TY - CHAP A1 - Pfenning, Stefan A1 - Döhring, Thorsten A1 - Möckel, Michael T1 - Einzelphotonenquellen – Schlüsselkomponenten für die Quantenwelt T2 - DGaO-Proceedings N2 - Deutschland investiert stark in Quantentechnologien und möchte seine aktuelle Vorreiterrolle in diesem Markt behaupten. Einzelphotonenquellen werden als Schlüsselkomponenten vieler Quantentechnologien dabei zukünftig große Bedeutung erlangen. Dieser Beitrag gibt als Markt- und Technologiestudie einen Überblick über diese junge Hochtechnologiebranche. KW - Einzelphotonenquellen KW - Quantentechnologie KW - Hochtechnologie KW - Einzelphotonenemission KW - Quantenphysik Y1 - 2019 UR - https://www.dgao-proceedings.de/download/120/120_p43.pdf SN - 1614-8436 VL - 2019 SP - 1 EP - 2 PB - DGaO ER - TY - CHAP A1 - Voigt, Jorrit A1 - Möckel, Michael ED - Chinesta, R. ED - Abgrall, R. ED - Allix, O. ED - Kaliske, M. T1 - Comparing principal component analysis (PCA) and 𝛃-variational autoencoder(𝛃-VAE)for anomaly detection in selective laser melting (SLM) process data T2 - 14th WCCM-ECCOMAS Congress 2020, virtual congress, January, 11-15, 2021 N2 - The usability of machine learning approaches for the development of in-situ process monitoring, automated anomaly detection and quality assurance for the selective laser melting (SLM) process receives currently increasing attention. For a given set of real machine data we compare two established methods, principal component analysis (PCA) and -variational autoencoder (-VAE), for their applicability in exploratory data analysis and anomaly detection. We introduce a PCA-based unsupervised feature extraction algorithm, which allows for root cause analysis of process anomalies. The -VAE enables a slightly more compact dimensionality reduction; we consider it an option for automated process monitoring systems. KW - Anomaly detection KW - Process monitoring KW - additive manufacturing KW - Selektives Laserschmelzen KW - Anomalie Y1 - 2021 UR - https://www.scipedia.com/public/Voigt_Moeckel_2021a U6 - https://doi.org/10.23967/wccm-eccomas.2020.144 SP - 1 EP - 9 ER - TY - JOUR A1 - Stier, Simon P. A1 - Xu, Xukuan A1 - Gold, Lukas A1 - Möckel, Michael T1 - Ontology-Based Battery Production Dataspace and Its Interweaving with Artificial Intelligence-Empowered Data Analytics JF - Energy Technology N2 - Heart disease, also known as cardiovascular disease, encompasses a variety of heart conditions that can result in sudden death for many people. Examples include high blood pressure, ischaemia, irregular heartbeats and pericardial effusion. Electrocardiogram (ECG) signal analysis is frequently used to diagnose heart diseases, providing crucial information on how the heart functions. To analyse ECG signals, quantile graphs (QGs) is a method that maps a time series into a network based on the time-series fluctuation proprieties. Here, we demonstrate that the QG methodology can differentiate younger and older patients. Furthermore, we construct networks from the QG method and use machine-learning algorithms to perform the automatic diagnosis, obtaining high accuracy. Indeed, we verify that this method can automatically detect changes in the ECG of elderly and young subjects, with the highest classification performance for the adjacency matrix with a mean area under the receiver operating characteristic curve close to one. The findings reported here confirm the QG method’s utility in deciphering intricate, nonlinear signals like those produced by patient ECGs. Furthermore, we find a more significant, more connected and lower distribution of information networks associated with the networks from ECG data of the elderly compared with younger subjects. Finally, this methodology can be applied to other ECG data related to other diseases, such as ischaemia. KW - Batterie KW - Künstliche Intelligenz Y1 - 2024 UR - https://onlinelibrary.wiley.com/doi/epdf/10.1002/ente.202301305 U6 - https://doi.org/https://doi.org/10.1002/ente.202301305 VL - 2024 IS - 2301305 SP - 1 EP - 13 ER - TY - JOUR A1 - Xu, Xukuan A1 - Donghui, Li A1 - Bi, Jinghou A1 - Möckel, Michael T1 - AutoML based workflow for design of experiments (DOE) selection and benchmarking data acquisition strategies with simulation models JF - Scientific Reports N2 - Design of experiments (DOE) is an established method to allocate resources for efficient parameter space exploration. Model based active learning (AL) data sampling strategies have shown potential for further optimization. This paper introduces a workflow for conducting DOE comparative studies using automated machine learning. Based on a practical definition of model complexity in the context of machine learning, the interplay of systematic data generation and model performance is examined considering various sources of uncertainty: this includes uncertainties caused by stochastic sampling strategies, imprecise data, suboptimal modeling, and model evaluation. Results obtained from electrical circuit models with varying complexity show that not all AL sampling strategies outperform conventional DOE strategies, depending on the available data volume, the complexity of the dataset, and data uncertainties. Trade-offs in resource allocation strategies, in particular between identical replication of data points for statistical noise reduction and broad sampling for maximum parameter space exploration, and their impact on subsequent machine learning analysis are systematically