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author | mingchen0919 |
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date | Sun, 30 Dec 2018 13:59:16 -0500 |
parents | dcf65671e56a |
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--- title: 'HTSeq-count Analysis' output: html_document: highlight: pygments --- ## Job script ```{bash, echo=FALSE} sh ${TOOL_INSTALL_DIR}/build-and-run-job-scripts.sh > ${REPORT_FILES_PATH}/log.txt 2>&1 ``` ```{r echo=FALSE, comment='', results='asis'} cat('```bash\n') cat(readLines(paste0(Sys.getenv('REPORT_FILES_PATH'), '/htseq-count.sh')), sep = '\n') cat('\n```') ``` ## Counts Write data into a CSV file. ```{r, echo=TRUE} count_data = read.table(paste0(opt$X_d, '/counts.txt'), row.names = 1) sample_names = trimws(strsplit(opt$X_B, ',')[[1]]) colnames(count_data) = rep(sample_names, length = ncol(count_data)) # modify column names count_data = data.frame(feature_id = rownames(count_data), count_data) write.csv(count_data, file = paste0(Sys.getenv('REPORT_FILES_PATH'), '/count_data.csv'), quote = FALSE, row.names = FALSE) ``` Display the top 1000 rows with largest average counts. ```{r echo=TRUE} # Sort count table by count average rownames(count_data) = count_data$feature_id count_data = count_data[, -1] sorted_ct_table = count_data[order(rowMeans(count_data), decreasing = TRUE), ] DT::datatable(head(sorted_ct_table, 1000)) ```