Publications

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M. Haußmann, Hamprecht, F. A., and Kandemir, M., Sampling-Free Variational Inference of Bayesian Neural Networks by Variance Backpropagation, UAI. Proceedings. pp. 563-573, 2019.PDF icon Technical Report (1.04 MB)
C. N. Straehle, Köthe, U., Briggman, K., Denk, W., and Hamprecht, F. A., Seeded watershed cut uncertainty estimators for guided interactive segmentation, in CVPR 2012. Proceedings, 2012, pp. 765 - 772.PDF icon Technical Report (2.84 MB)
B. Andres, Köthe, U., Helmstaedter, M., Denk, W., and Hamprecht, F. A., Segmentation of SBFSEM Volume Data of Neural Tissue by Hierarchical Classification, in Pattern Recognition. 30th DAGM Symposium Munich, Germany, June 10-13, 2008. Proceedings, 2008, vol. 5096, pp. 142-152.PDF icon Technical Report (1.21 MB)
C. Haubold, Schiegg, M., Kreshuk, A., Berg, S., Köthe, U., and Hamprecht, F. A., Segmenting and Tracking Multiple Dividing Targets Using ilastik, in Focus on Bio-Image Informatics, vol. 219, Springer, 2016, pp. 199-229.PDF icon Technical Report (4.46 MB)
B. Andres, Hamprecht, F. A., and Garbe, C. S., Selection of Local Optical Flow Models by Means of Residual Analysis, in Pattern Recognition, 2007, vol. 4713, pp. 72-81.PDF icon Technical Report (229.64 KB)
B. Andres, Hamprecht, F. A., and Garbe, C. S., Selection of Local Optical Flow Models by Means of Residual Analysis, in Pattern Recognition, 2007, vol. 4713, pp. 72-81.PDF icon Technical Report (229.64 KB)
B. Andres, Garbe, C. S., Schnörr, C., and Jähne, B., Selection of local optical flow models by means of residual analysis, in Proceedings of the 29th DAGM Symposium on Pattern Recognition, 2007, p. 72--81.
B. Andres, Garbe, C. S., Schnörr, C., and Jähne, B., Selection of local optical flow models by means of residual analysis, in Proceedings of the 29th DAGM Symposium on Pattern Recognition, 2007, p. 72--81.
M. Staudacher, Hamprecht, F. A., and Görlitz, L., Self Adjustment of Scanning Electron Microscopes / Selbstadaptivität von Rasterelektronenmikroskopen, Patent, Patent Number WO2009062781A1, 2009.PDF icon Technical Report (46.64 KB)
B. Maco, Cantoni, M., Holtmaat, A., Kreshuk, A., Hamprecht, F. A., and Knott, G. W., Semiautomated Correlative 3D Electron Microscopy of In Vivo Imaged Axons and Dendrites, Nature Protocols, vol. 9, pp. 1354-1366, 2014.PDF icon Technical Report (2.01 MB)
A. Drory, Haubold, C., Avidan, S., and Hamprecht, F. A., Semi-Global Matching: A Principled Derivation in Terms of Message Passing, in GCPR. Proceedings, 2014, pp. 43-53.PDF icon Technical Report (2.6 MB)
L. Görlitz, Menze, B. H., Weber, M. - A., and Kelm, B. Michael, Semi-Supervised Tumor Detection in MRSI With Discriminative Random Fields, in Pattern Recognition, 2007, vol. 4713, pp. 224-233.PDF icon Technical Report (872.46 KB)
L. Görlitz, Menze, B. H., Weber, M. - A., and Kelm, B. Michael, Semi-Supervised Tumor Detection in MRSI With Discriminative Random Fields, in Pattern Recognition, 2007, vol. 4713, pp. 224-233.PDF icon Technical Report (872.46 KB)
M. Hanselmann, Voss, B., Renard, B. Y., Lindner, M., Köthe, U., Kirchner, M., and Hamprecht, F. A., SIMA: Simultaneous Multiple Alignment of LC/MS Peak Lists, Bioinformatics, vol. 27 (7), pp. 987-993, 2011.PDF icon Technical Report (2.2 MB)
U. Köthe, Herrmannsdörfer, F., Kats, I., and Hamprecht, F. A., SimpleSTORM: a fast, self-calibrating reconstruction algorithm for localization microscopy, Histochemistry and Cell Biology, vol. 141, pp. 613-627, 2014.PDF icon Technical Report (2.29 MB)
S. Peter, Kirschbaum, E., Both, M., Campbell, L. A., Harvey, B. K., Heins, C., Durstewitz, D., Diego, F., and Hamprecht, F. A., Sparse convolutional coding for neuronal assembly detection, NIPS, poster. 2017.
F. Diego and Hamprecht, F. A., Sparse Space-Time Deconvolution for Calcium Image Analysis, in NIPS. Proceedings, 2014, pp. 64-72.PDF icon Technical Report (5.27 MB)
N. Rahaman, Arpit, D., Baratin, A., Draxler, F., Lin, M., Hamprecht, F. A., Bengio, Y., and Courville, A., On the spectral bias of deep neural networks, arXiv preprint arXiv:1806.08734, 2018.
