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# Simulation for the QREM+SEMMS paper
# see sims.R for simulation configurations.
# compare with mean-model (SEMMS)
# plots - after simulations, quantile functions
rm(list=ls())
library("SEMMS")
library("QREM")
source("sims.R")
nn <- 4
maxRep <- 40
plots <- FALSE
simsToRun <- 8 # see sims.R
res <- matrix(0,ncol=7,nrow=100*9*length(simsToRun))
qn <- 0.8
simno = 1
i=1
confmat <- function(allidx, actual, estimated) {
TP <- which(estimated %in% actual)
FP <- which(estimated %in% setdiff(allidx,actual))
TN <- which(setdiff(allidx,estimated) %in% setdiff(allidx,actual))
FN <- which(setdiff(allidx,estimated) %in% actual)
c(length(TP), length(FP),length(TN), length(FN))
}
runSEMMSandQREM <- function(filename, qn) {
dataYXZ <- readInputFile(filename, ycol=1, Zcols=2:501)
n <- dataYXZ$N
K <- dataYXZ$K
t0=Sys.time()
cat("initializing...\n")
pval <- rep(0, K) ### need to speed up pval initialization!
for (i in 1:K) {
linmod <- as.formula(paste("Y ~", colnames(dataYXZ$Z)[i]))
dframetmp <- data.frame(cbind(dataYXZ$Y, dataYXZ$Z[,i]))
colnames(dframetmp) <- c("Y",colnames(dataYXZ$Z)[i])
qremFit <- QREM(lm,linmod, dframetmp, qn, maxInvLambda = 1000)
sm <- summary(qremFit$fitted.mod)
pval[i] <- sm$coefficients[2,4]
}
nnset = order(pval)[1:nn]
t1=Sys.time()
cat(round(difftime(t1,t0, units = "secs")),"seconds. initial set", nnset,"\n")
for (rep in 1:maxRep) {
# create a subset of the selected columns and run QREM
preds <- paste(colnames(dataYXZ$Z)[nnset], collapse = "+")
linmod <- as.formula(paste("Y ~", preds))
dframetmp <- data.frame(cbind(dataYXZ$Y, dataYXZ$Z[,nnset]))
colnames(dframetmp) <- c("Y",colnames(dataYXZ$Z)[nnset])
qremFit <- QREM(lm,linmod, dframetmp, qn, maxInvLambda = 1000)
# apply the weights found by QREM and rerun SEMMS
dataYXZtmp <- dataYXZ
dataYXZtmp$Y <- (dataYXZ$Y-(1-2*qn)/qremFit$weights)
fittedVSnew <- fitSEMMS(dataYXZtmp,distribution = 'N', mincor=0.8,rnd=F,
nnset=nnset, minchange = 1, maxst = 20)
if (length(fittedVSnew$gam.out$nn) == 0) {
return(fittedVSnew$gam.out$nn)
}
#foundSEMMSnew <- sort(union(which(fittedVSnew$gam.out$lockedOut != 0),
# fittedVSnew$gam.out$nn))
t2=Sys.time()
cat(round(difftime(t2,t1,units = "secs")),"seconds.",rep,":\t",fittedVSnew$gam.out$nn,":\t", qremFit$empq,"\n")
t1=t2
if (length(fittedVSnew$gam.out$nn) == length(nnset)) {
if (all(fittedVSnew$gam.out$nn == nnset)) {
break
}
}
nnset <- fittedVSnew$gam.out$nn
}
if (plots) {
fittedGLM <- runLinearModel(dataYXZtmp,nnset, "N")
print(summary(fittedGLM$mod))
plotMDS(dataYXZ, fittedVSnew, fittedGLM, ttl="...")
plotFit(fittedGLM)
plot(dataYXZ$Y, col=(2+(qremFit$ui>0)), cex=0.7, pch=19)
for (i in 2:ncol(dframetmp)) {
qrdiag <- QRdiagnostics(dframetmp[,i],colnames(dframetmp)[i],qremFit$ui,qn)
}
}
t3=Sys.time()
cat(round(difftime(t3,t0,units = "secs")),"seconds (total). Done\n")
nnset
}
cnt <- 1
for (simno in 1:length(sims)) {
if (simno %in% simsToRun) {
cat("\nSim. #",simno,"\n")
n <- sims[[simno]]$n
qns <- sims[[simno]]$qns
reps <- sims[[simno]]$reps
coefs <- sims[[simno]]$coefs
lp <- as.list(attr(terms(sims[[simno]]$mod), "variables"))[-(1:2)]
truepreds = rep(0,length(lp))
for(i in 1:length(lp)) {
truepreds[i] = gsub("[a-zA-Z]","",lp[[i]], perl=TRUE)
}
truepreds <- as.numeric(truepreds)
xrng <- matrix(sims[[simno]]$xrng, nrow=(length(coefs)-1), ncol=2)
for (i in 1:reps) {
set.seed(simno*100000 + sims[[simno]]$seed + i)
X <- matrix(0,nrow=n, ncol=length(coefs))
X[,1] <- rep(1,n)
for (jj in 1:(length(coefs)-1)) {
X[,jj+1] <- runif(n, min=xrng[jj,1], max=xrng[jj,2])
}
colnames(X) <- c("const", paste("X",1:(length(coefs)-1),sep=""))
if (sims[[simno]]$errvar == 0) {
errs <- sims[[simno]]$err(rep(0,n))
} else {
if (length(sims[[simno]]$errvar) == 2) {
errs <- sims[[simno]]$err(X[,sims[[simno]]$errvar[1]+1], X[,sims[[simno]]$errvar[2]+1])
} else {
errs <- sims[[simno]]$err(X[,sims[[simno]]$errvar+1])
}
}
y <- X%*%coefs + errs
dframe <- data.frame(y,X[,-1], matrix(rnorm((500-ncol(X)+1)*n,0,0.1),
nrow=n, ncol=(500-ncol(X)+1)))
datfn <- sprintf("data/sim%02d.RData",simno)
save(dframe, file=datfn)
for (qn in qns) {
selected <- runSEMMSandQREM(datfn, qn)
res[cnt,] <- c(simno, i, qn, confmat(1:500, truepreds, selected))
cat(c(simno, i, qn, confmat(1:500, truepreds, selected)),"\n")
cnt <- cnt+1
}
}
save(res,file=sprintf("results/resSim%02d.RData",simno))
}
}