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What's the best way to format a numeric so that it does NOT show leading zero. For example:

test = .006
sprintf/format/formatC( ??? )  # should result in ".006"
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  • I found this answer to a related question useful. It uses base R and does not drop leading digits that are not zero. – Jeromy Anglim Nov 21 '13 at 11:40
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You can always fix it up yourself with regular expression search-and-replace:

library(stringr)
test = .006
str_replace(as.character(test), "^0\\.", ".")

Not the most elegant answer, but it works. Substitute whatever string conversion you like for as.character, such as sprintf with your preferred floating point format.

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    you could use sub instead of stringr. – flodel Nov 13 '12 at 0:03
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    stringr is nice for some things but I see it used too often when the base function would work just as well... – Dason Nov 13 '12 at 0:05
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    Yes, but stringr has a consistent interface and sane defaults, so I chose to learn the stringr functions instead of trying to memorize the base R ones. Feel free to use your preferred regular expression substitution function. – Ryan C. Thompson Nov 13 '12 at 0:06
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I believe I answered this once before but can't find it. You cannot tell sprintf() et al about a format that drops the leading zero ... so you have to do it yourself, eg via substring():

R> val <- 0.006
R> aa <- substring(sprintf("%4.3f", val), 2)
R> aa
[1] ".006"
R> 
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  • thanks Dirk! good answer. Accepting Ryan's because it generalizes for any number of significant digits – SFun28 Nov 13 '12 at 0:09
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    So just do substring(as.character(val), 2) which does not need anything but base R, and is likely "faster" (not that it matters) than a regexp solution. – Dirk Eddelbuettel Nov 13 '12 at 0:50
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    that doesn't work when there are digits to the left of decimal like 2.22 – SFun28 Nov 13 '12 at 4:28
  • Well that wasn't part of your "specification" in question above so it's a tad hard for me to guestimate the need. I gave you an efficient answer for the question you asked... – Dirk Eddelbuettel Nov 13 '12 at 14:04
  • This works nicely on a single column of a data frame; but it will not work for 2 or more columns of a data frame simultaneously. For instance, supposing 'val' in the above example is a data frame with 3 columns and some number of rows, I can get val[,1] to work; but val[,1:2] throws the error '(list) object cannot be coerced to type 'double''. Any suggestions on how to apply this function to a data frame, where all variables are numeric? – Chris Z. Nov 9 '17 at 6:14
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f <- function(x) gsub("^(\\s*[+|-]?)0\\.", "\\1.", as.character(x))
f(0.006)
# ".006"
f(-0.006)
# "-.006"
f("+0.006")
# "+.006"
f(" 0.006")
# " .006"
f(10.05)
# "10.05"
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    This should be the answer as it handles the main use cases and uses base r. – Jeromy Anglim Nov 13 '17 at 2:48

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