Research on control strategy of multi-source data fusion solar intelligent vehicle based on image recognition

Abstract Nowadays, the global energy and environmental problems are becoming more and more serious, which promotes the development and utilization of renewable and clean energy in various countries. Intelligent car involves many subjects such as electronic technology, artificial intelligence, automa...

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Bibliographic Details
Published inInternational journal of low carbon technologies Vol. 16; no. 4; pp. 1363 - 1370
Main Author Zhang, Lulin
Format Journal Article
LanguageEnglish
Published Manchester Oxford University Press 01.12.2021
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Summary:Abstract Nowadays, the global energy and environmental problems are becoming more and more serious, which promotes the development and utilization of renewable and clean energy in various countries. Intelligent car involves many subjects such as electronic technology, artificial intelligence, automatic control technology, sensor technology and computer technology and has become an important part of the application of artificial intelligence. Solar cell is a necessary part of the normal operation of the solar intelligent car, which can provide clean energy for the intelligent car. In this paper, the image recognition technology is used to design the intelligent vehicle control system. According to the intelligent vehicle path recognition, the scale invariant feature transform (SIFT) algorithm is improved to improve the accuracy of intelligent vehicle recognition. Data fusion is used to process the data detected by multi-sensor, and the running state of intelligent vehicle is studied. An evaluation method of intelligent vehicle navigation parameters based on association rules and belief network is proposed. The maximum power point tracking control is realized by using the interference observation method to ensure that the intelligent vehicle can track the maximum power point of the solar cell.
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ISSN:1748-1325
1748-1317
1748-1325
DOI:10.1093/ijlct/ctab057