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Mario Michael Krell
Person information
- affiliation: University of California Berkeley, CA, USA
- affiliation (PhD 2015): University of Bremen, Germany
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2020 – today
- 2024
- [j9]Hatem Helal, Jesun Firoz, Jenna A. Bilbrey, Henry Sprueill, Kristina M. Herman, Mario Michael Krell, Tom Murray, Manuel Lopez Roldan, Mike Kraus, Ang Li, Payel Das, Sotiris S. Xantheas, Sutanay Choudhury:
Acceleration of Graph Neural Network-Based Prediction Models in Chemistry via Co-Design Optimization on Intelligence Processing Units. J. Chem. Inf. Model. 64(5): 1568-1580 (2024) - 2022
- [j8]Sourabh Kulkarni, Mario Michael Krell, Seth Nabarro, Csaba Andras Moritz:
Hardware-accelerated Simulation-based Inference of Stochastic Epidemiology Models for COVID-19. ACM J. Emerg. Technol. Comput. Syst. 18(2): 30:1-30:24 (2022) - [i14]Mario Michael Krell, Nils Wilshusen, Anett Seeland, Su Kyoung Kim:
Classifier Transfer with Data Selection Strategies for Online Support Vector Machine Classification with Class Imbalance. CoRR abs/2208.05112 (2022) - [i13]Mario Michael Krell, Manuel Lopez Roldan, Sreenidhi Anand, Hatem Helal, Andrew William Fitzgibbon:
Tuple Packing: Efficient Batching of Small Graphs in Graph Neural Networks. CoRR abs/2209.06354 (2022) - [i12]Hatem Helal, Jesun Firoz, Jenna A. Bilbrey, Mario Michael Krell, Tom Murray, Ang Li, Sotiris S. Xantheas, Sutanay Choudhury:
Extreme Acceleration of Graph Neural Network-based Prediction Models for Quantum Chemistry. CoRR abs/2211.13853 (2022) - 2021
- [i11]Daniel Ma, Gerald Friedland, Mario Michael Krell:
OrigamiSet1.0: Two New Datasets for Origami Classification and Difficulty Estimation. CoRR abs/2101.05470 (2021) - [i10]Matej Kosec, Sheng Fu, Mario Michael Krell:
Packing: Towards 2x NLP BERT Acceleration. CoRR abs/2107.02027 (2021) - [i9]Edward H. Lee, Mario Michael Krell, Alexander Tsyplikhin, Victoria Rege, Errol Colak, Kristen W. Yeom:
NanoBatch DPSGD: Exploring Differentially Private learning on ImageNet with low batch sizes on the IPU. CoRR abs/2109.12191 (2021) - 2020
- [c9]Sourabh Kulkarni, Alexander Tsyplikhin, Mario Michael Krell, Csaba Andras Moritz:
Accelerating Simulation-based Inference with Emerging AI Hardware. ICRC 2020: 126-132 - [i8]Mario Michael Krell, Bilal Wehbe:
A First Step Towards Distribution Invariant Regression Metrics. CoRR abs/2009.05176 (2020) - [i7]Sourabh Kulkarni, Mario Michael Krell, Seth Nabarro, Csaba Andras Moritz:
Hardware-accelerated Simulation-based Inference of Stochastic Epidemiology Models for COVID-19. CoRR abs/2012.14332 (2020)
2010 – 2019
- 2018
- [i6]Mario Michael Krell, Anett Seeland, Su Kyoung Kim:
Data Augmentation for Brain-Computer Interfaces: Analysis on Event-Related Potentials Data. CoRR abs/1801.02730 (2018) - [i5]Mario Michael Krell:
Generalizing, Decoding, and Optimizing Support Vector Machine Classification. CoRR abs/1801.04929 (2018) - [i4]Bilal Wehbe, Octavio Arriaga, Mario Michael Krell, Frank Kirchner:
Learning of Multi-Context Models for Autonomous Underwater Vehicles. CoRR abs/1809.06179 (2018) - [i3]Gerald Friedland, Alfredo Metere, Mario Michael Krell:
A Practical Approach to Sizing Neural Networks. CoRR abs/1810.02328 (2018) - 2017
- [j7]Mario Michael Krell, Sirko Straube:
Backtransformation: a new representation of data processing chains with a scalar decision function. Adv. Data Anal. Classif. 11(2): 415-439 (2017) - [c8]Mario Michael Krell, Su Kyoung Kim:
