keyword
https://read.qxmd.com/read/37908836/modeling-the-spatial-spectral-characteristics-of-plants-for-nutrient-status-identification-using-hyperspectral-data-and-deep-learning-methods
#21
JOURNAL ARTICLE
Frank Gyan Okyere, Daniel Cudjoe, Pouria Sadeghi-Tehran, Nicolas Virlet, Andrew B Riche, March Castle, Latifa Greche, Daniel Simms, Manal Mhada, Fady Mohareb, Malcolm John Hawkesford
Sustainable fertilizer management in precision agriculture is essential for both economic and environmental reasons. To effectively manage fertilizer input, various methods are employed to monitor and track plant nutrient status. One such method is hyperspectral imaging, which has been on the rise in recent times. It is a remote sensing tool used to monitor plant physiological changes in response to environmental conditions and nutrient availability. However, conventional hyperspectral processing mainly focuses on either the spectral or spatial information of plants...
2023: Frontiers in Plant Science
https://read.qxmd.com/read/37900733/research-on-the-evolutionary-history-of-the-morphological-structure-of-cotton-seeds-a-new-perspective-based-on-high-resolution-micro-ct-technology
#22
JOURNAL ARTICLE
Yuankun Li, Guanmin Huang, Xianju Lu, Shenghao Gu, Ying Zhang, Dazhuang Li, Minkun Guo, Yongjiang Zhang, Xinyu Guo
Cotton ( Gossypium hirsutum L.) seed morphological structure has a significant impact on the germination, growth and quality formation. However, the wide variation of cotton seed morphology makes it difficult to achieve quantitative analysis using traditional phenotype acquisition methods. In recent years, the application of micro-CT technology has made it possible to analyze the three-dimensional morphological structure of seeds, and has shown technical advantages in accurate identification of seed phenotypes...
2023: Frontiers in Plant Science
https://read.qxmd.com/read/37884685/the-impact-of-burial-depth-on-centaurea-diluta-emergence-and-modelling-of-its-growth-using-a-non-linear-regression-and-artificial-neural-network
#23
JOURNAL ARTICLE
Carlos Sousa-Ortega, Cristina Alcántara, Ramon G Leon, Diego Barranco-Elena, Milagros Saavedra
BACKGROUND: Centaurea diluta Aiton (North African knapweed) is a major weed concern in Spain due to limited herbicides capable of controlling it, and the limited knowledge of its biology hinders the development of integrated weed management strategies. RESULTS: The current study presents results from two experiments that aimed to a) determine the effect of seed burial on seedling emergence; and b) model its phenology progression using sigmoidal (SRM) and artificial neural network models (ANN) based on different cohort emergence times...
October 26, 2023: Pest Management Science
https://read.qxmd.com/read/37882926/prediction-and-balanced-allocation-of-thermal-power-carbon-emissions-from-a-provincial-perspective-of-china
#24
JOURNAL ARTICLE
Zhenyu Zhao, Geriletu Bao, Kun Yang
Carbon control in the thermal power generation industry is crucial for achieving the overall carbon peak target. How to predict, evaluate, and balance the allocation of inter provincial carbon emissions has a significant impact on the decision-making of reasonable allocation of inter provincial carbon emissions in the target year. Therefore, this paper uses Monte Carlo-ARIMA-BP neural network and ZSG-DEA model to conduct temporal trend prediction and carbon emission quota allocation research. We propose the "intra provincial and inter provincial" framework for carbon emissions trading in thermal power plants, which aims to break through the barriers in carbon emission rights exchange among provinces...
October 26, 2023: Environmental Science and Pollution Research International
https://read.qxmd.com/read/37837152/high-order-neural-network-based-multi-model-nonlinear-adaptive-decoupling-control-for-microclimate-environment-of-plant-factory
#25
JOURNAL ARTICLE
Yonggang Wang, Ziqi Chen, Yingchun Jiang, Tan Liu
Plant factory is an important field of practice in smart agriculture which uses highly sophisticated equipment for precision regulation of the environment to ensure crop growth and development efficiently. Environmental factors, such as temperature and humidity, significantly impact crop production in a plant factory. Given the inherent complexities of dynamic models associated with plant factory environments, including strong coupling, strong nonlinearity and multi-disturbances, a nonlinear adaptive decoupling control approach utilizing a high-order neural network is proposed which consists of a linear decoupling controller, a nonlinear decoupling controller and a switching function...
