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I am trying to mimic template behavior in C++ using macros. For instance, if I wanted a list of int*, then I would do something like this:

typedef int* IntPtr;
List_DEFINE(IntPtr)

Note that List_DEFINE(IntPtr) has no semicolon because it is a macro. I have written my list "class" (really just a couple of structs with method pointers), and tested it before making it a macro. I am now trying to "macrotize" my code, and I am running into problems. I have defined my macro like this:

#define List_DEFINE(t) \
struct List_##t_Node { \
...

In the example above, I thought that ##t would be replaced with whatever was passed into t, but that does not seem to be the case. If I define two different types of lists, I get the following error:

test.cpp:85: error: redefinition of ‘struct List_t_Node’
test.cpp:75: error: previous definition of ‘struct List_t_Node’

So in the above example, I would want struct List_IntPtr_Node to be generated, but instead List_t_Node is generated. Why?

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You should look at the output of the preprocessor. For instance, if you're using GCC, you should use the -E flag. –  Oliver Charlesworth Feb 26 '12 at 16:51

2 Answers 2

up vote 2 down vote accepted

You need

List_##t##_Node
      //^^

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Thanks. I'll accept this in 8 minutes :P Could you possible explain the rules for when the 2nd pair of #'s is neccessary. For instance, Which of these would be valid? List_##t list or List_##t## list –  Max Feb 26 '12 at 16:56
3  
@Max: ## is a concat operator, it'll concat the left to the right, so when you need to join 3 things, is when you'll need two –  Necrolis Feb 26 '12 at 16:59

The token after ## is t_Node, so the preprocessor pastes List_ to t_Node.

To have t replaced by the macro parameter it has to be a single token, which can then be pasted to a preceding List_ and following _Node:

#define List_DEFINE(t) \
   struct List_ ## t ## _Node { \
   ...
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