CellCognize: a neural network pipeline for cell type classification from flow cytometry data
Description
Readme file content
The files stored here contain the following material as supplementary and source data for the publication
Rapid detection of microbiota cell type diversity using machine-learned classification of flow cytometry data
Birge D. Özel Duygan1, Noushin Hadadi1, Ambrin Farizah Bab1, Markus Seyfried2, Jan R. van der Meer1
1 Department of Fundamental Microbiology, University of Lausanne, 1015 Lausanne, Switzerland
2 Biotechnology Department, Firmenich SA, Geneva, Switzerland
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Flow cytometry data
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FCM_files:
.mat files with cleaned data as described in the supplementary methods section
Ecoli_lakewater: raw FCM data (in .csv format) of E. coli cultures and E. coli cultures mixed to lakewater
MIX_experiment_ACL_AJH_PVR: raw FCM data (in .csv format) of the synthetic three culture experiment with E. coli, A. johnsonii and P. veronii, as described in the main text and SI methods.
PHE_OCT_enrichments: raw FCM data (in .csv format) of the phenol and 1-octanol enrichments and the 1-octanol isolates, as described in the main text and SI methods.
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Neural network data
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NN_file_example: three ANN functions, to be used in conjunction with the SI methods section
Supplementary_Methods.docx: Detailed description on the construction, usage and scripts for the ANN. To be used in conjunction with the Flow Cytometry data
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16S sequencing data
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raw fastq- files of the sample reads of the 1-octanol and phenol enrichments described in the paper, at t=0 and t=3d, each in triplicates, forward and reverse.
Readme_16S_sequence_files.txt: sample description of the read files
Notes
Files
FCM_files.zip
Files
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