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STUDIES ON CLASSIFICATION OF THE GENUS MAUR YA FROM CHINA (Homoptera: Membracidae) 被引量:1
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《Entomotaxonomia》 1988年第Z2期267-270,共4页
In the present paper, the history of the research on classification of the genus Maurya Distant is recalled and 11 species from China belonging to it are noted. Of them, 7 are new to science. Type specimens are kept i... In the present paper, the history of the research on classification of the genus Maurya Distant is recalled and 11 species from China belonging to it are noted. Of them, 7 are new to science. Type specimens are kept in the Entomological Museumof Northwestern Agricultural University, expect those whose depositions are noticed. 展开更多
关键词 Wang STUDIES ON classification OF THE GENUS MAUR YA FROM CHINA HOMOPTERA MEMBRACIDAE
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Plant trait estimation and classification studies in plant phenotyping using machine vision - A review 被引量:6
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作者 Shrikrishna Kolhar Jayant Jagtap 《Information Processing in Agriculture》 EI CSCD 2023年第1期114-135,共22页
Today there is a rapid development taking place in phenotyping of plants using non-destructive image based machine vision techniques.Machine vision based plant phenotyping ranges from single plant trait estimation to ... Today there is a rapid development taking place in phenotyping of plants using non-destructive image based machine vision techniques.Machine vision based plant phenotyping ranges from single plant trait estimation to broad assessment of crop canopy for thousands of plants in the field.Plant phenotyping systems either use single imaging method or integrative approach signifying simultaneous use of some of the imaging techniques like visible red,green and blue(RGB)imaging,thermal imaging,chlorophyll fluorescence imaging(CFIM),hyperspectral imaging,3-dimensional(3-D)imaging or high resolution volumetric imaging.This paper provides an overview of imaging techniques and their applications in the field of plant phenotyping.This paper presents a comprehensive survey on recent machine vision methods for plant trait estimation and classification.In this paper,information about publicly available datasets is provided for uniform comparison among the state-of-the-art phenotyping methods.This paper also presents future research directions related to the use of deep learning based machine vision algorithms for structural(2-D and 3-D),physiological and temporal trait estimation,and classification studies in plants. 展开更多
关键词 Plant phenotyping Machine vision Plant trait estimation Imaging techniques Leaf segmentation and counting Plant classification studies
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