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Radioactive Source Localisation via Projective Linear Reconstruction

delete2021-01-26
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AI
S
Samuel White *
K
Kieran Wood
P
Peter Martin
D
Dean Connor
T
Thomas B. Scott
D
D. Smith
DOI:10.3390/s21030807delete
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摘要

摘要

En 中文
Radiation mapping, through the detection of ionising gamma-ray emissions, is an important technique used across the nuclear industry to characterise environments over a range of length scales. In complex scenarios, the precise localisation and activity of radiological sources becomes difficult to determine due to the inability to directly image gamma photon emissions. This is a result of the potentially unknown number of sources combined with uncertainties associated with the source-detector separation-causing an apparent 'blurring' of the as-detected radiation field relative to the true distribution. Accurate delimitation of distinct sources is important for decommissioning, waste processing, and homeland security. Therefore, methods for estimating the precise, 'true' solution from radiation mapping measurements are required. Herein is presented a computational method of enhanced radiological source localisation from scanning survey measurements conducted with a robotic arm. The procedure uses an experimentally derived Detector Response Function (DRF) to perform a randomised-Kaczmarz deconvolution from robotically acquired radiation field measurements. The performance of the process is assessed on radiation maps obtained from a series of emulated waste processing scenarios. The results demonstrate a Projective Linear Reconstruction (PLR) algorithm can successfully locate a series of point sources to within 2 cm of the true locations, corresponding to resolution enhancements of between 5x and 10x.
Keyword:
radiation sensing
micro-gamma spectrometers
localisation
robotics sensing
radiation mapping
linear inversion
inverse problems
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期刊

Sensors 封面图
Sensors
IF:
3.5
论文数:
7.2W
被引数:
20.9W

机构

U
University of Bristol
学者数:
3.1W
论文数: 3.0W
被引数: 5.3W
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