Dortmund 2021 –
            
              wissenschaftliches Programm
            
          
        
        
        
        
        
      
      
  
    
  
  AKPIK 2: AKPIK II: Deep Learning
  Mittwoch, 17. März 2021, 16:00–18:15, AKPIKa
  
    
  
  
    
      
        
          
            
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          16:00 | 
          AKPIK 2.1 | 
          
            
            
              
                Demonstrating learned tree reconstruction with graph neural networks — James Kahn, Oskar Taubert, •Ilias Tsaklidis, Markus Götz, Giulio Dujany, Tobias Boeckh, Florian Bernlochner, Pablo Goldenzweig, Isabelle Ripp-Baudot, Lea Reuter, and Arthur Thaller for the Belle II collaboration
              
            
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          16:15 | 
          AKPIK 2.2 | 
          
            
            
              
                Deep Learning Based Analysis Approaches in Radio Interferometry — •Kevin Schmidt, Felix Geyer, Stefan Fröse, and Paul-Simon Blomenkamp
              
            
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          16:30 | 
          AKPIK 2.3 | 
          
            
            
              
                Deep Learning based Likelihood Reconstruction of IACT Events — •Noah Biederbeck
              
            
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          16:45 | 
          AKPIK 2.4 | 
          
            
            
              
                Boosting the performance of the neural network using symmetry properties for the prediction of the shower maximum using the water Cherenkov Detectors of the Pierre Auger Observatory as an example — Darko Veberic, David Schmidt, Markus Roth, •Steffen Hahn, Ralph Engel, and Brian Wundheiler for the Pierre Auger collaboration
              
            
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          17:00 | 
          AKPIK 2.5 | 
          
            
            
              
                Belle II pixeldetector cluster analyses using neural network algorithms — •Stephanie Käs, Jens Sören Lange, Katharina Dort, Marvin Peter, Irina Heinz, Johannes Bilk, Peter Lehnhardt, and Johannes Budak
              
            
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          17:15 | 
          AKPIK 2.6 | 
          
            
            
              
                Event reconstruction in JUNO-TAO using Deep Learning — •Vidhya Thara Hariharan
              
            
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          17:30 | 
          AKPIK 2.7 | 
          
            
            
              
                Kinematic Analysis of Radio Jets with Deep Learning — •Paul-Simon Blomenkamp and Kevin Schmidt
              
            
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          17:45 | 
          AKPIK 2.8 | 
          
            
            
              
                A Neural Network Architecture for Radio Imaging — •Stefan Fröse and Kevin Schmidt
              
            
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          18:00 | 
          AKPIK 2.9 | 
          
            
            
              
                Evaluation of Interferometric Data Reconstructed by Neural Networks — •Felix Geyer and Kevin Schmidt
              
            
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