Маркетинговые исследования
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To assess the heterogene ity of nicely segmented cells, we compared

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 To assess the heterogene ity of nicely segmented cells, we compared  Empty To assess the heterogene ity of nicely segmented cells, we compared

Сообщение  wangqian Ср Апр 30, 2014 10:58 am

Of these, we centered our focus on two subsets of key interest. purchase ARQ 197 Very first, for creating classifiers, we considered the subset of 116 functions that had defined values for each cell in our training set. The calculation of morphological capabilities is described during the Cellomics Morphology Explorer BioApplication Guide. Right here, we briefly describe nine attributes that had been used in the SVM RBF classifier, or shown in our benefits. Total intensity in Channels 2 and 3 was calculated for every object by integrating the total intensity in objects in these channels. average intensities in Channel 2 and 3 had been the corresponding total intensities divided by the quantity of pixels within the object. Spot Fiber Count in Chan nel 3 was the count of identified actin fiber objects in each object.<br><br> Convex hull to area ratio in Channel 1 was the ratio of buy AZD0530 your location of the convex hull of an object, towards the place from the object. Convex hull perimeter ratio in Channel 1 was the ratio of your convex hull perimeter to your perimeter is additionally connected to cell shape. as an object turns into extra elongated its FW would technique 0. Definition of characteristic forms For your evaluation of Table 3, we defined a subset of 57 in the 116 attributes utilized for building classifiers, by excluding standing features. These status capabilities are integer flag var iables, which indicate that a particular morphological fea ture is inside or outside a consumer defined range. For our evaluation of feature sorts these standing characteristics weren't rel evant.<br><br> We assigned a form to every in the 57 non status fea tures to indicate what facet of cell morphology every attribute reflected intensity for features that principally reflected the intensity of staining, shape for dimension less form parameters, texture for intensity texture fea tures, 価格 Alvocidib arrangement for capabilities indicating object arrangement, and dimension for attributes related to object dimension. Calculation of Kolmogoroff Smirnov statistics As a statistical measure of alterations in just about every morphological attribute, we used the Kolmogoroff Smirnoff statistic to compare the distribution of every feature inside a pop ulation of perturbed cells on the corresponding distribu tion in automobile treated cells around the identical 96 effectively plate.<br><br> This controlled for inter plate degree technical variation during the experimental system. Measurement on the sensitivity of features to segmentation To assess the sensitivity of morphological features to seg mentation, we fitted the dose response from the KS statistic for every feature to each and every compound by a linear ANOVA model, utilizing both effectively segmented cells, or poorly seg mented cells. Then, the error weighted discrepancy D between the fitted model from your very well segmented cell population and that in the poorly segmented popula tion was calculated as from the object. Ultimately, if L and W are defined because the length and width on the rectangle that bounds the cell body in Channel 1, then P2A and FW in Ch1 had been defined as fol lowswhere yws was the fitted estimate from properly segmented cells, yps was the estimate from poorly segmented cells, and SEws was the residual conventional error of the ANOVA model for that nicely segmented cells.

wangqian

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