A Decentralized Semantic Reasoning Approach for the Detection and Representation of Continuous Spatial Dynamic Phenomena in Wireless Sensor Networks
In this paper, we propose a decentralized semantic reasoning approach for modeling vague spatial objects from sensor network data describing vague shape phenomena, such as forest fire, air pollution, traffic noise, etc. This is a challenging problem as it necessitates appropriate aggregation of sens...
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doaj-dc9b1b4498f34112b83d3185623897d22021-03-20T00:05:06ZengMDPI AGISPRS International Journal of Geo-Information2220-99642021-03-011018218210.3390/ijgi10030182A Decentralized Semantic Reasoning Approach for the Detection and Representation of Continuous Spatial Dynamic Phenomena in Wireless Sensor NetworksRoger Cesarié Ntankouo Njila0Mir Abolfazl Mostafavi1Jean Brodeur2Centre de Recherche en Données et Intelligence géOspatiales (CRDIG), 0611 Pavillon Casault Université Laval, Québec City, QC G1K 7P4, CanadaCentre de Recherche en Données et Intelligence géOspatiales (CRDIG), 0611 Pavillon Casault Université Laval, Québec City, QC G1K 7P4, CanadaGéoSémantic Research, Sherbrooke, QC J1L 1W8, CanadaIn this paper, we propose a decentralized semantic reasoning approach for modeling vague spatial objects from sensor network data describing vague shape phenomena, such as forest fire, air pollution, traffic noise, etc. This is a challenging problem as it necessitates appropriate aggregation of sensor data and their update with respect to the evolution of the state of the phenomena to be represented. Sensor data are generally poorly provided in terms of semantic information. Hence, the proposed approach starts with building a knowledge base integrating sensor and domain ontologies and then uses fuzzy rules to extract three-valued spatial qualitative information expressing the relative position of each sensor with respect to the monitored phenomenon’s extent. The observed phenomena are modeled using a fuzzy-crisp type spatial object made of a kernel and a conjecture part, which is a more realistic spatial representation for such vague shape environmental phenomena. The second step of our approach uses decentralized computing techniques to infer boundary detection and vertices for the kernel and conjecture parts of spatial objects using fuzzy IF-THEN rules. Finally, we present a case study for urban noise pollution monitoring by a sensor network, which is implemented in Netlogo to illustrate the validity of the proposed approach.https://www.mdpi.com/2220-9964/10/3/182sensor networkenvironmental monitoringvague spatial objectthree-valued logicfuzzy reasoning |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Roger Cesarié Ntankouo Njila Mir Abolfazl Mostafavi Jean Brodeur |
spellingShingle |
Roger Cesarié Ntankouo Njila Mir Abolfazl Mostafavi Jean Brodeur A Decentralized Semantic Reasoning Approach for the Detection and Representation of Continuous Spatial Dynamic Phenomena in Wireless Sensor Networks ISPRS International Journal of Geo-Information sensor network environmental monitoring vague spatial object three-valued logic fuzzy reasoning |
author_facet |
Roger Cesarié Ntankouo Njila Mir Abolfazl Mostafavi Jean Brodeur |
author_sort |
Roger Cesarié Ntankouo Njila |
title |
A Decentralized Semantic Reasoning Approach for the Detection and Representation of Continuous Spatial Dynamic Phenomena in Wireless Sensor Networks |
title_short |
A Decentralized Semantic Reasoning Approach for the Detection and Representation of Continuous Spatial Dynamic Phenomena in Wireless Sensor Networks |
title_full |
A Decentralized Semantic Reasoning Approach for the Detection and Representation of Continuous Spatial Dynamic Phenomena in Wireless Sensor Networks |
title_fullStr |
A Decentralized Semantic Reasoning Approach for the Detection and Representation of Continuous Spatial Dynamic Phenomena in Wireless Sensor Networks |
title_full_unstemmed |
A Decentralized Semantic Reasoning Approach for the Detection and Representation of Continuous Spatial Dynamic Phenomena in Wireless Sensor Networks |
title_sort |
decentralized semantic reasoning approach for the detection and representation of continuous spatial dynamic phenomena in wireless sensor networks |
publisher |
MDPI AG |
series |
ISPRS International Journal of Geo-Information |
issn |
2220-9964 |
publishDate |
2021-03-01 |
description |
In this paper, we propose a decentralized semantic reasoning approach for modeling vague spatial objects from sensor network data describing vague shape phenomena, such as forest fire, air pollution, traffic noise, etc. This is a challenging problem as it necessitates appropriate aggregation of sensor data and their update with respect to the evolution of the state of the phenomena to be represented. Sensor data are generally poorly provided in terms of semantic information. Hence, the proposed approach starts with building a knowledge base integrating sensor and domain ontologies and then uses fuzzy rules to extract three-valued spatial qualitative information expressing the relative position of each sensor with respect to the monitored phenomenon’s extent. The observed phenomena are modeled using a fuzzy-crisp type spatial object made of a kernel and a conjecture part, which is a more realistic spatial representation for such vague shape environmental phenomena. The second step of our approach uses decentralized computing techniques to infer boundary detection and vertices for the kernel and conjecture parts of spatial objects using fuzzy IF-THEN rules. Finally, we present a case study for urban noise pollution monitoring by a sensor network, which is implemented in Netlogo to illustrate the validity of the proposed approach. |
topic |
sensor network environmental monitoring vague spatial object three-valued logic fuzzy reasoning |
url |
https://www.mdpi.com/2220-9964/10/3/182 |
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