DocumentCode :
340282
Title :
Hyperfixation point-source reconstruction by the maximum entropy on the mean method
Author :
Amblard, C. ; Grangeat, P. ; Benali, H. ; Bendriem, B.
Author_Institution :
CEA, Centre d´´Etudes Nucleaires de Grenoble, France
Volume :
2
fYear :
1998
fDate :
1998
Firstpage :
1372
Abstract :
Point-source reconstruction arises as an important problem in many applications of nuclear instrumentation. Our main concern is PET image reconstruction for oncology in order to improve the detection of hyperfixation point source as metastasis or to reconstruct an object from a fewer number of measures. The issue is to reach detectability of small objects from noisy data. We propose to perform a statistical reconstruction method, based on the maximum entropy on the mean principle. This method is particularly relevant to solve strongly ill-posed problems. Taking into account statistical data distribution and prior knowledge, it is able to detect small objects from noisy data, which may be angularly or spatially undersampled. As opposed to classical regularisation methods for reconstruction, this method does not imply any spatial smoothing operation. We illustrate the method on simulated noisy angularly undersampled acquisitions
Keywords :
image reconstruction; inverse problems; maximum entropy methods; medical image processing; positron emission tomography; Lagrange function; PET image reconstruction; angularly undersampled; detectability of small objects; hyperfixation point-source reconstruction; ill-posed problems; maximum entropy on the mean method; metastasis; noisy data; object model; oncology; prior knowledge; spatially undersampled; statistical reconstruction method; Entropy; Extraterrestrial measurements; Image reconstruction; Metastasis; Object detection; Oncology; Positron emission tomography; Reconstruction algorithms; Smoothing methods; Statistical distributions;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Nuclear Science Symposium, 1998. Conference Record. 1998 IEEE
Conference_Location :
Toronto, Ont.
ISSN :
1082-3654
Print_ISBN :
0-7803-5021-9
Type :
conf
DOI :
10.1109/NSSMIC.1998.774408
Filename :
774408
Link To Document :
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