首页 | 本学科首页   官方微博 | 高级检索  
文章检索
  按 检索   检索词:      
出版年份:   被引次数:   他引次数: 提示:输入*表示无穷大
  收费全文   244篇
  免费   14篇
  国内免费   46篇
  2023年   4篇
  2022年   7篇
  2021年   10篇
  2020年   12篇
  2019年   6篇
  2018年   6篇
  2017年   7篇
  2016年   10篇
  2015年   11篇
  2014年   13篇
  2013年   21篇
  2012年   7篇
  2011年   11篇
  2010年   13篇
  2009年   13篇
  2008年   4篇
  2007年   14篇
  2006年   14篇
  2005年   6篇
  2004年   9篇
  2003年   15篇
  2002年   11篇
  2001年   7篇
  2000年   5篇
  1999年   10篇
  1998年   2篇
  1996年   6篇
  1995年   7篇
  1994年   3篇
  1993年   5篇
  1992年   3篇
  1991年   4篇
  1990年   4篇
  1989年   1篇
  1988年   1篇
  1987年   2篇
  1986年   4篇
  1985年   5篇
  1984年   1篇
  1982年   3篇
  1980年   2篇
  1979年   1篇
  1978年   1篇
  1977年   1篇
  1973年   2篇
排序方式: 共有304条查询结果,搜索用时 31 毫秒
51.
Summary Existing theoretical models have led to conflicting predictions concerning the likely effect of the widespread use of dirty crop multilines on the evolution of virulence in pathogen populations. Here we attempt to clarify these problems by extending existing models to include selection against unnecessary genes for virulence at two different stages in the life cycle of the pathogen. The results of these studies indicate that the stage of the life cycle at which selection occurs can significantly influence the evolution of virulence in pathogen populations growing on multiline varieties.  相似文献   
52.
小麦品种抗性对麦长管蚜种群增长的影响   总被引:10,自引:2,他引:8  
高崇省 《昆虫知识》1994,31(4):201-205
本研究采用室内、外结合的方法,分苗期和拔节期,对大田抗蚜性鉴定中表现不同的10个小麦品种的抗性对麦长管蚜种群增长的影响进行了研究。研究结果显示,品种抗性对麦长管蚜的存活率、发育进度、繁殖力有一致的抑制作用;品种间抗蚜性存在显著差异。同时通过组建不同品种上麦长管蚜繁殖特征生命表,从量的角度揭示了小麦品种抗性与麦长管蚜种群增长之间的关系。  相似文献   
53.
茶叶中硒素总量测定结果表明:土壤含硒量的高低是直接影响茶叶中硒的总量。茶树根、茎、叶、果中均有硒元素,叶片是茶硒积累的主要器官,尤其是老叶,其含量是嫩叶的几倍.茶树品种间含量的差异显著,最大差异达10倍以上.毛茶加工的成品茶含硒量受加工技术措施影响较大,其不同等级的含硒量与级别没有线性关系.  相似文献   
54.
Summary A theoretical investigation was made to ascertain the effects of random and non-random deviations, called errors, of phenotypic from genotypic values on population means and on the response to phenotypic recurrent selection. The study was motivated as a selection experiment for disease resistance where there was either variability in the inoculation or environment (the random errors) or where the inoculation was above or below the the optimum rate where genetic differences in resistance are maximized (the non-random errors). The study was limited to the genetics at a diallelic locus (alleles B and b) in an autotetraploid population in random mating equilibrium. The response to selection was measured as the covariance of selection and compared to the exact covariance which was the covariance of selection without errors in phenotype. The random errors were modeled by assuming that a given percentage () of the population was uniformly distributed among the five possible genotype classes independent of their true genotypes. This model was analyzed numerically for a theoretical population with the frequency of the B allele (p) ranging from 0.0 to 1.0 and assumed errors of=0.1 and 0.5 for the following six types of genic action of the B allele: additive, monoplex dominance, partial monoplex dominance, duplex dominance, partial duplex dominance, and recessive. The effect of random error was to consistently reduce the response to selection by a percentage independent of the type of genic action at the locus. The effect on the population mean was an upward bias when p was low and a downward bias when p approached unity. In the non-random error model below optimum inoculations altered the phenotypes by systematically including percentage of susceptible genotypes into one or more other genotype classes with more genetic resistance (a positive shift). With above optimum inoculations, some resistant genotypes are classed with the non-resistant genotypes (a negative shift). The effects on the covariance of selection were found by numerical analysis for the same types of genic action and's as investigated for random error. With a negative shift and a low p, the covariance of selection was always reduced, but for an increasing p the covariance approached and exceeded the exact covariance for all types of genic action except additive. With a positive shift and a low p, response to selection was greatly improved for three types of genic action: duplex dominance, partial duplex dominance, and recessive. The effect of a non-random error on population means was to greatly bias the means upwards for a low p and positive shift, but with increasing p the bias decreased. A relatively slight decrease in the mean occurred with a negative shift. This study indicated check varieties commonly used to monitor selection pressures in screening programs are very responsive to positive non-random shifts, but are relatively unresponsive to negative shifts. The interaction of selection pressure, types of genic action, and genotypes in the class shift models was suggested as a partial explanation for the lack of response to increasing selection pressures observed in some breeding programs.Cooperative investigations of the Alfalfa Production Research Unit, United States Department of Agriculture, Agricultural Research Service, and the Nevada Agricultural Experiment Station, Reno, Nevada. Paper No. 404 Scientific Journal Series. Nevada Agricultural Experiment Station  相似文献   
55.