M. Jäger, Humbert, S., and Hamprecht, F. A., Sputter Tracking for the Automatic Monitoring of Industrial Laser Welding Processes, IEEE Transactions on Industrial Electronics, vol. 55, pp. 2177-2184, 2008.PDF icon Technical Report (1.83 MB)
F. A. Hamprecht, Peter, C., Daura, X., Thiel, W., and van Gunsteren, W. F., A strategy for analysis of (molecular) equilibrium simulations: configuration space density estimation, clustering and visualization, Journal of Chemical Physics, vol. 114, pp. 2079-2089, 2001.
X. Lou and Hamprecht, F. A., Structured Learning for Cell Tracking, in NIPS 2011. Proceedings, 2011, pp. 1296-1304.PDF icon Technical Report (1.41 MB)
X. Lou, Kloft, M., Rätsch, G., and Hamprecht, F. A., Structured Learning from Cheap Data, Advanced Structured Prediction. The MIT Press, 2014.PDF icon Technical Report (8.35 MB)
X. Lou and Hamprecht, F. A., Structured Learning from Partial Annotations, ICML 2012. Proceedings, 2012.PDF icon Technical Report (843.45 KB)
F. Diego and Hamprecht, F. A., Structured Regression Gradient Boosting, CVPR. Proceedings. pp. 1459-1467, 2016.PDF icon Technical Report (3.97 MB)
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M. Frank, Plaue, M., Rapp, H., Köthe, U., Jähne, B., and Hamprecht, F. A., Theoretical and Experimental Error Analysis of Continuous-Wave Time-Of-Flight Range Cameras, Optical Engineering, vol. 48, 013602, 2009.PDF icon Technical Report (2.03 MB)
M. Frank, Plaue, M., Rapp, H., Köthe, U., Jähne, B., and Hamprecht, F. A., Theoretical and experimental error analysis of continuous-wave time-of-flight range cameras, Opt. Eng., vol. 48, p. 013602, 2009.
H. Rapp, Frank, M., Hamprecht, F. A., and Jähne, B., A Theoretical and Experimental Investigation of the Systematic Errors and Statistical Uncertainties of Time-of-Flight Cameras, Int. J. Intelligent Systems Technologies and Applications, vol. 5, pp. 402-413, 2008.PDF icon Technical Report (798.23 KB)
H. Rapp, Frank, M., Hamprecht, F. A., and Jähne, B., A theoretical and experimental investigation of the systematic errors and statistical uncertainties of time-of-flight cameras, Int. J. Intelligent Systems Technologies and Applications, vol. 5, p. 402--413, 2008.
H. Rapp, Frank, M., Hamprecht, F. A., and Jähne, B., A theoretical and experimental investigation of the systematic errors and statistical uncertainties of time-of-flight cameras, in Proc.\ Dyn3D Workshop, Heidelberg, Sept. 11, 2007, 2007.
M. Bühl and Hamprecht, F. A., Theoretical Investigation of NMR Chemical Shifts and Reactivities of Oxovanadium (V) Compounds, Journal of Computational Chemistry, vol. 19, pp. 113-122, 1998.
C. Cali, Baghabra, J., Boges, D. J., Holst, G. R., Kreshuk, A., Hamprecht, F. A., Srinivasan, M., Lehväslaiho, H., and Magistretti, P. J., Three-dimensional immersive virtual reality for studying cellular compartments in 3D models from EM preparations of neural tissues, Journal of Comparative Neurology, vol. 524, pp. 23-38, 2015.
J. Schmähling, Hamprecht, F. A., and Hoffmann, D. M. P., A three-dimensional measure of surface roughness based on mathematical morphology, International Journal of Machine Tools and Manufacture, vol. 46 (14), pp. 1764-1769, 2006.PDF icon Technical Report (524.97 KB)
H. Kubinyi, Hamprecht, F. A., and Mietzner, T., Threedimensional Quantitative Similarity-Activity Relationships (3DQSiAR) from SEAL Similarity Matrices, Journal of Medicinal Chemistry, vol. 41, pp. 2553-2564, 1998.
M. Hanselmann, Köthe, U., Kirchner, M., Renard, B. Y., Amstalden, E. R., Glunde, K., Heeren, R. M. A., and Hamprecht, F. A., Towards Digital Staining using Imaging Mass Spectrometry and Random Forests, Journal of Proteome Research, vol. 8, pp. 3558-3567, 2009.PDF icon Technical Report (1.47 MB)
L. Fiaschi, Diego, F., Grosser, K. - H., Schiegg, M., Köthe, U., Zlatic, M., and Hamprecht, F. A., Tracking indistinguishable translucent objects over time using weakly supervised structured learning, in CVPR. Proceedings, 2014, pp. 2736 - 2743.PDF icon Technical Report (1.47 MB)

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