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My question is deceptively simple, but I have lost several hours of study trying to get the solution. I'm trying to create a Makefile that builds an executable for each .c file in a directory.

I have tried the following:

CC = gcc
SRCS = $(wildcard *.c)
OBJS = $(patsubst %.c,%.o,$(SRCS))

all: $(OBJS)
$(CC) $< -o $@

%.o: %.c
    $(CC) $(CPFLAGS)  -c  $<

but this way it is creating only .o files, and not any executables. I need a rule that makes an executable for each of these .o files. Something like the following:

gcc src.o -o src
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FWIW, HTH stackoverflow.com/questions/5950395/… – Robert Dec 4 '12 at 12:43

rob's answer doesn't seem to work on my machine. Perhaps, as the complete Makefile:

SRCS = $(wildcard *.c)

all: $(SRCS:.c=)

.c:
     gcc $(CPFLAGS) $< -o $@

(The last two lines, are on my machine, unnecessary, as the default rules are adequate.)

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1  
That's exactly what I wanted. Very Thank. was not able to properly use ':.' – eduardomoroni Apr 4 '12 at 11:04

Your all is telling it just to build the object files. Add something like

EXEC = $(patsubst %.c,%,$(SRCS))

all: $(EXEC)

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Try the following:

% : %.c
    $(CC) $(CFLAGS) $(CPPFLAGS) -o $@ $<
all: $(basename $(wildcard *.c))

and you don't even need the first two lines, as make knows how to compile and link .c files into executables. Still, it is often necessary to change make's built-in recipes.

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