Mercurial > repos > pmac > robustzscorenormalization
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author | pmac |
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date | Wed, 01 Jun 2016 03:59:51 -0400 |
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############################################################################### # In summary this script calculates the robust z score for one or more plates # of data. # # Args: # input.data.frame contains one or more columns of plate data. The first column # must contain the well annotation ie A01, A02 etc. Each subsequent column represents # a plate of data where the column name is the plate name. # # plate.conf.data.frame is a file of the following format: # well, type (syntax must be either "poscontr" or "negcontr" or "empty"), name (name of control) # # Returns: # robust z score normalized values per plate. # # Author: kate gould ############################################################################### use strict; use warnings; use IO::Handle; use File::Temp qw/ tempfile tempdir /; my $tdir = tempdir( CLEANUP => 0 ); # check to make sure having correct input and output files my $usage = "usage: robustZScoreNormalization.pl [TABULAR.in] [TABULAR.in] [TABULAR.out] \n"; die $usage unless @ARGV == 3; #get the input arguments my $plateData = $ARGV[0]; my $plateConfig = $ARGV[1]; my $zNorm = $ARGV[2]; #open the input files open (INPUT1, "<", $plateData) || die("Could not open file $plateData \n"); open (INPUT2, "<", $plateConfig) || die("Could not open file $plateConfig \n"); open (OUTPUT1, ">", $zNorm) || die("Could not open file $zNorm \n"); #variable to store the name of the R script file my $r_script; # R script to implement the calcualtion of q-values based on multiple simultaneous tests p-values # construct an R script file and save it in a temp directory chdir $tdir; $r_script = "robustZScoreNormalization.r"; open(Rcmd,">", $r_script) or die "Cannot open $r_script \n\n"; print Rcmd " #options(show.error.messages = FALSE); header <- read.table(\"$plateData\", head=F, sep=\"\\t\", comment=\"\", nrows=1); input.data.frame <- read.table(\"$plateData\", head=F, sep=\"\\t\", skip=1); plate.conf.data.frame <- read.table(\"$plateConfig\", head=T, sep=\"\\t\", comment=\"\"); # assumed second column is type ie negcontr or poscontr and third column is name of control excluded.wells <- unique(plate.conf.data.frame[,1]) robust.z.score.normalise <- function(x, y) return ((x-median(y))/mad(y)) robust.z.score.normalisation.data.frame <- data.frame(well=input.data.frame[,1], stringsAsFactors=FALSE) for (i in 2:length(colnames(input.data.frame))){ replicate.sample.values <- input.data.frame[((!(input.data.frame[,1] %in% excluded.wells))&(!(is.na(input.data.frame[,i])))),][,i] robust.z.score.normalisation.data.frame <- cbind(robust.z.score.normalisation.data.frame, round(sapply(input.data.frame[,i], FUN=robust.z.score.normalise, replicate.sample.values), 2)) } names(robust.z.score.normalisation.data.frame) <- names(input.data.frame) write.table(header, file=\"$zNorm\", quote=F, sep=\"\\t\", row.names=F, col.names=F); write.table(robust.z.score.normalisation.data.frame, file=\"$zNorm\", quote=F, sep=\"\\t\", row.names=F, col.names=F, append=T); #eof\n"; close Rcmd; system("R --no-restore --no-save --no-readline < $r_script > $r_script.out"); #close the input and output files close(OUTPUT1); close(INPUT1); close(INPUT2);