October 8, 2023: Sensors
https://read.qxmd.com/read/37828925/accurate-estimation-of-fractional-vegetation-cover-for-winter-wheat-by-integrated-unmanned-aerial-systems-and-satellite-images
#26
JOURNAL ARTICLE
Songlin Yang, Shanshan Li, Bing Zhang, Ruyi Yu, Cunjun Li, Jinkang Hu, Shengwei Liu, Enhui Cheng, Zihang Lou, Dailiang Peng
Accurate estimation of fractional vegetation cover (FVC) is essential for crop growth monitoring. Currently, satellite remote sensing monitoring remains one of the most effective methods for the estimation of crop FVC. However, due to the significant difference in scale between the coarse resolution of satellite images and the scale of measurable data on the ground, there are significant uncertainties and errors in estimating crop FVC. Here, we adopt a Strategy of Upscaling-Downscaling operations for unmanned aerial systems (UAS) and satellite data collected during 2 growing seasons of winter wheat, respectively, using backpropagation neural networks (BPNN) as support to fully bridge this scale gap using highly accurate the UAS-derived FVC (FVCUAS ) to obtain wheat accurate FVC...
2023: Frontiers in Plant Science
https://read.qxmd.com/read/37771483/fotca-hybrid-transformer-cnn-architecture-using-afno-for-accurate-plant-leaf-disease-image-recognition
#27
JOURNAL ARTICLE
Bo Hu, Wenqian Jiang, Juan Zeng, Chen Cheng, Laichang He
Plants are widely grown around the world and have high economic benefits. plant leaf diseases not only negatively affect the healthy growth and development of plants, but also have a negative impact on the environment. While traditional manual methods of identifying plant pests and diseases are costly, inefficient and inaccurate, computer vision technologies can avoid these drawbacks and also achieve shorter control times and associated cost reductions. The focusing mechanism of Transformer-based models(such as Visual Transformer) improves image interpretability and enhances the achievements of convolutional neural network (CNN) in image recognition, but Visual Transformer(ViT) performs poorly on small and medium-sized datasets...
2023: Frontiers in Plant Science
https://read.qxmd.com/read/37740195/identification-of-plant-vacuole-proteins-by-using-graph-neural-network-and-contact-maps
#28
JOURNAL ARTICLE
Jianan Sui, Jiazi Chen, Yuehui Chen, Naoki Iwamori, Jin Sun
Plant vacuoles are essential organelles in the growth and development of plants, and accurate identification of their proteins is crucial for understanding their biological properties. In this study, we developed a novel model called GraphIdn for the identification of plant vacuole proteins. The model uses SeqVec, a deep representation learning model, to initialize the amino acid sequence. We utilized the AlphaFold2 algorithm to obtain the structural information of corresponding plant vacuole proteins, and then fed the calculated contact maps into a graph convolutional neural network...
September 22, 2023: BMC Bioinformatics
https://read.qxmd.com/read/37726702/prediction-of-plant-secondary-metabolic-pathways-using-deep-transfer-learning
#29
JOURNAL ARTICLE
Han Bao, Jinhui Zhao, Xinjie Zhao, Chunxia Zhao, Xin Lu, Guowang Xu
BACKGROUND: Plant secondary metabolites are highly valued for their applications in pharmaceuticals, nutrition, flavors, and aesthetics. It is of great importance to elucidate plant secondary metabolic pathways due to their crucial roles in biological processes during plant growth and development. However, understanding plant biosynthesis and degradation pathways remains a challenge due to the lack of sufficient information in current databases. To address this issue, we proposed a transfer learning approach using a pre-trained hybrid deep learning architecture that combines Graph Transformer and convolutional neural network (GTC) to predict plant metabolic pathways...
September 19, 2023: BMC Bioinformatics
https://read.qxmd.com/read/37692104/detection-and-reconstruction-of-passion-fruit-branches-via-cnn-and-bidirectional-sector-search
#30
JOURNAL ARTICLE
Jiangchuan Bao, Guo Li, Haolan Mo, Tingting Qian, Ming Chen, Shenglian Lu
Accurate detection and reconstruction of branches aid the accuracy of harvesting robots and extraction of plant phenotypic information. However, the complex orchard background and twisting growing branches of vine fruit trees make this challenging. To solve these problems, this study adopted a Mask Region-based convolutional neural network (Mask R-CNN) architecture incorporating deformable convolution to segment branches in complex backgrounds. Based on the growth posture, a branch reconstruction algorithm with bidirectional sector search was proposed to adaptively reconstruct the segmented branches obtained by an improved model...
