6

Here is a simplified Makefile:

all:
    @for (( i = 0; i < 5; ++i )); do \
         var="$$var $$i"; \
         echo $$var; \
     done
    @echo $$var

I suppose the value of "var" is "0 1 2 3 4", but the output is:

0
0 1
0 1 2
0 1 2 3
0 1 2 3 4
               <--- NOTHING!!!

As you can see the last echo is "NOTHING". What is wrong?

2
  • I suspect that each recipe command is invoked in a subshell, so the "var" defined in the first recipe can not be referred in the second line. Is this right? – Li Dong Apr 15 '12 at 12:40
  • Tangentially, using @ in front of all your rules is an antipattern, and in particular, hampers debugging. Write (the majority of) your rules without it, and use make -s if you don't want to see what make is doing. – tripleee May 15 '20 at 3:53
11

From here:

When it is time to execute recipes to update a target, they are executed by invoking a new subshell for each line of the recipe...

Please note: this implies that setting shell variables and invoking shell commands such as cd that set a context local to each process will not affect the following lines in the recipe. If you want to use cd to affect the next statement, put both statements in a single recipe line. Then make will invoke one shell to run the entire line, and the shell will execute the statements in sequence.

Try the following:

all:
    @for (( i = 0; i < 5; ++i )); do \
         var="$$var $$i"; \
         echo $$var; \
     done; \
    echo $$var
0

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