Summary A general model for the evolution of pathogen populations on mixtures or multilines is developed. This model is used to extend previous analyses of the effects of the widespread cultivation of multilines on the evolution of virulence in obligate parasites to mixtures of lines carrying different numbers of resistance genes. It is concluded that the composition of an equilibrium pathogen population growing on a multiline may vary within wide limits and the prinicipal determinant of its composition is the number of components in the multiline and the resistance genes they carry. Other factors of importance are (i) the relative contribution made by each host class (with different numbers of resistance genes) to the pathogen spore pool each generation; (ii) the levels of stabilizing selection against unnecessary virulence genes; and (iii) the way in which unnecessary genes for virulence combine to reduce pathogen fitness. Conditions for the fixation of avirulent biotypes in the pathogen population and the evolution of a pathogen superrace are given for multilines of various compositions.Paper No. 9246 of the Journal Series of the North Carolina Agricultural Research Service, Raleigh, North Carolina. This investigation was supported in part by NIH Research Grant No. GM 11546 from the National Institute of General Medical Sciences  相似文献   
56.
Summary Our field surveys conducted in 10 Hungarian grape producing areas have revealed that the nutrient contents of vine leaves of different grape varieties were closely correlated with the EUF-nutrient contents of different soil types with different contents of clay. Resulting from these relationships the following EUF-nutrient values are considered as required for optimal nutrition of the vine-stock to attain grape yields of 10–12 t/ha in the areas under investigation:  相似文献   
57.
Presented here is a simple method that enables amplification of the DNA immediately surrounding the junction between an inserted tDNA and the host genome, without prior sequence information.  相似文献   
58.
王文采   《广西植物》1995,15(2):97-105
在对有关形态特征进行分析之后.作者发现具三浅裂或三深裂基生叶,和较薄、脱落萼片的脱萼鸦跖花是鸦跖花属的原始种,而具五角形,三深裂基生叶的变叶三裂碱毛莨和裂叶碱毛莨是碱毛莨属的原始分类群.写出新修订的我国碱毛莨属属下分类群检索表;作者认为聚合果的形状是碱毛莨属的重要特征,并用来将此属的种分为二群,描述了碱毛莨属2新组,2新变种,水毛莨属1新变种.做出碱毛莨属2新组合报导了水毛莨属二种的新分布。  相似文献   
59.
大蒜品种生态型性状指标分析   总被引:2,自引:0,他引:2  
在用12个生态性状对大蒜生态型进行数量分类的基础上,采用主成分分析和判别分析的方法,分析了区分不同生态型的性状指标,主成分分析表明,越冬期叶片生长量。叶片受冻比率和秋,春播叶片数差比(X9)在各生态型中比较稳定,可做为区分各生态型的代表性状,判别分析筛选出抽薹指数和X9为判别各生态型的性状,用这2个性状建立的分类函数回判后,判准率为93.2%,研究结果还表明X9在生型型分类中有重要意义。  相似文献   
60.
应用离体叶片法,对9个棉花种质进行了鉴定,试验结果表明;种质间抗生性和忌避性差异显著;同株棉花不同部位的叶片对朱砂叶螨的抗生性无显著性差异。通过对叶螨在不同棉花种质上种群增长动态进行系统聚类,可将9个棉花种质划分为3类:斯字棉825-91、杞县86789、鄂棉314、苏联8911为1类,中棉164、潼南接龙棉、新库861517-2、南农NAC90-2为1类,美棉7-15独立为1类。依据朱砂叶螨在不同种质上的种群增长曲线和高峰期螨量增长倍数,可将9个种质划分为3个类型;斯字棉825-91、新库861517-2为抗性类型,潼南接龙棉、美棉7-15、南农NAC90-2为感性类型,其余为中抗类型。从忌避性看:斯字棉825-91、美棉7-15表现出较高的忌避性。  相似文献   
设为首页 | 免责声明 | 关于勤云 | 加入收藏

Copyright©北京勤云科技发展有限公司  京ICP备09084417号