exist. Prior works focused on designed and engineered features by experts and classified microstructures separately from the feature extraction step. Recently, Deep Learning methods have shown strong performance in vision applications by learning the features from data together with the classification step. In this work, we propose a Deep Learning method for microstructural classification in the examples of certain microstructural constituents of low carbon steel. This novel method employs pixel-wise segmentation via Fully Convolutional Neural Network (FCNN) accompanied by a max-voting scheme. Our system achieves 93.94% classification accuracy, drastically outperforming the state-of-the-art method of 48.89% accuracy. Beyond the strong performance of our method, this line of research offers a more robust and first of all objective way for the difficult task of steel quality appreciation.

History

Preferred Citation

Seyedmajid Azimi, Dominik Britz, Michael Engstler, Mario Fritz and Frank Mücklich. Advanced Steel Microstructural Classification by Deep Learning Methods. In: Scientific Reports. 2018.

Primary Research Area

  • Trustworthy Information Processing

Legacy Posted Date

2018-07-02

Journal

Scientific Reports

Open Access Type

  • Gold

Sub Type

  • Article

BibTeX

@article{cispa_all_2605, title = "Advanced Steel Microstructural Classification by Deep Learning Methods", author = "Azimi, Seyedmajid and Britz, Dominik and Engstler, Michael and Fritz, Mario and Mücklich, Frank", journal="{Scientific Reports}", year="2018", }

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