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Published on: February 9, 2024
Papaver somniferum and Papaver rhoeas Classification Based on Visible Capsule Images Using a Modified
Jin Zhu1,2, Chuanhui Zhang1, Changjiang Zhang2
1College of Physics and Electronic Information Engineering, Zhejiang Normal University, Jinhua 321000, China.
Abstract:
Traditional identification methods for Papaver somniferum and Papaver rhoeas (PSPR) consume much time and labor, require strict experimental conditions, and usually cause damage to the plant. This work presents a novel method for fast, accurate, and nondestructive identification of PSPR. First, to fill the gap in the PSPR dataset, we construct a PSPR visible capsule image dataset. Second, we propose a modified MobileNetV3-Small network with transfer learning, and we solve the problem of low classification accuracy and slow model convergence due to the small number of PSPR capsule image samples. Experimental results demonstrate that the modified MobileNetV3-Small is effective for fast, accurate, and nondestructive PSPR classification.

