87

Is there any differences in invoking variables with syntax ${var} and $(var)? For instance, in the way the variable will be expanded or anything?

70

There's no difference – they mean exactly the same (in GNU Make and in POSIX make).

I think that $(round brackets) look tidier, but that's just personal preference.

(Other answers point to the relevant sections of the GNU Make documentation, and note that you shouldn't mix the syntaxes within a single expression)

  • 9
    I use the $() in make to avoid causing myself confusion (more than already exists) between make and shell variables. GNU Make documentation on variable references. – Etan Reisner Aug 7 '14 at 15:02
  • Thanks to user @Eloy for suggesting an expansion to this answer, even though I rejected their compendium in favour of simply noting the valuable extra points in other answers. – Norman Gray Mar 18 '18 at 19:24
35

The Basics of Variable References section from the GNU make documentation state no differences:

To substitute a variable's value, write a dollar sign followed by the name of the variable in parentheses or braces: either $(foo) or ${foo} is a valid reference to the variable foo.

12

As already correctly pointed out, there is no difference but be be wary not to mix the two kind of delimiters as it can lead to cryptic errors like unomadh GNU make example.

From the GNU make manual on the Function Call Syntax (emphasis mine):

[…] If the arguments themselves contain other function calls or variable references, it is wisest to use the same kind of delimiters for all the references; write $(subst a,b,$(x)), not $(subst a,b,${x}). This is because it is clearer, and because only one type of delimiter is matched to find the end of the reference.

11

Actually, it seems to be fairly different:

, = ,
list = a,b,c
$(info $(subst $(,),-,$(list))_EOL)
$(info $(subst ${,},-,$(list))_EOL)

outputs

a-b-c_EOL
md/init-profile.md:4: *** unterminated variable reference. Stop.

But so far I only found this difference when the variable name into ${...} contains itself a comma. I first thought ${...} was expanding the comma not as part as the value, but it turns out i'm not able to hack it this way. I still don't understand this... If anyone had an explanation, I'd be happy to know !

  • Based on Edouard's answer, which notes that the GNU make documentation states there's no difference, I'd guess this could just be a bug. – Keith M Jan 27 '17 at 17:43
  • 4
    As pointed out in Alexandre Perrin's answer, the two syntaxes should not be mixed in the same line. – lenz May 8 '17 at 14:37
9

The ${} style lets you test the make rules in the shell, if you have the corresponding environment variables set, since that is compatible with bash.

2

It makes a difference if the expression contains unbalanced brackets:

${info ${subst ),(,:-)}}
$(info $(subst ),(,:-)))

->

:-(
*** insufficient number of arguments (1) to function 'subst'.  Stop.

For variable references, this makes a difference for functions, or for variable names that contain brackets (bad idea)

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