[R] problem with predict()
Czerminski, Ryszard
ryszard at arqule.com
Fri Jun 28 15:27:39 CEST 2002
This time I use the same file for train.data and test.data
throwing in "names(test) <- names(train)" before predict() for double
protection (:-)
and it still fails...
Is it some weird problem with this particular data set ? or a bug ?
(why "subscript out of bounds" ?)
> rm(list=ls())
> train.data <- read.csv("train.csv", header = TRUE, row.names = "mol",
comment.char="")
> test.data <- read.csv("train.csv", header = TRUE, row.names = "mol",
comment.char="")
> yr <- train.data[,1]; xr <- train.data[,-1]
> xr <- scale(xr) # matrix <- scale(data.frame)
> x.center <- attr(xr, "scaled:center"); x.scale <- attr(xr, "scaled:scale")
> mask <- apply(xr, 2, function(x) any(is.na(x)))
> xr <- xr[,!mask] # rm NA's
> ys <- test.data[,1]; xs <- test.data[,-1]
> xs <- scale(xs, center = x.center, scale = x.scale)
> xs <- xs[,!mask]
> train <- data.frame(y = yr, x = xr)
> test <- data.frame(y = ys, x = xs)
> model <- lm(y~., train)
> cat("dim(train) =", dim(train), "; dim(test) =", dim(test), "\n")
dim(train) = 164 119 ; dim(test) = 164 119
> names(test) <- names(train)
> length(predict(model, test))
Error in drop(X[, piv, drop = FALSE] %*% beta[piv]) :
subscript out of bounds
>
Ryszard Czerminski phone: (781)994-0479
ArQule, Inc. email:ryszard at arqule.com
19 Presidential Way http://www.arqule.com
Woburn, MA 01801 fax: (781)994-0679
-----Original Message-----
From: Liaw, Andy [mailto:andy_liaw at merck.com]
Sent: Friday, June 28, 2002 8:46 AM
To: 'Czerminski, Ryszard'
Cc: r-help at stat.math.ethz.ch
Subject: RE: [R] problem with predict()
You can try:
names(test) <- names(train)
before calling predict() to make sure that the variable names match.
Without your data files, it's hard to tell why your first example worked.
Andy
> -----Original Message-----
> From: Czerminski, Ryszard [mailto:ryszard at arqule.com]
> Sent: Thursday, June 27, 2002 3:29 PM
> To: 'ripley at stats.ox.ac.uk'; Czerminski, Ryszard
> Cc: r-help at stat.math.ethz.ch
> Subject: RE: [R] problem with predict()
>
>
>
> # Yes. You are *still* using a matrix in a data frame.
> Please do read more
> # carefully.
>
> I have read some more R documentation trying to understand difference
> between
> matrices and data frames etc... and I repeat my example this time
> executing EXACTLY the same code with only difference being
> that in one case
> I use smaller data sets ({train,test}-small.csv) and in the
> second case I
> use larger
> data sets ({train,test}.csv) - and I got different behaviour.
>
> Small case (10*4) runs fine, larger case (164*119) fails.
>
> Any ideas why this happens ?
>
> R
>
> > rm(list=ls())
> > train.data <- read.csv("train-small.csv", header = TRUE, row.names =
> "mol", comment.char="")
> > test.data <- read.csv("test-small.csv", header = TRUE,
> row.names = "mol",
> comment.char="")
> > yr <- train.data[,1]; xr <- train.data[,-1]
> > xr <- scale(xr)
> > x.center <- attr(xr, "scaled:center"); x.scale <- attr(xr,
> "scaled:scale")
> > mask <- apply(xr, 2, function(x) any(is.na(x)))
> > xr <- xr[,!mask] # rm NA's
> > ys <- test.data[,1]; xs <- test.data[,-1]
> > xs <- scale(xs, center = x.center, scale = x.scale)
> > xs <- xs[,!mask]
> > train <- data.frame(y = yr, x = xr)
> > test <- data.frame(y = ys, x = xs)
> > model <- lm(y~., train)
> > cat("dim(train) =", dim(train), "; dim(test) =", dim(test), "\n")
> dim(train) = 10 4 ; dim(test) = 10 4
> > length(predict(model, test))
> [1] 10
> > train.data <- read.csv("train.csv", header = TRUE,
> row.names = "mol",
> comment.char="")
> > test.data <- read.csv("test.csv", header = TRUE, row.names = "mol",
> comment.char="")
> [snip...]
> > cat("dim(train) =", dim(train), "; dim(test) =", dim(test), "\n")
> dim(train) = 164 119 ; dim(test) = 35 119
> > length(predict(model, test))
> Error in drop(X[, piv, drop = FALSE] %*% beta[piv]) :
> subscript out of bounds
> >
>
> Ryszard Czerminski phone: (781)994-0479
> ArQule, Inc. email:ryszard at arqule.com
> 19 Presidential Way http://www.arqule.com
> Woburn, MA 01801 fax: (781)994-0679
>
>
> -----Original Message-----
> From: ripley at stats.ox.ac.uk [mailto:ripley at stats.ox.ac.uk]
> Sent: Friday, June 21, 2002 3:41 PM
> To: Czerminski, Ryszard
> Cc: r-help at stat.math.ethz.ch
> Subject: RE: [R] problem with predict()
>
>
> On Fri, 21 Jun 2002, Czerminski, Ryszard wrote:
>
> > --- first problem
> >
> > If I store 'simulated' data in data frames:
> > # train.data <- data.frame(matrix(rnorm(164*119), nrow = 164))
> > # test.data <- data.frame(matrix(rnorm(35*119), nrow = 35))
> > it still works the same way i.e. the code below works fine
> > for simulated data and fails for 'real' data the only
> > difference being in actual numeric values stored in data
> > structures of the same shape and type.
> >
> > Any suggestions why this happens ?
>
> Yes. You are *still* using a matrix in a data frame. Please
> do read more
> carefully.
>
> > --- second problem
> >
> > > As Andy Liaw pointed out, xr is a matrix. Take a look at
> the names of
> > > train. Hint: they do not contain `x'.
> >
> > Following your hint I am guessing that the fact that names
> do not contain
> > 'x'
> > explains why lm(y~., train) form works and lm(y~x, train) fails
> > and "lm(y~., train)" means roughly: correlate column "y" to
> all other
> colums
>
> No, it means regress y on all the remaining colums in the
> data argument.
>
> >
> > Where I can find more detail specification of this syntax ?
> > In help(lm) I find this paragraph:
> >
> > Models for `lm' are specified symbolically. A typical
> model has
> > the form `response ~ terms' where `response' is the
> (numeric)...
> >
> > which does not quite cover this case.
>
> In any good book on the subject.
>
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