16th Int'l Conf. Computer and Information Technology 2014
DOI: 10.1109/iccitechn.2014.6997340
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A belief rule based (BRB) system to assess asthma suspicion

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Cited by 13 publications
(9 citation statements)
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References 21 publications
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“…RIMER consists of mainly two parts [5]: the first part is the BRB, which is a domain knowledge representation schema with uncertain information, and the second part is Evidential Reasoning (ER) algorithm [6] that is used as an inference mechanism or to deduce inference. BRB is the extended form of traditional IF-THEN rule-base contains appropriate schema to capture different types of uncertainties and allows handling of non-linear causal relationships.…”
Section: Overview Of Rimer Methodologymentioning
confidence: 99%
See 2 more Smart Citations
“…RIMER consists of mainly two parts [5]: the first part is the BRB, which is a domain knowledge representation schema with uncertain information, and the second part is Evidential Reasoning (ER) algorithm [6] that is used as an inference mechanism or to deduce inference. BRB is the extended form of traditional IF-THEN rule-base contains appropriate schema to capture different types of uncertainties and allows handling of non-linear causal relationships.…”
Section: Overview Of Rimer Methodologymentioning
confidence: 99%
“…Where denotes the belief degree associated with one of the consequent reference values such as . The is calculating by analytical format of the ER algorithm [5] [6] as illustrated in (6). The final combined result or output generated by ER is represented by 1 , 1 , 2 , 1 , 3 , 1 , … … … , , , where is the final belief degree attached to the jth referential value of the consequent attribute, obtained after combining all activated rules in the BRB by using ER.…”
Section: B Inference System With Brbmentioning
confidence: 99%
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“…Unlike ML and DL algorithms, BRBES can address nonlinear causal data, reason under uncertainity and can be optimized using gradient-free nature-inspired algorithms such as BRBaDE [18]. BRBES has been applied to design artificial intelligence-based diagnosis systems for various diseases and medical conditions [32][33][34][35][36][37][38][39]. In [40], BRBES optimized with a modified differential evolution (DE) algorithm has been developed to predict the severity of illness in COVID-19 patients.…”
Section: Literature Reviewmentioning
confidence: 99%
“…However, in most situations where places are identified as at risk of flooding, there is little data available with which to estimate either the probability of exceedence of a given discharge or to predict the depths and velocities resulting from such a discharge. Flood frequency estimates, whether estimated by fitting statistical distributions, by regionalization from gauged sites, or by continuous simulation [23][24] are known to be highly uncertain. The predictions of flood inundation models, even when conditioned on observed depth or flooded area information, are also known to be uncertain (and in some cases cannot match the observations throughout the flow domain) [25].…”
Section: Smart Risk Assessment Systemsmentioning
confidence: 99%