Title :
Optimization of pinhole emission imaging systems for small animal imaging
Author :
Zhou, Lili ; Khurd, Parmeshwar ; Gindi, Gene
Author_Institution :
State Univ. of New York, Stony Brook
Abstract :
There has been a surge of interest in the design of small animal imaging systems that use radioactive tracers to track in vivo quantities such as tumor growth or spread. For single-photon radiotracers, one needs a blocking aperture, such as a pinhole, multi-pinhole aperture or collimator, to form images. Here we consider a single pinhole. For engineers, the pinhole design, especially its diameter, is crucial in that it controls a noise-resolution tradeoff, and this tradeoff ultimately determines the ability of a human observer to find and detect the tumor. We considered a single-pinhole planar emission imaging system and addressed the following engineering question what pinhole diameter allows the best possible performance in both detecting and localizing a signal (e.g. tumor) embedded in the noisy image We applied recent theoretical developments from our group to answer this question by using a mathematical ideal observer. If the only source of noise is radiation noise, then we demonstrate the result that a very large aperture leading to very blurry images is best.
Keywords :
cancer; radioactive tracers; radioisotope imaging; tumours; mathematical ideal observer; noise-resolution tradeoff; noisy image; optimization; pinhole emission imaging systems; radioactive tracers; single-photon radiotracers; small animal imaging; tumor growth; tumor spread; Animals; Apertures; Collimators; Convolution; Image resolution; In vivo; Kernel; Neoplasms; Optical imaging; Radiology;
Conference_Titel :
Bioengineering Conference, 2007. NEBC '07. IEEE 33rd Annual Northeast
Conference_Location :
Long Island, NY
Print_ISBN :
978-1-4244-1033-0
Electronic_ISBN :
978-1-4244-1033-0
DOI :
10.1109/NEBC.2007.4413295