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锗毒性对四种微藻形态和超微结构的影响 被引量:8
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作者 王大志 高亚辉 +2 位作者 程兆第 李少菁 金德祥 《中国环境科学》 EI CAS CSSCI CSCD 北大核心 1998年第6期501-505,共5页
将钝顶螺旋藻(Spirulinaplatensis)、盐生杜氏藻(Dunalielasalina)、湛江叉鞭金藻(Dicrateriazhanjiangensis)、微绿藻(Nannochloropsis.sp)4... 将钝顶螺旋藻(Spirulinaplatensis)、盐生杜氏藻(Dunalielasalina)、湛江叉鞭金藻(Dicrateriazhanjiangensis)、微绿藻(Nannochloropsis.sp)4种微藻培养在含10mg/dm3锗的溶液中,研究了锗毒性对藻类细胞形态和超微结构的影响。结果表明,经锗处理的微藻细胞多变形且易破裂,胞壁和原生质体结合疏松,一些细胞的鞭毛变得细长弯曲或缺失。细胞超微结构中叶绿体(类囊体)、线粒体受锗毒性的影响最大,其它一些结构如细胞核、脂含物、淀粉与液泡等也受到了影响,但不同种间差异较大。这些结果表明,细胞内的能量传递系统受到明显影响,从而影响到细胞内有机质的合成。 展开更多
关键词 毒性 微藻形态 超微结构
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Automatic cell object extraction of red tide algae in microscopic images
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作者 于堃 姬光荣 郑海永 《Chinese Journal of Oceanology and Limnology》 SCIE CAS CSCD 2017年第2期275-293,共19页
Extracting the cell objects of red tide algae is the most important step in the construction of an automatic microscopic image recognition system for harmful algal blooms.This paper describes a set of composite method... Extracting the cell objects of red tide algae is the most important step in the construction of an automatic microscopic image recognition system for harmful algal blooms.This paper describes a set of composite methods for the automatic segmentation of cells of red tide algae from microscopic images.Depending on the existence of setae,we classify the common marine red tide algae into non-setae algae species and Chaetoceros,and design segmentation strategies for these two categories according to their morphological characteristics.In view of the varied forms and fuzzy edges of non-setae algae,we propose a new multi-scale detection algorithm for algal cell regions based on border-correlation,and further combine this with morphological operations and an improved GrabCut algorithm to segment single-cell and multicell objects.In this process,similarity detection is introduced to eliminate the pseudo cellular regions.For Chaetoceros,owing to the weak grayscale information of their setae and the low contrast between the setae and background,we propose a cell extraction method based on a gray surface orientation angle model.This method constructs a gray surface vector model,and executes the gray mapping of the orientation angles.The obtained gray values are then reconstructed and linearly stretched.Finally,appropriate morphological processing is conducted to preserve the orientation information and tiny features of the setae.Experimental results demonstrate that the proposed methods can effectively remove noise and accurately extract both categories of algae cell objects possessing a complete shape,regular contour,and clear edge.Compared with other advanced segmentation techniques,our methods are more robust when considering images with different appearances and achieve more satisfactory segmentation effects. 展开更多
关键词 non-setae algae CHAETOCEROS cell extraction border-correlation non-interactive GrabCut
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