Produktnummer:
1871185b274b584361a3338198754b1af2
Themengebiete: | MRI anatomy computer-aided diagnosis image-guided therapy image analysis image database retrieval image reconstruction image segmentation machine learning medical imaging |
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Veröffentlichungsdatum: | 03.09.2010 |
EAN: | 9783642159473 |
Sprache: | Englisch |
Seitenzahl: | 192 |
Produktart: | Kartoniert / Broschiert |
Herausgeber: | Shen, Dinggang Suzuki, Kenji Wang, Fei Yan, Pingkun |
Verlag: | Springer Berlin |
Untertitel: | First International Workshop, MLMI 2010, Held in Conjunction with MICCAI 2010, Beijing, China, September 20, 2010, Proceedings |
Produktinformationen "Machine Learning in Medical Imaging"
The first International Workshop on Machine Learning in Medical Imaging, MLMI 2010, was held at the China National Convention Center, Beijing, China on Sept- ber 20, 2010 in conjunction with the International Conference on Medical Image Computing and Computer Assisted Intervention (MICCAI) 2010. Machine learning plays an essential role in the medical imaging field, including image segmentation, image registration, computer-aided diagnosis, image fusion, ima- guided therapy, image annotation, and image database retrieval. With advances in me- cal imaging, new imaging modalities, and methodologies such as cone-beam/multi-slice CT, 3D Ultrasound, tomosynthesis, diffusion-weighted MRI, electrical impedance to- graphy, and diffuse optical tomography, new machine-learning algorithms/applications are demanded in the medical imaging field. Single-sample evidence provided by the patient’s imaging data is often not sufficient to provide satisfactory performance; the- fore tasks in medical imaging require learning from examples to simulate a physician’s prior knowledge of the data. The MLMI 2010 is the first workshop on this topic. The workshop focuses on major trends and challenges in this area, and works to identify new techniques and their use in medical imaging. Our goal is to help advance the scientific research within the broad field of medical imaging and machine learning. The range and level of submission for this year's meeting was of very high quality. Authors were asked to submit full-length papers for review. A total of 38 papers were submitted to the workshop in response to the call for papers.

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