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An unfolding method for directional spectrometers
- Source :
- Radiation protection dosimetry. 110(1-4)
- Publication Year :
- 2004
-
Abstract
- The development of new spectrometers that are sensitive to the directional distribution of neutrons requires new unfolding methods that can determine the distribution of the neutron fluence as a function of energy and angle. Such information is needed to compute non-isotropic dosimetric quantities (e.g. personal dose equivalent and effective dose). We describe an unfolding method that applies the maximum entropy principle to this problem. It maximises the relative entropy, defined as the information-theory entropy of the distribution of the neutron fluence relative to a distribution that encodes prior knowledge, subject to constraints imposed by the measurements. We provide examples of the applicability of the method using data from two directional spectrometers of different design that have been developed in the context of EVIDOS, a project concerning mixed neutron-photon field analysis in the nuclear industry.
- Subjects :
- Kullback–Leibler divergence
Field analysis
Radiation Dosage
Risk Assessment
Sensitivity and Specificity
Optics
Radiation Protection
Neutron flux
Nuclear Reactors
Risk Factors
Occupational Exposure
Humans
Radiology, Nuclear Medicine and imaging
Neutron
Linear Energy Transfer
Statistical physics
Entropy (energy dispersal)
Nuclear Experiment
Radiometry
Physics
Neutrons
Radiation
Radiological and Ultrasound Technology
Spectrometer
Equivalent dose
business.industry
Principle of maximum entropy
Spectrum Analysis
Public Health, Environmental and Occupational Health
Reproducibility of Results
General Medicine
Equipment Design
Equipment Failure Analysis
Anisotropy
Body Burden
Feasibility Studies
business
Relative Biological Effectiveness
Subjects
Details
- ISSN :
- 01448420
- Volume :
- 110
- Issue :
- 1-4
- Database :
- OpenAIRE
- Journal :
- Radiation protection dosimetry
- Accession number :
- edsair.doi.dedup.....962b4bef85613afa4f8182452958fff4