I'm curious to know if R can use its eval() function to perform calculations provided by e.g. a string.

This is a common case:

eval("5+5")

However, instead of 10 I get:

[1] "5+5"

Any solution?

  • 5
    Despite all the answers showing how to solve that with parse ... Why do you need to store language types in a character string ? Martin Mächler's answer should deserve much more upvotes. – Petr Matousu Nov 29 '16 at 10:48
  • 4
    Thank you @PetrMatousu. Yes, I'm shocked to see how mis-information is spread on SO now.. by people upvoting eval(parse(text = *)) fake solutions. – Martin Mächler Apr 1 '17 at 16:22
  • I want to run scrips of the form: QQ = c('11','12','13','21','22','23'), i.e.: QQ =c(...,'ij',..) with i,j varying on a range that is may vary from run to run. For this and similar examples, I can write the script as paste( "QQ = c('", paste(rep(1:2,each=3),1:3, sep="", collapse="','"), "')",sep=""), and the option eval(parse(text=...)) creates the vector QQ in the working environment as per the script. What would be the proper R coder way to do this, if not with "text=..."? – VictorZurkowski Sep 18 at 15:04
up vote 345 down vote accepted

The eval() function evaluates an expression, but "5+5" is a string, not an expression. Use parse() with text=<string> to change the string into an expression:

> eval(parse(text="5+5"))
[1] 10
> class("5+5")
[1] "character"
> class(parse(text="5+5"))
[1] "expression"

Calling eval() invokes many behaviours, some are not immediately obvious:

> class(eval(parse(text="5+5")))
[1] "numeric"
> class(eval(parse(text="gray")))
[1] "function"
> class(eval(parse(text="blue")))
Error in eval(expr, envir, enclos) : object 'blue' not found

See also tryCatch.

  • 16
    As Shane notes below, "You need to specify that the input is text, because parse expects a file by default" – PatrickT Jan 15 '14 at 8:39
  • the side-effects of using eval(parse) should be specified. For example, if you have a pre-defined variable name equal to "David" and you reassign using eval(parse(text = "name") == "Alexander", you will get an error because eval & parse do not return an R expression that can be evaluated. – Crt Aug 1 '16 at 22:51

You can use the parse() function to convert the characters into an expression. You need to specify that the input is text, because parse expects a file by default:

eval(parse(text="5+5"))
  • 4
    > fortunes::fortune("answer is parse") If the answer is parse() you should usually rethink the question. -- Thomas Lumley R-help (February 2005) > – Martin Mächler Oct 20 '16 at 20:40
  • 5
    @MartinMächler That's ironic, because the core R packages use parse all the time! github.com/wch/r-source/… – geneorama Mar 30 '17 at 22:10

Sorry but I don't understand why too many people even think a string was something that could be evaluated. You must change your mindset, really. Forget all connections between strings on one side and expressions, calls, evaluation on the other side.

The (possibly) only connection is via parse(text = ....) and all good R programmers should know that this is rarely an efficient or safe means to construct expressions (or calls). Rather learn more about substitute(), quote(), and possibly the power of using do.call(substitute, ......).

fortunes::fortune("answer is parse")
# If the answer is parse() you should usually rethink the question.
#    -- Thomas Lumley
#       R-help (February 2005)

Dec.2017: Ok, here is an example (in comments, there's no nice formatting):

q5 <- quote(5+5)
str(q5)
# language 5 + 5

e5 <- expression(5+5)
str(e5)
# expression(5 + 5)

and if you get more experienced you'll learn that q5 is a "call" whereas e5 is an "expression", and even that e5[[1]] is identical to q5:

identical(q5, e5[[1]])
# [1] TRUE
  • 2
    could you give an example? maybe you could show us how to "hold on" to 5+5 in an r object, then evaluate it later, using quote and substitute rather than a character and eval(parse(text=)? – Richard DiSalvo Dec 19 '17 at 3:30
  • 2
    I may be a little lost. At what point do you get 10? Or is that not the point? – Nick S Feb 20 at 13:12
  • @RichardDiSalvo: yes, q5 <- quote(5+5) above is the expression (actually the "call") 5+5 and it is an R object, but not a string. You can evaluate it any time. Again: using, quote(), substitute(), ... instead parse creates calls or expressions directly and more efficiently than via parse(text= . ). Using eval() is fine, using parse(text=*) is error prone and sometimes quite inefficient in comparison to construction calls and manipulating them.. @Nick S: It's eval(q5) or eval(e5) in our running example – Martin Mächler Feb 25 at 21:05

Alternatively, you can use evals from my pander package to capture output and all warnings, errors and other messages along with the raw results:

> pander::evals("5+5")
[[1]]
$src
[1] "5 + 5"

$result
[1] 10

$output
[1] "[1] 10"

$type
[1] "numeric"

$msg
$msg$messages
NULL

$msg$warnings
NULL

$msg$errors
NULL


$stdout
NULL

attr(,"class")
[1] "evals"
  • Nice function; fills a hole left by evaluate::evaluate by actually returning the result object; that leaves your function suitable for use for calling via mclapply. I hope that feature remains! – russellpierce Dec 2 '15 at 9:56
  • Thank you, @rpierce. This function was originally written in 2011 as part of our rapport package, and have been actively maintained since then as being heavily used in our rapporter.net service besides a few other projects as well -- so I'm sure it will remain maintained for a while :) I'm glad you find it useful, thanks for your kind feedback. – daroczig Dec 3 '15 at 7:22

Nowadays you can also use lazy_eval function from lazyeval package.

> lazyeval::lazy_eval("5+5")
[1] 10

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