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I want to declare my wildcard target as phony, but phony doesn't support wildcards:

My makefile:

%.config:
        gcc <<compile>>

I want the user to be able to use my makefile to compile the project, using a specific configuration file:

make something.config
make something_else.config

obviously, I need my target to be phony, becuase the target files exist, but simply writing:

.PHONY: %.config

doesn't work. I've seen here that makeapp supports another syntax, that would help:

$(phony %.config): ...

but I can only use make, and not makeapp.

Is there any way to do it with make?

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"I want the user to be able to use my makefile to compile any .c file" What? That's not what make is for. –  Ignacio Vazquez-Abrams Jun 20 '12 at 11:09
    
It's just an example, to show my problem. In reality, the user runs "make <config file>| and the makefile compiles the code with this coniguration –  user1340472 Jun 20 '12 at 11:11
1  
@user1340472: Then can you update your question to show code that more accurately reflects what you are trying to do? make config_file doesn't sound a lot like make source_file.c... –  Oli Charlesworth Jun 20 '12 at 11:13
    
OK. edited...... –  user1340472 Jun 20 '12 at 11:19

1 Answer 1

These are conflicting aims. A phony target is one that doesn't correspond to a real file. In your case, the file exists, but it's not really a target.

I would suggest not using the name of the config file as the target. Instead, construct a system based on one of the following:

make something_else
make CONFIG=something_else.config
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