2014
DOI: 10.1007/s00216-014-8015-1
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Using color histograms and SPA-LDA to classify bacteria

Abstract: In this work, a new approach is proposed to verify the differentiating characteristics of five bacteria (Escherichia coli, Enterococcus faecalis, Streptococcus salivarius, Streptococcus oralis, and Staphylococcus aureus) by using digital images obtained with a simple webcam and variable selection by the Successive Projections Algorithm associated with Linear Discriminant Analysis (SPA-LDA). In this sense, color histograms in the red-green-blue (RGB), hue-saturation-value (HSV), and grayscale channels and their… Show more

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Cited by 19 publications
(13 citation statements)
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“…The colour histogram (CH) was widely harnessed to represent the colour distribution in the chromatic fruit images (De Almeida et al, ). It counted the number of pixels, which had similar colours in a fixed range (Zhang et al, ).…”
Section: Methodsmentioning
confidence: 99%
“…The colour histogram (CH) was widely harnessed to represent the colour distribution in the chromatic fruit images (De Almeida et al, ). It counted the number of pixels, which had similar colours in a fixed range (Zhang et al, ).…”
Section: Methodsmentioning
confidence: 99%
“…3 An image capturing device to register the images of the chemical system under consideration. Simple commercial devices include digital cameras, 15,25,30,41,45,52,53,59,60 scanners, 21,28,34,35,39,43,46,[54][55][56][57]61 webcams, 26,29,32,33,[36][37][38]40,42,44,[47][48][49] and smartphones, 17,18,27,31,50,51,58 and the choice of one of them shall be according to its availability in each laboratory or specific need for a given application. However, it is important to note that the portability of systems through the use of smartphones has become a remarkable trend in the literature, mainly in applications involving univariate calibration for colorimetric analysis.…”
Section: Instrumentation For Cachasmentioning
confidence: 99%
“…In Almeida et al (2014), five different bacteria are classified using colour features and Successive Projections Algorithm associated with LDA (SPA-LDA) algorithm. 335 images are used in the experiment, where 75% of these images are used for classifier training, and the remaining ones are used for test, finally a 94% and a 100% accuracy are achieved using training and test images, respectively.…”
Section: Overview Of MM Classificationmentioning
confidence: 99%