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Fabrication and Characterization of Optical Tissue Phantoms Containing Macrostructure
Published on: February 12, 2018
Analysis of biological tissues in infant chest for the development of an equivalent radiographic phantom
D R Pina1, Rafael T F Souza, Sergio B Duarte
1Departamento de Doenças Tropicais e Diagnóstico por Imagem, Universidade Estadual Paulista, São Paulo, Brazil. drpina@fmb.unsep.br
Insights
Researchers developed a novel infant chest phantom for pediatric radiology. This tool aids in optimizing radiographic techniques and dosimetric control for children under one year old.
Area of Science:
- Medical Physics
- Radiological Science
Background:
- Pediatric radiology requires specialized tools for accurate imaging and dose assessment.
- Developing homogeneous phantoms is crucial for optimizing radiographic techniques in young patients.
Purpose of the Study:
- To determine the tissue composition of infant chests (age ≤1 year).
- To create a homogeneous phantom simulating the infant chest for radiographic technique development and dosimetric control.
Main Methods:
- Utilized Gaussian fit of computed tomographic (CT) analysis to classify and quantify biological tissues.
- Developed a computational algorithm for automated CT analysis to quantify tissues.
- Determined the thicknesses of simulator material plates for phantom construction.
Main Results:
- Examined 180 retrospective CT scans of infants.
- Evaluated the amounts of different tissues within the infant chest.
- Provided data for constructing a phantom to simulate the infant chest in PA/AP views.
Conclusions:
- This study presents the first infant chest phantom specifically for pediatric radiology (children <1 year).
- The phantom is essential for developing clinical protocols and optimizing radiographic techniques in infants.
- This work serves as a foundation for establishing radiologic protocols for infant patients.
Purpose:
The main purpose of the present study was to determine the amounts of different tissues in the chest of the newborn patient (age ≤1 year), with the aim of developing a homogeneous phantom chest equivalent. This type of phantom is indispensable in the development of optimization procedures for radiographic techniques, including dosimetric control, which is a crucial aspect of pediatric radiology. The authors present a systematic set of procedures, including a computational algorithm, to estimate the amounts of tissues and thicknesses of the corresponding simulator material plates used to construct the phantom.
Methods:
The Gaussian fit of computed tomographic (CT) analysis was applied to classify and quantify different biological tissues. The methodology is summarized with a computational algorithm, which was used to quantify tissues through automated CT analysis. The thicknesses of the equivalent homogeneous simulator material plates were determined to construct the phantom.
Results:
A total of 180 retrospective CT examinations with anterior-posterior diameter values ranging 8.5-13.0 cm were examined. The amounts of different tissues were evaluated. The results provided elements to construct a phantom to simulate the infant chest in the posterior-anterior or anterior-posterior (PA/AP) view.
Conclusions:
To our knowledge, this report represents the first demonstration of an infant chest phantom dedicated to the radiology of children younger than one year. This phantom is a key element in the development of clinical charts for optimizing radiographic technique in pediatric patients. Optimization procedures for nonstandard patients were reported previously [Pina et al., Phys. Med. Biol. 49, N215-N226 (2004) and Pina et al., Appl. Radiat. Isot. 67, 61-69 (2009)]. The constructed phantom represents a starting point to obtain radiologic protocols for the infant patient.
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