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I want to write a Makefile which would run tests. Test are in a directory './tests' and executable files to be tested are in the directory './bin'.

When I run the tests, they don't see the exec files, as the directory ./bin is not in the $PATH.

When I do something like this:

EXPORT PATH=bin:$PATH
make test

everything works. However I need to change the $PATH in the Makefile.

Simple Makefile content:

test all:
    PATH=bin:${PATH}
    @echo $(PATH)
    x

It prints the path correctly, however it doesn't find the file x.

When I do this manually:

$ export PATH=bin:$PATH
$ x

everything is OK then.

How could I change the $PATH in the Makefile?

EDIT:

I've already find that it cannot be done :( http://unix.stackexchange.com/questions/11530/adding-directory-to-path-through-makefile

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Can you not just call the tests from the executable directory like ../test/test_to_run? Sorry if I have misunderstood the question. –  Chris Jan 20 '12 at 12:02
    
I want this file to be visible to the tests normally. I don't want to play with the directories, as I refactoring that would be a nighmare. –  Szymon Guz Jan 20 '12 at 12:12
    
The only way you can come close to this is to have the makefile write out a shell script containing the variable decls and then have the parent shell source that script with .. This is probably impractical however. –  Michael Smith Jan 20 '12 at 13:03

4 Answers 4

up vote 19 down vote accepted

Did you try export directive of Make itself (assuming that you use GNU Make)?

export PATH := bin:$(PATH)

test all:
    x

Also, there is a bug in you example:

test all:
    PATH=bin:${PATH}
    @echo $(PATH)
    x

First, the value being echoed is got by expanding PATH variable of Make itself, not the shell. If it prints the expected value then, I guess, you've set PATH variable somewhere earlier in your Makefile. To prevent such behavior you should escape dollars:

test all:
    PATH=bin:$$PATH
    @echo $$PATH
    x

Second, in any case this won't work because Make executes each line of the recipe in a separate shell. This can be changed by writing the recipe in a single line:

test all:
    export PATH=bin:$$PATH; echo $$PATH; x
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1  
$(PATH) will get set to the value of PATH of the shell invoking make. As per the manual, "Every environment variable that make sees when it starts up is transformed into a make variable with the same name and value." –  Emil Sit Jul 4 '13 at 4:43

Path changes appear to be persistent if you set the SHELL variable in your makefile first:

SHELL := /bin/bash
PATH := bin:$(PATH)

test all:
    x

I don't know if this is desired behavior or not.

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This fixed the problem I was having (I’m running zsh). Thanks! –  Jezen Thomas Mar 24 at 14:37
    
Yeah, this does indeed do what the OP wanted...but is it a feature or a bug? Even after reading the make manual's SHELL section I'm not sure. –  pje Apr 14 at 21:55

What I usually do is supply the path to the executable explicitly:

EXE=./bin/
...
test all:
    $(EXE)x

I also use this technique to run non-native binaries under an emulator like QEMU if I'm cross compiling:

EXE = qemu-mips ./bin/

If make is using the sh shell, this should work:

test all:
    PATH=bin:$PATH x
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Yep, cool soulution, however I've got my tests written in perl and I need to call the exe from the perl script, not directly from makefile. I've got to rethink the whole testing of this stuff :) –  Szymon Guz Jan 20 '12 at 12:58
    
Gotcha. How about setting PATH on the command line itself? See the edit above. –  Richard Pennington Jan 20 '12 at 13:00
    
Oh, I understand now. Sorry for the misinformation. –  Richard Pennington Jan 20 '12 at 13:03

To set the PATH variable, within the Makefile only, use something like:

PATH := $(PATH):/my/dir

test: @echo my new PATH = $(PATH)

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It doesn't work the way I want. I've updated the question withe examples of what I want to achieve. –  Szymon Guz Jan 20 '12 at 12:12

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