Canonical Correspondence Analysis (CCA) is quickly becoming the most widely used gradient analysis technique in ecology. The CCA algorithm is based upon Correspondence Analysis (CA), an indirect gradient analysis (ordination) technique.

CA and a related ordination technique, Detrended Correspondence Analysis, have been criticized for a number of reasons. To test whether CCA suffers from the same defects, I simulated data sets with properties that usually cause problems for DCA. Results indicate that CCA performs quite well with skewed species distributions, with quantitative noise in species abundance data, with samples taken from unusual sampling designs, with highly intercorrelated environmental variables, and with situations where not all of the factors determining species composition are known.

1., Leucci G. 1., Berdondini E. Centre, Dokkyo Medical University, Dept. Of Urology, Tochigi, Japan. Imaichi Hospital. Atlas of ex vivo prostate tissue and cancer images using confocal laser. Invasive bladder cancer: Mito-bcg (EudraCT-2017-004540-37).

Kurtai Atlasi Tochiki 2017

CCA is immune to most of the problems of DCA. Muvee reveal essentials stylepack serial.

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