2023: Plant phenomics: a science partner journal
https://read.qxmd.com/read/37667292/establishment-of-an-npk-nutrient-monitor-system-in-yield-graded-cotton-petioles-under-drip-irrigation
#31
JOURNAL ARTICLE
Zhiqiang Dong, Yang Liu, Minghua Li, Baoxia Ci, Xiaokang Feng, Shuai Wen, Xi Lu, Zheng He, Fuyu Ma
BACKGROUND: The determination of nutrient content in the petiole is one of the important methods for achieving cotton fertilization management. The establishment of a monitoring system for the nutrient content of cotton petioles during important growth periods under drip irrigation is of great significance for achieving precise fertilization and environmental protection. METHODS: A total of 100 cotton fields with an annual yield of 4500-7500 kg/ha were selected among the main cotton-growing areas of Northern Xinjiang...
September 4, 2023: Plant Methods
https://read.qxmd.com/read/37653952/machine-learning-methods-for-automatic-segmentation-of-images-of-field-and-glasshouse-based-plants-for-high-throughput-phenotyping
#32
JOURNAL ARTICLE
Frank Gyan Okyere, Daniel Cudjoe, Pouria Sadeghi-Tehran, Nicolas Virlet, Andrew B Riche, March Castle, Latifa Greche, Fady Mohareb, Daniel Simms, Manal Mhada, Malcolm John Hawkesford
Image segmentation is a fundamental but critical step for achieving automated high- throughput phenotyping. While conventional segmentation methods perform well in homogenous environments, the performance decreases when used in more complex environments. This study aimed to develop a fast and robust neural-network-based segmentation tool to phenotype plants in both field and glasshouse environments in a high-throughput manner. Digital images of cowpea (from glasshouse) and wheat (from field) with different nutrient supplies across their full growth cycle were acquired...
May 19, 2023: Plants (Basel, Switzerland)
https://read.qxmd.com/read/37549156/comprehensive-approaches-for-assessing-extinction-risk-of-endangered-tropical-pitcher-plant-nepenthes-talangensis
#33
JOURNAL ARTICLE
Angga Yudaputra, Inggit Puji Astuti, Tri Handayani, Hartutiningsih Siregar, Iyan Robiansyah, Sri Wahyuni, Arief Noor Rachmadiyanto, Danang Wahyu Purnomo, Vandra Kurniawan, Yupi Isnaini, Frisca Damayanti, Rizmoon Nurul Zulkarnaen, Joko Ridho Witono, Izu Andry Fijridiyanto, Yuzammi, Arief Hidayat, Mustaid Siregar, Esti Munawaroh, Fitriany Amalia Wardhani, Puguh Dwi Raharjo, Ana Widiana, Wendell P Cropper
It has been 23 years since the conservation status of highland tropical pitcher plant Nepenthes talangensis was assessed in 2000. A number of existing threats (anthropogenic and environmental) may be increasing the risk of extinction for the species. A better understanding of the ecology and conservation needs of the species is required to manage the wild populations. Specifically, better information related to population distributions, ecological requirements, priority conservation areas, the impact of future climate on suitable habitat, and current population structure is needed to properly assess extinction risks...
2023: PloS One
https://read.qxmd.com/read/37528396/prediction-and-optimization-of-indirect-shoot-regeneration-of-passiflora-caerulea-using-machine-learning-and-optimization-algorithms
#34
JOURNAL ARTICLE
Marziyeh Jafari, Mohammad Hosein Daneshvar
BACKGROUND: Optimization of indirect shoot regeneration protocols is one of the key prerequisites for the development of Agrobacterium-mediated genetic transformation and/or genome editing in Passiflora caerulea. Comprehensive knowledge of indirect shoot regeneration and optimized protocol can be obtained by the application of a combination of machine learning (ML) and optimization algorithms. MATERIALS AND METHODS: In the present investigation, the indirect shoot regeneration responses (i...
August 1, 2023: BMC Biotechnology
https://read.qxmd.com/read/37514311/regionally-compatible-individual-tree-growth-model-under-the-combined-influence-of-environment-and-competition
#35
JOURNAL ARTICLE
Wenjie Zhang, Baoguo Wu, Yi Ren, Guijun Yang
To explore the effects of competition, site, and climate on the growth of Chinese fir individual tree diameter at breast height (DBH) and tree height (H), a regionally compatible individual tree growth model under the combined influence of environment and competition was constructed. Using continuous forest inventory (CFI) sample plot data from Fujian Province between 1993 and 2018, we constructed an individual tree DBH model and an H model based on re-parameterization (RP), BP neural network (BP), and random forest (RF), which compared the accuracy of the different modeling methods...
