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What the ... argument means in the declaration static void info(const char *fmt,...) ?

It's part of an C library I recently started to use. Sorry if it's basic C stuff but I never saw that before and google is not so verbose about ... !

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4 Answers 4

up vote 3 down vote accepted

It means variable arguments, which means the compiler will accept and compile calls to it with any arguments. Usually their types are indicated by values in preceeding arguments.

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variable arguments was the key words I was looking for ! –  vrince Jun 29 '11 at 14:17

It takes a variable number of arguments in your method. I found this article explaining the details. It gets very complicated very quickly as you can see.

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It is variable argument (Variadic function). It is just like printf.

 int printf(const char *format, ...)

For more info, check this.

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If a functions last argument is written as ... that means that the function takes arbitrarily many arguments (of arbitrary types as far as the compiler concerned - the function may of course require specific types, but the compiler has no way of enforcing those types).

These arguments can then be accessed using the va_* set of functions from stdarg.h.

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