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I would like to replace leading spaces in a string of formatted numbers by a \phantom{...} command, where ... is of the same length as there are leading spaces. What I can do is:

x <- c(1, 1., 0.230, 10.1, 1000, 10000.12)
y <- format(round(x, 2), nsmall=2, big.mark="\\\\,", big.interval=3L)
gsub(" ", "\\\\phantom{ }", y)

But, I rather would like to have one \phantom{} of the appropriate length (such as \phantom{ } then several \phantom{ }.

UPDATE

Based on the solution of Arun, I built this function for formatting numbers in R to be aligned in LaTeX tables:

tabAlign <- function(x, nsmall=0L, digits=NULL,
                     flag.before="\\\\phantom{", flag.after="}", embrace="$",
                     big.mark="\\\\,", big.interval=3L, ...)
{
    x <- if(!is.null(digits)) round(x, digits=digits) else x
    x <- format(x, nsmall=nsmall, big.mark=big.mark, big.interval=big.interval, ...)
    x <- sub("^([ ]+)", paste0(flag.before, "\\1", flag.after), x) 
    paste0(embrace, x, embrace) 
}

Now, let's do something useful with it. tabAlign(x) gives:

[1] "$\\phantom{       }1.00$" "$\\phantom{       }1.00$"
[3] "$\\phantom{       }0.23$" "$\\phantom{      }10.10$"
[5] "$\\phantom{ }1\\,000.00$" "$10\\,000.12$"           

Copying-and-pasting this to a LaTeX file reveals that the alignment is not correct. The reason is the big.mark. This reserves nchar(big.mark)=3 spaces (in the R character string). However, in LaTeX, this occupies much less space, so that the numbers are not perfectly aligned anymore. Ideally, the sub() command thus has to take nchar(big.mark) into account (for any given big.mark).

UPDATE 2

Here is another update, now taking into account hints from DWin.

tabAlign <- function(x, nsmall=0L, digits=NULL,
                     flag="\\\\phantom{\\1}", embrace="$",
                     big.mark="\\\\,", big.interval=3L, ...)
{
    ## round (if digits is not NULL)
    x <- if(!is.null(digits)) round(x, digits=digits) else x
    ## determine those with/without big.mark (idea from prettyNum())
    y <- format(x, nsmall=nsmall, trim=TRUE)
    y.sp <- strsplit(y, ".", fixed=TRUE)
    B <- sapply(y.sp, `[`, 1L)
    ind.w.big.mark <- grep(paste0("[0-9]{", big.interval+1L, ",}"), B)
    ind.wo.big.mark <- setdiff(1:length(y), ind.w.big.mark)
    ## format the numbers
    x <- format(x, nsmall=nsmall, big.mark=big.mark, big.interval=big.interval, ...)
    ## substitute spaces
    z <- character(l <- length(x))
    n <- nchar(big.mark)
    for(i in seq_len(l)){
        z[i] <- if(i %in% ind.wo.big.mark) sub("^([ ]+)", paste0(flag, big.mark), x[i])
                else sub("^([ ]+)", flag, x[i])
    }
    ## embrace
    paste0(embrace, z, embrace)
}

The only missing piece is to replace not all spaces in \phantom in the if() part, but only the number of spaces - n, where n <- nchar(big.mark). How can this be specified in sub()?

UPDATE 3

Here is a solution (but not too elegant... see below):

tabAlign <- function(x, nsmall=0L, digits=NULL,
                     flag="\\\\phantom{\\1}", embrace="$",
                     big.mark="\\\\,", big.mark2="\\,", big.interval=3L, ...)
{
    ## round (if digits is not NULL)
    x <- if(!is.null(digits)) round(x, digits=digits) else x
    ## determine those with/without big.mark (idea from prettyNum())
    y <- format(x, trim=TRUE)
    y.sp <- strsplit(y, ".", fixed=TRUE)
    B <- sapply(y.sp, `[`, 1L)
    w.big.mark <- grep(paste0("[0-9]{", big.interval+1L, ",}"), B)
    wo.big.mark <- setdiff(1:length(y), w.big.mark)
    ## format the numbers
    x. <- if(length(wo.big.mark) > 0 && length(w.big.mark) > 0) {
        ## format but trim
        y <- format(x, trim=TRUE, nsmall=nsmall, big.mark=big.mark, big.interval=big.interval, ...)
        ## paste big.mark to all numbers without big.mark
        y[wo.big.mark] <- paste0(big.mark2, y[wo.big.mark])
        format(y, justify="right")
    } else { # either all numbers have big.mark or not
        format(x, nsmall=nsmall, big.mark=big.mark, big.interval=big.interval, ...)
    }
    z <- sub("^([ ]+)", flag, x.)
    ## embrace
    paste0(embrace, z, embrace)
}

x <- c(1, 1., 0.230, 10.1, 1000, 10000.12)
tabAlign(x)
tabAlign(x[1:4])
tabAlign(x[5:6])

It would be nicer if we could only specify big.mark (and not big.mark2 as well).

share|improve this question
    
That's why there is the if()... For those elements of x with a big mark, we substitute all spaces there are. For those elements of x with no big mark, there are at least three spaces (due to the fact that there are some elements with big mark and we thus pasted big.mark to these strings) –  Marius Hofert Dec 29 '12 at 2:24
    
The code I showed is the best I know at the moment, but it does not do the right thing (neither in R nor in LaTeX). The problem is that for those elements of x without a big mark, the \phantom{ } introduces too much space (namely n spaces too many, where n is the number of characters in big.mark). –  Marius Hofert Dec 29 '12 at 2:39
    
I now (Update 3) did it more elegantly. However, it would be great if we could omit the argument big.mark2. –  Marius Hofert Dec 29 '12 at 3:34

1 Answer 1

up vote 3 down vote accepted

Does this solve the problem? It would be nice to show the desired output (to be sure of the output while testing the expression). Thanks to DWin for his suggestion (see comments).

sub("^([ ]+)", "\\\\phantom{\\1}", y)

The ( and ) captures the matching pattern (which is a bunch of consecutive spaces starting from the beginning of the string) and this captured group can be inserted with \\1. If you have more than one parenthesis, then you can insert each captured group with back-referencing from \1 through \9.

share|improve this answer
1  
Should put a ^ at the beginning of the pattern to ensure it grabs the leading spaces only. Should probably just do sub as well. –  Jared Dec 28 '12 at 23:33
    
Thanks a lot! Now as you might expect, the \phantom{} commands are for LaTeX. To make this formatting more useful, the phantom command should indeed take into account the space \\\\, (a \, in LaTeX) reserved by big.mark. If you know a solution to that, too, that would be great. In other words, the sub() should take nchar("\\\\,") (=3) into account. –  Marius Hofert Dec 28 '12 at 23:38
    
okay, great, give me a second... –  Marius Hofert Dec 28 '12 at 23:42
    
I guess the "algorithm" we are looking for is this: If there is no number with big.mark then the solution so far is fine. If there is at least one number with big.mark, then add (=paste) the big.mark in a phantom{} to that number (string), too. This is probably the only way we can guarantee that the numbers are correctly aligned afterwards, since we don't know anything about the actual space taken by big.mark in LaTeX (the current example with big.mark=\\\\, takes a \, space in LaTeX -- I'm not even sure if this is half a blank or not in LaTeX) –  Marius Hofert Dec 28 '12 at 23:53
1  
I admit that I was quite surprised to see an R expression to be evaluated in replacement argument, but in this case it not needed since, this would give the same results: sub("^([ ]+)", "\\\\phantom{\\1}", y) –  BondedDust Dec 29 '12 at 0:17

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