Rotational data augmentation for electroencephalographic data. EMBC 2017: 471-474 - [c7]Leif Christensen, Mario Michael Krell, Frank Kirchner:
Learning magnetic field distortion compensation for robotic systems. IROS 2017: 3516-3521 - [c6]Bilal Wehbe, Alexander Fabisch, Mario Michael Krell:
Online model identification for underwater vehicles through incremental support vector regression. IROS 2017: 4173-4180 - [i2]Gerald Friedland, Mario Michael Krell:
A Capacity Scaling Law for Artificial Neural Networks. CoRR abs/1708.06019 (2017) - [i1]Mario Michael Krell, Julia Bernd, Yifan Li, Daniel Ma, Jaeyoung Choi, Michael Ellsworth, Damian Borth, Gerald Friedland:
Field Studies with Multimedia Big Data: Opportunities and Challenges (Extended Ver. CoRR abs/1712.09915 (2017) - 2015
- [b1]Mario Michael Krell:
Generalizing, decoding, and optimizing support vector machine classification. University of Bremen, 2015, pp. 1-236 - [j6]Alexander Fabisch, Jan Hendrik Metzen, Mario Michael Krell, Frank Kirchner:
Accounting for Task-Difficulty in Active Multi-Task Robot Control Learning. Künstliche Intell. 29(4): 369-377 (2015) - [j5]Mario Michael Krell, Hendrik Wöhrle:
New one-class classifiers based on the origin separation approach. Pattern Recognit. Lett. 53: 93-99 (2015) - [j4]Hendrik Wöhrle, Mario Michael Krell, Sirko Straube, Su Kyoung Kim, Elsa Andrea Kirchner, Frank Kirchner:
An Adaptive Spatial Filter for User-Independent Single Trial Detection of Event-Related Potentials. IEEE Trans. Biomed. Eng. 62(7): 1696-1705 (2015) - [c5]Tim Tiedemann, Thomas Vögele, Mario Michael Krell, Jan Hendrik Metzen, Frank Kirchner:
Concept of a Data Thread Based Parking Space Occupancy Prediction in a Berlin Pilot Region. AAAI Workshop: AI for Transportation 2015 - [c4]Mario Michael Krell, Nils Wilshusen, Andrei Cristian Ignat, Su Kyoung Kim:
Comparison of Data Selection Strategies for Online Support Vector Machine Classification. NEUROTECHNIX 2015: 59-67 - [c3]Mario Michael Krell, Hendrik Wöhrle, Anett Seeland:
raxDAWN: Circumventing Overfitting of the Adaptive xDAWN. NEUROTECHNIX 2015: 68-75 - 2014
- [j3]Sirko Straube, Mario Michael Krell:
How to evaluate an agent's behavior to infrequent events? - Reliable performance estimation insensitive to class distribution. Frontiers Comput. Neurosci. 8: 43 (2014) - [j2]Mario Michael Krell, David Feess, Sirko Straube:
Balanced Relative Margin Machine - The missing piece between FDA and SVM classification. Pattern Recognit. Lett. 41: 43-52 (2014) - 2013
- [j1]Mario Michael Krell, Sirko Straube, Anett Seeland, Hendrik Wöhrle, Johannes Teiwes, Jan Hendrik Metzen, Elsa Andrea Kirchner, Frank Kirchner:
pySPACE - a signal processing and classification environment in Python. Frontiers Neuroinformatics 7: 40 (2013) - [c2]Mario Michael Krell, Marc Tabie, Hendrik Wöhrle, Elsa Andrea Kirchner:
Memory and Processing Efficient Formula for Moving Variance Calculation in EEG and EMG Signal Processing. NEUROTECHNIX 2013: 41-45 - [c1]Hendrik Wöhrle, Johannes Teiwes, Mario Michael Krell, Elsa Andrea Kirchner, Frank Kirchner:
A Dataflow-based Mobile Brain Reading System on Chip with Supervised Online Calibration - For Usage without Acquisition of Training Data. NEUROTECHNIX 2013: 46-53
Coauthor Index
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last updated on 2024-05-08 21:00 CEST by the dblp team
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