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Introduction: Sorghum is an important food and feed crop. Identifying sorghum seed varieties is crucial for ensuring seed quality, improving planting efficiency, and promoting sustainable agricultural development.
Methods: This study proposes a high-precision classification method based on the fusion of RGB images and hyperspectral data, using an improved deep residual convolutional neural network. A spectrogram fusion dataset containing 12,800 seeds from eight sorghum varieties was constructed. The network was enhanced by integrating depthwise separable convolution (DSC) and the Convolutional Block Attention Module (CBAM) into the ResNet50 framework.
Results: The CBAM-ResNet50-DSC model demonstrated outstanding performance, achieving a classification accuracy of 94.84%, specificity of 99.20%, recall of 94.39%, precision of 94.52%, and an F1-score of 0.9438 on the fusion dataset.
Discussion: These results confirm that the proposed model can accurately and non-destructively classify sorghum seed varieties. The method offers a dependable and efficient approach for seed screening and has practical value in agricultural applications.
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http://www.ncbi.nlm.nih.gov/pmc/articles/PMC12412220 | PMC |
http://dx.doi.org/10.3389/fpls.2025.1632698 | DOI Listing |
Front Plant Sci
August 2025
Jilin Academy of Agricultural Sciences Peanut Institute, Gongzhuling, Jilin, China.
Introduction: Sorghum is an important food and feed crop. Identifying sorghum seed varieties is crucial for ensuring seed quality, improving planting efficiency, and promoting sustainable agricultural development.
Methods: This study proposes a high-precision classification method based on the fusion of RGB images and hyperspectral data, using an improved deep residual convolutional neural network.
Sorghum is one of the critical food security crops, particularly in moisture-stressed areas of Ethiopia. However, in the absence of a well-organized formal seed system, public research institutions have continued to promote and disseminate improved sorghum varieties to encourage adoption. On the other hand, the lack of evidence on smallholder farmers' demand for improved varieties has discouraged the seed industry from investing in marginalized crops, like sorghum, in contrast to more commercialized crops such as wheat and maize.
View Article and Find Full Text PDFThe study evaluated the carcass performances and meat quality of yearling Horro rams with an initial body weight of 25.35 ± 2.34 kg (mean ± SD) under different feeding regimes.
View Article and Find Full Text PDFPest Manag Sci
September 2025
Department of Plant and Environmental Health, Anhui Provincial Key Laboratory of Hazardous Factors and Risk Control of Agri-food Quality Safety, Anhui Agricultural University, Hefei, China.
Background: Phytohormones regulate plant growth, development, and stress responses. Strigolactones are a class of phytohormones that have attracted significant scientific interest because of their multifunctional roles in plant biology and ecological interactions.
Results: In this study, 34 strigolactone mimics were efficiently synthesized by substituting pre-synthesized 5-chloro-3-methylfuran-2(5H)-one with phenolics and benzenethiols.
Plants (Basel)
August 2025
State Key Laboratory of Crop Stress Biology in Arid Areas, College of Agronomy, Northwest A&F University, Yangling 712000, China.
Studying comprehensive performance is fundamental for the effective utilisation of broomcorn millet ( L.) germplasm resources and breeding of new varieties. However, compared with other major crops, research on broomcorn millet germplasm resources is limited, and the trait variations of broomcorn millet are unclear.
View Article and Find Full Text PDF