2022
DOI: 10.1155/2022/4751196
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Image Target Detection and Recognition Method Using Deep Learning

Abstract: Image target detection and recognition had been widely used in many fields. However, the existing methods had poor robustness; they not only had high error rate of target recognition but also had high dependence on parameters, so they were limited in application. Therefore, this paper proposed an image target detection and recognition method based on the improved R-CNN model, so as to detect and recognize the dynamic image target in real time. Based on the analysis of the existing theories of deep learning det… Show more

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“…However, the robustness of existing methods is poor with a high error rate in target recognition and high dependence on parameters, thus they are limited in application. Therefore, an image target detection and recognition method based on an improved R-CNN model is proposed in the reference [22] in an effort to detect and recognize dynamic image targets in real time. In order to improve the accuracy and real-time performance of the model in image target detection and recognition, a target feature matching module is used in the existing R-CNN network model and a feature map close to the same target is obtained by calculating the similarity of the features extracted from the model.…”
Section: Introductionmentioning
confidence: 99%
“…However, the robustness of existing methods is poor with a high error rate in target recognition and high dependence on parameters, thus they are limited in application. Therefore, an image target detection and recognition method based on an improved R-CNN model is proposed in the reference [22] in an effort to detect and recognize dynamic image targets in real time. In order to improve the accuracy and real-time performance of the model in image target detection and recognition, a target feature matching module is used in the existing R-CNN network model and a feature map close to the same target is obtained by calculating the similarity of the features extracted from the model.…”
Section: Introductionmentioning
confidence: 99%