2012 IEEE 24th International Conference on Tools With Artificial Intelligence 2012
DOI: 10.1109/ictai.2012.78
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Brain Emotional Learning Based Fuzzy Inference System (BELFIS) for Solar Activity Forecasting

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Cited by 16 publications
(13 citation statements)
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“…Certainly, the emotional system's regions are very complex, and this structure has of course not mimicked all their connections in detail. The suggested structure has been the basis of Brain Emotional Learning-Inspired Models (BELIMs) [10], [12] such as the Brain Emotional Learning-based Fuzzy Inference System (BELFIS) [13], [14], the Brain Emotional Learning-based Recurrent Fuzzy System (BELRFS) [15], [16], and the Emotional Learning Inspired Ensemble Classifier (ELiEC) [17]. …”
Section: Brain Emotional Learning Inspired Modelsmentioning
confidence: 99%
“…Certainly, the emotional system's regions are very complex, and this structure has of course not mimicked all their connections in detail. The suggested structure has been the basis of Brain Emotional Learning-Inspired Models (BELIMs) [10], [12] such as the Brain Emotional Learning-based Fuzzy Inference System (BELFIS) [13], [14], the Brain Emotional Learning-based Recurrent Fuzzy System (BELRFS) [15], [16], and the Emotional Learning Inspired Ensemble Classifier (ELiEC) [17]. …”
Section: Brain Emotional Learning Inspired Modelsmentioning
confidence: 99%
“…The amygdala-orbitofrontal subsystem (see Fig. 3 ) that is the basis of many computational models has a simple structure [1], [9]. The amygdala-orbitofrontal subsystem consists of four parts which interact with each other to form the association between the conditioned and the unconditioned stimuli [1], [9], [11], [12].…”
Section: B Inspired Algorithms By Emotionsmentioning
confidence: 99%
“…Various architectures have been presented to provide computational models of emotional learning [1]- [7]. These models have been applied in numerous applications such as control applications and prediction applications [1]- [10].…”
Section: Introductionmentioning
confidence: 99%
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“…Thus, the suggested algorithm can be used for other combinatorial optimization problems e.g., rate, bandwidth allocation, , traffic scheduling, and multi-channel MAC scheme [18]- [19]. In addition, the obtained results can be compared with a new inspired optimization algorithm that will be suggested based on our pervious work related to brain emotional learning [20]- [22]. suggested algorithm can be part of a joint clustering and channel assignment algorithm in ad hoc networks.…”
Section: Introductionmentioning
confidence: 98%