2021
DOI: 10.3390/s21051863
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Dempster–Shafer Theory for Modeling and Treating Uncertainty in IoT Applications Based on Complex Event Processing

Abstract: The Internet of Things (IoT) has emerged from the proliferation of mobile devices and objects connected, resulting in the acquisition of periodic event flows from different devices and sensors. However, such sensors and devices can be faulty or affected by failures, have poor calibration, and produce inaccurate data and uncertain event flows in IoT applications. A prominent technique for analyzing event flows is Complex Event Processing (CEP). Uncertainty in CEP is usually observed in primitive events (i.e., s… Show more

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Cited by 12 publications
(5 citation statements)
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“…3(b)? In our proposal, we apply the DS evidence theory to reduce redundant information and improve the reliability of inference based on collected data from the external environment [17,18,22]. According to DS reasoning, all mutually exclusive events have the same style are enumerated in "a finite set ñ".…”
Section: B Dempster-shafer Theorymentioning
confidence: 99%
See 1 more Smart Citation
“…3(b)? In our proposal, we apply the DS evidence theory to reduce redundant information and improve the reliability of inference based on collected data from the external environment [17,18,22]. According to DS reasoning, all mutually exclusive events have the same style are enumerated in "a finite set ñ".…”
Section: B Dempster-shafer Theorymentioning
confidence: 99%
“…DS has also given a rule of combining for fusing (õ) two sensor sources called m 12 (A) with the subset A b ö and m 12 (ö)=0 [18]. (12) For example, as shown in Fig.…”
Section: B Dempster-shafer Theorymentioning
confidence: 99%
“…In this classifier, the features are then converted into mass functions and aggregated by Dempster's rule in a DS layer. In [33], DST was used to model and manage uncertainties in applications on the IoT (the Internet of Things, viz., worldwide arrays of sensors and other devices that are connected to the internet and with one another to share data). Such applications are based upon complex event processing.…”
Section: State Of the Artmentioning
confidence: 99%
“…To solve these problems, a data-driven risk assessment model, based on Dempster-Shafer evidence theory (DST) [20,21], Deng entropy [22] and risk matrix [23], is proposed. Due to effectively deal with uncertain information, DST is widely used in decisionmaking [24][25][26], risk analysis [27], information fusion [28,29], uncertainty measurements [30], fault diagnosis [31][32][33], time-series [34], IoT applications [35] and many other fields [36,37]. Since most experts prefer to express their opinions with linguistic information, such as good, better, best, bad, worse, worst, DST can effectively deal with uncertain information about linguistic expressions involved in risk evaluation [38,39].…”
Section: Introductionmentioning
confidence: 99%