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I'm writing a Makefile for C. I want be able to specify different programs for compilation and linking via environmental variables. However, I want it works without any additional variables too. I was trying to link with ld. However, the default doesn't link with standard C library.

The question:
How to link C program with ld or $LD
Is it possible to get appropriate flags from cc?

I cannot use $(CC) in place of $(LD). The LD ?= cc doesn't work too.

I want something like this to be true:
Environment variable CC set to tcc.
Environment variable LD unset.
My Makefile compile using tcc and link using system default linker for C.

Unfortunately, some C compilers are unable to link some libraries. I have this problem with tcc and glfw.

P.S.
Linux user

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I wasn't aware that Make had a variable called LD... –  Oliver Charlesworth Jan 1 '12 at 17:16

4 Answers 4

up vote 5 down vote accepted
+100

The conditional assignment $(LD) ?= cc can not work, since $(LD) is predefined.

If you want to start make without predefined variables, use the option -R:

   > make -p | grep LD
   ... 
   LD = ld
   ...
   > make -p -R | grep LD
   >
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Instead of using ld as the linker, use gcc or g++. They add the appropriate command line options for getting libraries and startup code, etc. In other words:

ld -o main main.o

is equivalent to:

gcc -o main main.o

except that gcc adds all the command line parameters when it calls ld.

In other words: LD=gcc.

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How to write in Makefile something like this: if (is_unset($(LD))) LD = gcc endif –  Michas Jan 1 '12 at 17:25
    
LD ?= gcc works too. –  Richard Pennington Jan 1 '12 at 17:27
2  
You shouldn't use $(LD) when linking a C program. You should use $(CC) $(LDFLAGS) instead. –  Lars Wirzenius Jan 1 '12 at 17:31
2  
@Lars Wirzenius It doesn't work for some libraries if $(CC) == tcc –  Michas Jan 1 '12 at 17:34
1  
@Michas, you should probably figure out why not, in that case. –  Lars Wirzenius Jan 1 '12 at 19:04

One of the main features of tcc is that :

tcc is a compiler and a linker [...] it compile and execute C source directly. No linking or assembly necessary

There's more detail in tcc documentation, it says about linking that :

Dynamic ELF libraries can be output but the C compiler does not generate position independent code (PIC). It means that the dynamic library code generated by TCC cannot be factorized among processes yet.

It means that, if you want to use tcc, you'll need to link with tcc.

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As I see, you can define rule-dependent values for variables.

build_with_tcc: CC=tcc compile_tcc

compile_tcc:
    ## Commands to do a full build with tcc.

build_with_gcc: CC=gcc LD=g++ link_gcc

compile_gcc:
    ## Commands to compile with gcc.

link_gcc: compile_gcc
    ## Commands to link with g++.

And build it by calling the appropriate rule.

If you wish, in other hand, to be able to pass an arbitrary compiler toolchain, you will have to have some resctrictions anyway.

The rule:

build_with_arbitrary: compile_arbitrary link_arbitrary

Implies that your build must be done in two steps and the respective rules (compile_arbitrary and link_arbitrary) must obey the same commandline.

So you can invoke make with custom CC and LD variables:

CC=any_cc LD=any_ld make build_with_arbitrary

Lastly, you can add a dirty check for LD being empty in the linker step, and only perform it if not.

link_arbitrary:
    [ -n "$(LD)" ] && do_linker_stuff

So you could use build_with_arbitrary even for a compiler that does everything in a single step just by passing:

CC=any_cc LD= make build_with_arbitrary

I hope to have correctly understood your question. Sorry if I misunderstood, and please tell me were I am wrong.

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