investigated. Results indicate that replication oriented strategies should not be dismissed but may prove advantageous for cases with non-negligible noise impact and intermediate resource availability. The provided workflow can be used to simulate practical experimental conditions for DOE testing and DOE selection. KW - Maschinelles Lernen Y1 - 2024 U6 - https://doi.org/https://doi.org/10.1038/s41598-024-83581-3 ER - TY - CHAP A1 - Xu, Xukuan A1 - Möckel, Michael T1 - Machine Learning Based Early Rejection of Low Performance Cells in Li Ion Battery Production T2 - CACML '24: Proceedings of the 2024 3rd Asia Conference on Algorithms, Computing and Machine Learning N2 - Lithium-ion battery cell production is conducted through a multistep production process which suffers from a notable scrap rate. Machine learning (ML) based process monitoring provides solutions to mitigate the impact of substantial scrap rates by repeated multifactorial quality predictions (virtual quality gates) along the process line. This enables an early rejection of battery cells which are unlikely to reach required specifications, avoids further waste of resources at later process steps and simplifies recycling of rejected cells. A hierarchical architecture is used to apply ML algorithms first for process-adapted feature extraction which is guided by a priori knowledge on typical production anomalies. In a second step, these features are correlated with end-of-line quality control data using explainable ML methods. The resulting predictions may lead to pass or fail of a battery cell, or -in the context of flexible production- may also trigger adjustments of later process steps to compensate for detected deficiencies. An example ML based quality control concept is illustrated for a pilot battery cell production line. KW - Maschinelles Lernen Y1 - 2024 U6 - https://doi.org/https://doi.org/10.1145/3654823.3654870 SP - 251 EP - 256 ER - TY - JOUR A1 - Pineda, Aruane M. A1 - Alves, Caroline L. A1 - Möckel, Michael A1 - de O Toutain, Thaise Graziele L A1 - Moura Porto, Joel Augusto A1 - Rodrigues, Francisco A. T1 - Analysis of quantile graphs in EGC data from elderly and young individuals using machine learning and deep learning JF - Journal of Complex Networks N2 - Heart disease, also known as cardiovascular disease, encompasses a variety of heart conditions that can result in sudden death for many people. Examples include high blood pressure, ischaemia, irregular heartbeats and pericardial effusion. Electrocardiogram (ECG) signal analysis is frequently used to diagnose heart diseases, providing crucial information on how the heart functions. To analyse ECG signals, quantile graphs (QGs) is a method that maps a time series into a network based on the time-series fluctuation proprieties. Here, we demonstrate that the QG methodology can differentiate younger and older patients. Furthermore, we construct networks from the QG method and use machine-learning algorithms to perform the automatic diagnosis, obtaining high accuracy. Indeed, we verify that this method can automatically detect changes in the ECG of elderly and young subjects, with the highest classification performance for the adjacency matrix with a mean area under the receiver operating characteristic curve close to one. The findings reported here confirm the QG method’s utility in deciphering intricate, nonlinear signals like those produced by patient ECGs. Furthermore, we find a more significant, more connected and lower distribution of information networks associated with the networks from ECG data of the elderly compared with younger subjects. Finally, this methodology can be applied to other ECG data related to other diseases, such as ischaemia. KW - Maschinelles Lernen KW - Elektrokardiogramm KW - Älterer Mensch KW - Heranwachsender Y1 - 2023 UR - https://academic.oup.com/comnet/article-abstract/11/5/cnad030/7260365?redirectedFrom=fulltext U6 - https://doi.org/https://doi.org/10.1093/comnet/cnad030 VL - 2023 IS - 11/5 SP - * EP - * ER - TY - JOUR A1 - Voigt, Jorrit A1 - Bock, Thomas A1 - Hilpert, Uwe A1 - Hellmann, Ralf A1 - Möckel, Michael T1 - Increased relative density and characteristic melt pool Signals at the edge in PBF-LB/M JF - Additive Manufacturing N2 - Limited process control can cause metallurgical defect formation and inhomogeneous relative density in laser powder bed fusion manufactured parts. This study shows that process monitoring, based on optical melt-pool signal analysis is capable of tracing relative density variations: Unsupervised machine learning, applied to cluster multiple-slice monitoring data, reveals characteristic patterns in this noisy time-series signal, which can be co-registered with geometrical positions in the build part. For cylindrical 15–5 PH stainless steel specimens, manufactured under constant process parameters and post-analyzed by µ-computer tomography, correlations between such patterns and an increased local relative density at the edge have been observed. Finite element method (FEM) modeling of thermal histories at exemplary positions close to the edge suggest pre-heating effects caused by neighboring laser scan trajectories as possible reasons for the increased melt pool intensity at the edge. KW - Maschinelles Lernen KW - Schmelze Y1 - 2022 UR - https://www.sciencedirect.com/science/article/pii/S2214860422001993?via%3Dihub U6 - https://doi.org/https://doi.org/10.1016/j.addma.2022.102798 VL - 2022 IS - 