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2016
S. Karthik Mustikovela, Yang, M. Ying, and Rother, C., Can ground truth label propagation from video help semantic segmentation?, in Lecture Notes in Computer Science (including subseries Lecture Notes in Artificial Intelligence and Lecture Notes in Bioinformatics), 2016, vol. 9915 LNCS, pp. 804–820.
J. Kleesiek, Urban, G., Hubert, A., Schwarz, D., Maier-Hein, K., Bendszus, M., and Biller, A., Deep MRI brain extraction: A 3D convolutional neural network for skull stripping., NeuroImage, vol. 129, pp. 460-469, 2016.PDF icon Technical Report (1.14 MB)
E. Meijering, Carpenter, A. E., Peng, H., Hamprecht, F. A., and Olivo-Marin, J., Imagining the future of bioimage analysis, Nature Biotechnology, vol. 34, no. 12, pp. 1250-1255, 2016.PDF icon Technical Report (924.57 KB)
J. Mund, Michel, F., Dieke-Meier, F., Fricke, H., Meyer, L., and Rother, C., Introducing LiDAR Point Cloud-based Object Classification for Safer Apron Operations, in International Symposium on Enhanced Solutions for Aircraft and Vehicle Surveillance Applications, 2016.
J. Mund, Michel, F., Dieke-Meier, F., Fricke, H., Meyer, L., and Rother, C., Introducing LiDAR Point Cloud-based Object Classification for Safer Apron Operations, in International Symposium on Enhanced Solutions for Aircraft and Vehicle Surveillance Applications, 2016.
J. Mund, Michel, F., Dieke-Meier, F., Fricke, H., Meyer, L., and Rother, C., Introducing LiDAR Point Cloud-based Object Classification for Safer Apron Operations, in International Symposium on Enhanced Solutions for Aircraft and Vehicle Surveillance Applications, 2016.
P. Pinggera, Ramos, S., Gehrig, S., Franke, U., Rother, C., and Mester, R., Lost and found: Detecting small road hazards for self-driving vehicles, in IEEE International Conference on Intelligent Robots and Systems, 2016, vol. 2016-Novem, pp. 1099–1106.
D. L. Richmond, Kainmueller, D., Yang, M. Y., Myers, E. W., and Rother, C., Mapping auto-context decision forests to deep convnets for semantic segmentation, in British Machine Vision Conference 2016, BMVC 2016, 2016, vol. 2016-Septe, pp. 144.1–144.12.
D. L. Richmond, Kainmueller, D., Yang, M. Y., Myers, E. W., and Rother, C., Mapping auto-context decision forests to deep convnets for semantic segmentation, in British Machine Vision Conference 2016, BMVC 2016, 2016, vol. 2016-Septe, pp. 144.1–144.12.
D. L. Richmond, Kainmueller, D., Yang, M. Y., Myers, E. W., and Rother, C., Mapping auto-context decision forests to deep convnets for semantic segmentation, in British Machine Vision Conference 2016, BMVC 2016, 2016, vol. 2016-Septe, pp. 144.1–144.12.
E. Brachmann, Michel, F., Krull, A., Yang, M. Ying, Gumhold, S., and Rother, C., Uncertainty-Driven 6D Pose Estimation of Objects and Scenes from a Single RGB Image, in Proceedings of the IEEE Computer Society Conference on Computer Vision and Pattern Recognition, 2016, vol. 2016-Decem, pp. 3364–3372.
E. Brachmann, Michel, F., Krull, A., Yang, M. Ying, Gumhold, S., and Rother, C., Uncertainty-Driven 6D Pose Estimation of Objects and Scenes from a Single RGB Image, in Proceedings of the IEEE Computer Society Conference on Computer Vision and Pattern Recognition, 2016, vol. 2016-Decem, pp. 3364–3372.
J. Kleesiek, Petersen, J., Döring, M., Maier-Hein, K., Köthe, U., Wick, W., Hamprecht, F. A., Bendszus, M., and Biller, A., Virtual Raters for Reproducible and Objective Assessments in Radiology, Nature Scientific Reports, vol. 6, 2016.PDF icon Technical Report (2.81 MB)
2015
N. Gianniotis, Schnörr, C., Molkenthin, C., and Bora, S. S., Approximate variational inference based on a finite sample of Gaussian latent variables, Patt.~Anal.~Appl., 2015.PDF icon Technical Report (1.4 MB)
K. Honauer, Maier-Hein, L., and Kondermann, D., The HCI Stereo Metrics: Geometry-Aware Performance Analysis of Stereo Algorithms, in The IEEE International Conference on Computer Vision (ICCV), 2015.
A. Krull, Brachmann, E., Michel, F., Yang, M. Ying, Gumhold, S., and Rother, C., Learning analysis-by-synthesis for 6d pose estimation in RGB-D images, in Proceedings of the IEEE International Conference on Computer Vision, 2015, vol. 2015 Inter, pp. 954–962.
E. Mesarchaki, Kräuter, C., Krall, K. Ellen, Bopp, M., Helleis, F., Williams, J., and Jähne, B., Measuring air–sea gas-exchange velocities in a large-scale annular wind–wave tank, Ocean Sci., vol. 11, p. 121--138, 2015.