July 19, 2023: Plants (Basel, Switzerland)
https://read.qxmd.com/read/37447089/non-invasive-assessment-classification-and-prediction-of-biophysical-parameters-using-reflectance-hyperspectroscopy
#36
JOURNAL ARTICLE
Renan Falcioni, Glaucio Leboso Alemparte Abrantes Dos Santos, Luis Guilherme Teixeira Crusiol, Werner Camargos Antunes, Marcelo Luiz Chicati, Roney Berti de Oliveira, José A M Demattê, Marcos Rafael Nanni
Hyperspectral technology offers significant potential for non-invasive monitoring and prediction of morphological parameters in plants. In this study, UV-VIS-NIR-SWIR reflectance hyperspectral data were collected from Nicotiana tabacum L. plants using a spectroradiometer. These plants were grown under different light and gibberellic acid (GA3 ) concentrations. Through spectroscopy and multivariate analyses, key growth parameters, such as height, leaf area, energy yield, and biomass, were effectively evaluated based on the interaction of light with leaf structures...
July 2, 2023: Plants (Basel, Switzerland)
https://read.qxmd.com/read/37369670/robotic-monitoring-of-grasslands-a-dataset-from-the-eu-natura2000-habitat-6210-in-the-central-apennines-italy
#37
JOURNAL ARTICLE
Franco Angelini, Mathew J Pollayil, Federica Bonini, Daniela Gigante, Manolo Garabini
Despite the remarkable growth of the global market for robotics, robotic monitoring of habitats is still an understudied topic. This is true, among others, for the species-rich EU Annex I habitat "6210 - Semi-natural grasslands and scrubland facies on calcareous substrates". This habitat is typically surveyed by human operators. In this work, we present a dataset concerning relevés performed through the quadrupedal robot ANYmal C. The dataset contains information from three plots, which include the robot state, videos, and images acquired to assess the habitat conservation status...
June 27, 2023: Scientific Data
https://read.qxmd.com/read/37355625/detection-of-reed-using-cnn-method-and-analysis-of-the-dry-reed-phragmites-australis-for-a-sustainable-lake-area
#38
JOURNAL ARTICLE
Cristian Dragos Obreja, Daniela Laura Buruiana, Elena Mereuta, Alina Muresan, Alina Mihaela Ceoromila, Viorica Ghisman, Roxana Elena Axente
BACKGROUND: Common reed (Phragmites australis L.) is a highly productive wetland plant and a possible valuable resource of renewable biomass worldwide. For a sustainable management the exploitation of reed is beneficial because the increasing demand for sustainable biomass which presents reed bed areas and wetlands. Knowing the properties of plant biomass obtained from reeds is essential both for the effect on combustion equipment and for the impact on the environment. Brates Lake, situated in Galati, Romania is a natural watershed with reed plantations...
June 24, 2023: Plant Methods
https://read.qxmd.com/read/37332711/estimation-of-rice-seedling-growth-traits-with-an-end-to-end-multi-objective-deep-learning-framework
#39
JOURNAL ARTICLE
Ziran Ye, Xiangfeng Tan, Mengdi Dai, Yue Lin, Xuting Chen, Pengcheng Nie, Yunjie Ruan, Dedong Kong
In recent years, rice seedling raising factories have gradually been promoted in China. The seedlings bred in the factory need to be selected manually and then transplanted to the field. Growth-related traits such as height and biomass are important indicators for quantifying the growth of rice seedlings. Nowadays, the development of image-based plant phenotyping has received increasing attention, however, there is still room for improvement in plant phenotyping methods to meet the demand for rapid, robust and low-cost extraction of phenotypic measurements from images in environmentally-controlled plant factories...
2023: Frontiers in Plant Science
https://read.qxmd.com/read/37332705/a-vis-nir-spectra-based-approach-for-identifying-bananas-infected-with-colletotrichum-musae
#40
JOURNAL ARTICLE
Xuan Chu, Kun Zhang, Hongyu Wei, Zhiyu Ma, Han Fu, Pu Miao, Hongzhe Jiang, Hongli Liu
INTRODUCTION: Anthracnose of banana caused by Colletotrichum species is one of the most serious post-harvest diseases, which can cause significant yield losses. Clarifying the infection mechanism of the fungi using non-destructive methods is crucial for timely discriminating infected bananas and taking preventive and control measures. METHODS: This study presented an approach for tracking growth and identifying different infection stages of the C. musae in bananas using Vis/NIR spectroscopy...
2023: Frontiers in Plant Science
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