Advances in morphometric identification of fishery stocks

被引:2
作者
Steven X. Cadrin
机构
[1] National Marine Fisheries Service,
来源
Reviews in Fish Biology and Fisheries | 2000年 / 10卷
关键词
fisheries; morphometric; stock identification;
D O I
暂无
中图分类号
学科分类号
摘要
Geographic variation in morphometry has been used todiscriminate local forms of fish for over a century. The historical development of stock identificationmethods has paralleled the advancement of morphometrictechniques. The earliest analyses of morphometricvariables for stock identification were univariatecomparisons, but were soon followed by bivariateanalyses of relative growth to detect ontogeneticchanges and geographic variation among fishstocks. As the field of multivariatemorphometrics flourished, a suite of multivariatemethods was applied to quantify variation in growthand form among stocks. More recent advances have beenfacilitated by image processing techniques, morecomprehensive and precise data collection, moreefficient quantification of shape, and new analyticaltools. Many benchmark case studies and critiquesoffer guidelines for sampling morphometrics andinterpreting multivariate analyses for exploratorystock identification, stock discrimination, and stockdelineation. As examples of morphometric stockidentification based on life history differences,allometric patterns of crustacean secondary sexcharacters have been used to detect geographicvariation in size at maturity, and morphometriccorrelates to smoltification have been used todiscriminate salmon from different rivers. Morphometric analysis provides a powerful complementto genetic and environmental stock identificationapproaches. The challenge for the future ofmorphometric stock identification is to develop aconsensus on biological interpretations of geometricanalyses, similar to the conventional interpretationsof size and shape from traditional multivariatemorphometrics.
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页码:91 / 112
页数:21
相关论文
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  • [1] Airoldi J.-P.(1988)An application of common principal component analysis to cranial morphometry of J. Zool. (London) 216 21-36
  • [2] Flury B.K.(1979) and Paleobiology 5 296-317
  • [3] Alberch P.(1978) (Mammalia, Rodentia) Syst. Zool. 27 78-83
  • [4] Gould S.J.(1976)Size and shape in ontogeny and phylogeny Syst. Zool. 25 137-148
  • [5] Oster G.F.(1984)Ratios, regression intercepts, and the scaling of data Trans. Am. Fish. Soc. 113 727-736
  • [6] Wake D.B.(1985)Statistical properties of ratios Can. J. Zool. 63 366-372
  • [7] Atchley W.R.(1987)Age and morphology of chum salmon in southern British Columbia Can. J. Fish. Aquat. Sci. 44 244-261
  • [8] Atchley W.R.(1988)Variation and morphometric variation in pink salmon ( Fish. Bull. 86 663-674
  • [9] Gaskins C.T.(1988)) in southern British Columbia and Puget Sound Trans. Am. Fish. Soc. 117 109-126
  • [10] Anderson D.(1999)Adaptive variation in body size, age, morphology, egg size and developmental biology of chum salmon ( Fish. Res. 43 1-8