Sökning: onr:"swepub:oai:DiVA.org:bth-22103" >
A Hybrid Crack Dete...
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Zhao, LunShenzhen Polytech, CHN
(författare)
A Hybrid Crack Detection Approach for Scanning Electron Microscope Image Using Deep Learning Method
- Artikel/kapitelEngelska2021
Förlag, utgivningsår, omfång ...
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Wiley-Hindawi,2021
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electronicrdacarrier
Nummerbeteckningar
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LIBRIS-ID:oai:DiVA.org:bth-22103
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https://urn.kb.se/resolve?urn=urn:nbn:se:bth-22103URI
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https://doi.org/10.1155/2021/5558668DOI
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Språk:engelska
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Sammanfattning på:engelska
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Ämneskategori:ref swepub-contenttype
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Ämneskategori:art swepub-publicationtype
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open access
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The scanning electron microscope (SEM) is widely used in the analysis and research of materials, including fracture analysis, microstructure morphology, and nanomaterial analysis. With the rapid development of materials science and computer vision technology, the level of detection technology is constantly improving. In this paper, the deep learning method is used to intelligently identify microcracks in the microscopic morphology of SEM image. A deep learning model based on image level is selected to reduce the interference of other complex microscopic topography, and a detection method with dense continuous bounding boxes suitable for SEM images is proposed. The dense and continuous bounding boxes were used to obtain the local features of the cracks and rotating the bounding boxes to reduce the feature differences between the bounding boxes. Finally, the bounding boxes with filled regression were used to highlight the microcrack detection effect. The results show that the detection accuracy of our approach reached 71.12%, and the highest mIOU reached 64.13%. Also, microcracks in different magnifications and in different backgrounds were detected successfully.
Ämnesord och genrebeteckningar
Biuppslag (personer, institutioner, konferenser, titlar ...)
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Pan, YunlongKunming Univ, CHN
(författare)
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Wang, SenKunming Univ, CHN
(författare)
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Zhang, LiangShenzhen Polytech, CHN
(författare)
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Islam, Md. Shafiqul,1984-Blekinge Tekniska Högskola,Institutionen för maskinteknik(Swepub:bth)MDM
(författare)
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Shenzhen Polytech, CHNKunming Univ, CHN
(creator_code:org_t)
Sammanhörande titlar
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Ingår i:Scanning: Wiley-Hindawi0161-04571932-8745
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