2023
DOI: 10.1080/19490976.2023.2224474
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Ordering taxa in image convolution networks improves microbiome-based machine learning accuracy

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Cited by 5 publications
(4 citation statements)
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“…As the first step, miMic preprocesses the microbiome frequencies using MIPMLP [ 41 ] (see Methods ) and translates them into a cladogram of means using the iMic algorithm [ 42 ] (Fig. 1 D data processing).…”
Section: Resultsmentioning
confidence: 99%
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“…As the first step, miMic preprocesses the microbiome frequencies using MIPMLP [ 41 ] (see Methods ) and translates them into a cladogram of means using the iMic algorithm [ 42 ] (Fig. 1 D data processing).…”
Section: Resultsmentioning
confidence: 99%
“…The host microbiome has been associated with a myriad of phenotypes. This association is often performed using three main arguments: A) Samples with a given condition are closer one to each other than to samples without this label [ 48 , 49 ], B) the microbiome samples can be used to predict the phenotye using machine learning methods [ 42 , 50 , 51 ], or C) specific taxa are associated with a condition/property/label of the host [ 11 , 12 , 14 , 17 ]. This last approach has been termed differential abundance analysis, and a large number of methods have been proposed to perform it.…”
Section: Discussionmentioning
confidence: 99%
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“…These models’ predictions were more accurate than the simple models’ predictions. The highest SCC was obtained by applying the iMic model [ 62 ] to the donors’ MIPMLP preprocessed taxa frequencies, with an SCC of 0.6 +/− 0.004 and an R2 score of 0.358 +/− 0.003 on the Shannon diversity (Fig. 2 A, B pink bars).…”
Section: Resultsmentioning
confidence: 99%