S. Zheng, Prisacariu, V. Adrian, Averkiou, M., Cheng, M. Ming, Mitra, N. J., Shotton, J., Torr, P. H. S., and Rother, C., Object proposals estimation in depth image using compact 3D shape manifolds, in Lecture Notes in Computer Science (including subseries Lecture Notes in Artificial Intelligence and Lecture Notes in Bioinformatics), 2015, vol. 9358, pp. 196–208.
N. J. Mitra, Stam, J., Xu, K., Cheng, M. - M., Prisacariu, V. Adrian, Zheng, S., Torr, P. H. S., and Rother, C., Pacific Graphics 2015 DenseCut: Densely Connected CRFs for Realtime GrabCut, vol. 34, 2015.
J. Mund, Zouhar, A., Meyer, L., Fricke, H., and Rother, C., Performance evaluation of LiDAR point clouds towards automated FOD detection on airport aprons, in Proceedings of ATACCS 2015 - 5th International Conference on Application and Theory of Automation in Command and Control Systems, 2015, pp. 85–94.
J. Mund, Zouhar, A., Meyer, L., Fricke, H., and Rother, C., Performance evaluation of LiDAR point clouds towards automated FOD detection on airport aprons, in Proceedings of ATACCS 2015 - 5th International Conference on Application and Theory of Automation in Command and Control Systems, 2015, pp. 85–94.
J. Mund, Zouhar, A., Meyer, L., Fricke, H., and Rother, C., Performance evaluation of LiDAR point clouds towards automated FOD detection on airport aprons, in Proceedings of ATACCS 2015 - 5th International Conference on Application and Theory of Automation in Command and Control Systems, 2015, pp. 85–94.
J. Mund, Zouhar, A., Meyer, L., Fricke, H., and Rother, C., Performance evaluation of LiDAR point clouds towards automated FOD detection on airport aprons, in Proceedings of ATACCS 2015 - 5th International Conference on Application and Theory of Automation in Command and Control Systems, 2015, pp. 85–94.
F. Michel, Krull, A., Brachmann, E., Yang, M. Ying, Gumhold, S., and Rother, C., Pose Estimation of Kinematic Chain Instances via Object Coordinate Regression, 2015, pp. 181.1–181.11.
D. Kondermann, Nair, R., Meister, S., Mischler, W., Güssefeld, B., Honauer, K., Hofmann, S., Brenner, C., and Jähne, B., Stereo Ground Truth with Error Bars, in Computer Vision – ACCV 2014: 12th Asian Conference on Computer Vision, Singapore, Singapore, November 1-5, 2014, Revised Selected Papers, Part V, Cham: Springer International Publishing, 2015, pp. 595–610.
D. Kondermann, Nair, R., Meister, S., Mischler, W., Güssefeld, B., Honauer, K., Hofmann, S., Brenner, C., and Jähne, B., Stereo Ground Truth with Error Bars, in Computer Vision – ACCV 2014: 12th Asian Conference on Computer Vision, Singapore, Singapore, November 1-5, 2014, Revised Selected Papers, Part V, Cham: Springer International Publishing, 2015, pp. 595–610.
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.
D. Richmond, Kainmueller, D., Glocker, B., Rother, C., and Myers, G., Uncertainty-driven forest predictors for vertebra localization and segmentation, Lecture Notes in Computer Science (including subseries Lecture Notes in Artificial Intelligence and Lecture Notes in Bioinformatics), vol. 9349. pp. 653–660, 2015.
2014
D. Kainmueller, Jug, F., Rother, C., and Myers, G., Active graph matching for automatic joint segmentation and annotation of C. elegans, in Lecture Notes in Computer Science (including subseries Lecture Notes in Artificial Intelligence and Lecture Notes in Bioinformatics), 2014, vol. 8673 LNCS, pp. 81–88.
B. F. Tek, Kröger, T., Mikula, S., and Hamprecht, F. A., Automated Cell Nucleus Detection for Large-Volume Electron Microscopy of Neural Tissue, in ISBI. Proceedings, 2014, pp. 69-72.PDF icon Technical Report (533.92 KB)
L. Maier-Hein, Mersmann, S., Kondermann, D., Bodenstedt, S., Sanchez, A., Stock, C., Kenngott, H., Eisenmann, M., and Speidel, S., Can masses of non-experts train highly accurate image classifiers? A crowdsourcing approach to instrument segmentation in laparoscopic images, in MICCAI, 2014.
L. Maier-Hein, Mersmann, S., Kondermann, D., Bodenstedt, S., Sanchez, A., Stock, C., Kenngott, H., Eisenmann, M., and Speidel, S., Can masses of non-experts train highly accurate image classifiers? A crowdsourcing approach to instrument segmentation in laparoscopic images, in MICCAI, 2014.
S. Meister, On Creating Reference Data for Performance Analysis in Image Processing. IWR, Fakultät für Physik und Astronomie, Univ.\ Heidelberg, 2014.
S. Nicolas Ro Meister, On Creating Reference Data for Performance Analysis in Image Processing, vol. Dissertation. IWR, Fakultät für Physik und Astronomie, Univ. Heidelberg, 2014.
L. Maier-Hein, Mersmann, S., Kondermann, D., Stock, C., Kenngott, H., Sanchez, A., Wagner, M., Preukschas, A., Wekerle, A. - L., Helfert, S., Bodenstedt, S., and Speidel, S., Crowdsourcing for reference correspondence generation in endoscopic images, in MICCAI, 2014.

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