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蕨菜的三种加工方法
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作者 赵利田 《中小企业管理与科技》 2005年第3期46-46,共1页
4—6月份当蕨菜嫩薹高20—25厘米且叶苞未展开时,自地面处将其摘下。为防止蕨菜离土老化要求基都沾着泥土装筐。筐底预先铺上一层青草,以免挤烂底层蕨莱而引起变色。绿色和紫色的薹茎应分别装筐。箩筐装满后,表面再用青草覆盖,避免... 4—6月份当蕨菜嫩薹高20—25厘米且叶苞未展开时,自地面处将其摘下。为防止蕨菜离土老化要求基都沾着泥土装筐。筐底预先铺上一层青草,以免挤烂底层蕨莱而引起变色。绿色和紫色的薹茎应分别装筐。箩筐装满后,表面再用青草覆盖,避免阳光直射而加速纤维老化。 展开更多
关键词 蕨菜 加工方法 腌制方法 盐渍方法
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A Method of Soil Salinization Information Extraction with SVM Classification Based on ICA and Texture Features 被引量:3
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作者 ZHANG Fei TASHPOLAT Tiyip +5 位作者 KUNG Hsiang-te DING Jian-li MAMAT.Sawut VERNER Johnson HAN Gui-hong GUI Dong-wei 《Agricultural Science & Technology》 CAS 2011年第7期1046-1049,1074,共5页
Salt-affected soils classification using remotely sensed images is one of the most common applications in remote sensing,and many algorithms have been developed and applied for this purpose in the literature.This stud... Salt-affected soils classification using remotely sensed images is one of the most common applications in remote sensing,and many algorithms have been developed and applied for this purpose in the literature.This study takes the Delta Oasis of Weigan and Kuqa Rivers as a study area and discusses the prediction of soil salinization from ETM +Landsat data.It reports the Support Vector Machine(SVM) classification method based on Independent Component Analysis(ICA) and Texture features.Meanwhile,the letter introduces the fundamental theory of SVM algorithm and ICA,and then incorporates ICA and texture features.The classification result is compared with ICA-SVM classification,single data source SVM classification,maximum likelihood classification(MLC) and neural network classification qualitatively and quantitatively.The result shows that this method can effectively solve the problem of low accuracy and fracture classification result in single data source classification.It has high spread ability toward higher array input.The overall accuracy is 98.64%,which increases by10.2% compared with maximum likelihood classification,even increases by 12.94% compared with neural net classification,and thus acquires good effectiveness.Therefore,the classification method based on SVM and incorporating the ICA and texture features can be adapted to RS image classification and monitoring of soil salinization. 展开更多
关键词 Independent component analysis(ICA) Texture features Support vector machine(SVM) Soil salinizaiton
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