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<dc:title>Glass-box modeling for quality assessment of resistance spot welding joints in industrial applications</dc:title>
<dc:creator>Santos Martín, José Ignacio</dc:creator>
<dc:creator>Martín, Óscar</dc:creator>
<dc:creator>Ahedo García, Virginia</dc:creator>
<dc:creator>Tiedra, Pilar de</dc:creator>
<dc:creator>Galán Ordax, José Manuel</dc:creator>
<dc:subject>Explainable boosting machine</dc:subject>
<dc:subject>Pattern recognition</dc:subject>
<dc:subject>Quality assessment</dc:subject>
<dc:subject>Resistance spot welding</dc:subject>
<dc:subject>AISI 304 austenitic stainless steel</dc:subject>
<dc:subject>Tensile shear load bearing capacity</dc:subject>
<dc:description>Resistance spot welding (RSW) is one of the most relevant industrial processes in diferent sectors. Key issues in RSW are&#xd;
process control and ex-ante and ex-post evaluation of the quality level of RSW joints. Multiple-input–single-output methods&#xd;
are commonly used to create predictive models of the process from the welding parameters. However, until now, the choice&#xd;
of a particular model has typically involved a tradeof between accuracy and interpretability. In this work, such dichotomy&#xd;
is overcome by using the explainable boosting machine algorithm, which obtains accuracy levels in both classifcation and&#xd;
prediction of the welded joint tensile shear load bearing capacity statistically as good or even better than the best algorithms&#xd;
in the literature, while maintaining high levels of interpretability. These characteristics allow (i) a simple diagnosis of the&#xd;
overall behavior of the process, and, for each individual prediction, (ii) the attribution to each of the control variables—and/&#xd;
or to their potential interactions—of the result obtained. These distinctive characteristics have important implications for&#xd;
the optimization and control of welding processes, establishing the explainable boosting machine as one of the reference&#xd;
algorithms for their modeling.</dc:description>
<dc:date>2023-02-06T12:39:01Z</dc:date>
<dc:date>2023-02-06T12:39:01Z</dc:date>
<dc:date>2022-11</dc:date>
<dc:type>info:eu-repo/semantics/article</dc:type>
<dc:identifier>0268-3768</dc:identifier>
<dc:identifier>http://hdl.handle.net/10259/7401</dc:identifier>
<dc:identifier>10.1007/s00170-022-10444-4</dc:identifier>
<dc:identifier>1433-3015</dc:identifier>
<dc:language>eng</dc:language>
<dc:relation>The International Journal of Advanced Manufacturing Technology. 2022, V. 123, n. 11-12, p. 4077-4092</dc:relation>
<dc:relation>https://doi.org/10.1007/s00170-022-10444-4</dc:relation>
<dc:relation>info:eu-repo/grantAgreement/AEI/Plan Estatal de Investigación Científica y Técnica y de Innovación 2017-2020/RED2018‐102518‐T/ES/SISTEMAS COMPLEJOS SOCIOTECNOLOGICOS/</dc:relation>
<dc:relation>info:eu-repo/grantAgreement/AEI/Plan Estatal de Investigación Científica y Técnica y de Innovación 2017-2020/PID2020-118906GB-I00/ES/INTERACCIONES DINAMICAS DISTRIBUIDAS: PROTOCOLOS  BEST EXPERIENCED PAYOFF  Y SEPARACION ENDOGENA/</dc:relation>
<dc:relation>info:eu-repo/grantAgreement/Fundación Bancaria Caixa d'Estalvis i Pensions de Barcelona//2020%2F00062%2F001/</dc:relation>
<dc:rights>http://creativecommons.org/licenses/by/4.0/</dc:rights>
<dc:rights>info:eu-repo/semantics/openAccess</dc:rights>
<dc:rights>Atribución 4.0 Internacional</dc:rights>
<dc:publisher>Springer Nature</dc:publisher>
</ow:Publication>
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