57/102798 SP - * EP - * ER - TY - CHAP A1 - Voigt, Jorrit A1 - Möckel, Michael T1 - Modelling dynamic 3D heat transfer in laser material processing based on physics informed neural networks N2 - Machine learning algorithms make predictions by fitting highly parameterized nonlinear functions to massive amounts of data. Yet those models are not necessarily consistent with physical laws and offer limited interpretability. Extending machine learning models by introducing scientific knowledge in the optimization problem is known as physics-based and data-driven modelling. A promising development are physics informed neural networks (PINN) which ensure consistency to both physical laws and measured data. The aim of this research is to model the time-dependent temperature profile in bulk materials following the passage of a moving laser focus by a PINN. The results from the PINN agree essentially with finite element simulations, proving the suitability of the approach. New perspectives for applications in laser material processing arise when PINNs are integrated in monitoring systems or used for model predictive control. KW - Neuronales Netz KW - Laserbearbeitung Y1 - 2022 UR - https://www.researchgate.net/publication/364325407_Modelling_dynamic_3D_heat_transfer_in_laser_material_processing_based_on_physics_informed_neural_networks U6 - https://doi.org/10.1051/epjconf/202226602010 ER - TY - JOUR A1 - Voigt, Jorrit A1 - Möckel, Michael T1 - Benchmarking a multi-layer approach and neural network architectures for defect detection in PBF-LB/M JF - Materials Today Communications N2 - The substitution of expensive non-destructive material testing by data-based process monitoring is intensively explored in quality assurance for additive manufactured components. Machine learning show promising results for defect detection but require conceptual adaption to layer wise manufacturing and line scanning patterns in laser powder bed fusion. A multi-layer approach to co-register µ-computer tomography measurements with process monitoring data is developed and a workflow for automatic data set generation is implemented. The objective of this research is to benchmark the volumetric multi-layer approach and specifically selected deep learning methods for defect detection. The volumetric approach shows superior results compared to single slice monitoring. All investigated structured neural network topologies deliver similar performance. KW - Neuronales Netz KW - Maschinelles Lernen KW - Fehlererkennung Y1 - 2022 UR - https://www.sciencedirect.com/science/article/pii/S2352492822017196?via%3Dihub U6 - https://doi.org/https://doi.org/10.1016/j.mtcomm.2022.104878 VL - 2022 IS - 33/104878 SP - * EP - * ER - TY - CHAP A1 - Akcatepe, Osman A1 - Möckel, Michael T1 - Hybrid Physics-Inspired Machine Learning Framework for Predictive Maintenance of Forklift Chains: Leveraging Sensor Data Characteristics N2 - Bridging the gap between physics-based modeling and data-driven machine learning promises to reduce the amount of training data required and to improve explainability in predictive maintenance applications. For a small fleet of industrial forklift trucks, we develop a physically inspired framework for predicting remaining useful life (RUL) for selected components by integrating physically motivated feature extraction, degradation modelling and machine learning. The discussed approach is promising for situations of limited data availability or large data heterogeneity, which often occurs in fleets of customized vehicles optimized for particular tasks. KW - Maschinelles Lernen KW - Gabelstapler Y1 - 2023 UR - https://ieeexplore.ieee.org/abstract/document/10375057/authors#authors U6 - https://doi.org/10.1109/ICCMA59762.2023.10375057 ER - TY - JOUR A1 - Alves, Caroline L. A1 - Rodrigues, Francisco A. A1 - Sallum, Loriz Francisco A1 - Toutain, Thaise A1 - Porto, Joel A1 - Aguiar, Patricia A1 - Thielemann, Christiane A1 - Möckel, Michael T1 - Multiclass classification of Autism Spectrum Disorder, attention deficit hyperactivity disorder, and typically developed individuals using fMRI functional connectivity analysis JF - plos one N2 - Neurodevelopmental conditions, such as Autism Spectrum Disorder (ASD) and Attention Deficit Hyperactivity Disorder (ADHD), present unique challenges due to overlapping symptoms, making an accurate diagnosis and targeted intervention difficult. Our study employs advanced machine learning techniques to analyze functional magnetic resonance imaging (fMRI) data from individuals with ASD, ADHD, and typically developed (TD) controls, totaling 120 subjects in the study. Leveraging multiclass classification (ML) algorithms, we achieve superior accuracy in distinguishing between ASD, ADHD, and TD groups, surpassing existing benchmarks with an area under the ROC curve near 98%. Our analysis reveals distinct neural signatures associated with ASD and ADHD: individuals with ADHD exhibit altered connectivity patterns of regions involved in attention and impulse control, whereas those with ASD show disruptions in brain regions critical for social and cognitive functions. The observed connectivity patterns, on which the ML c KW - Aufmerksamkeitsdefizit-Syndrom KW - Autismus KW - Funktionelle Kernspintomografie Y1 - 2024 UR - https://journals.plos.org/plosone/article?id=10.1371/journal.pone.0305630 U6 - https://doi.org/https://doi.org/10.1371/journal.pone.0305630 VL - 2024 IS - 19(10) SP - 1 EP - 35 ER -