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I'm reading about Typedef on wikipedia. Example mentioned on that page is

typedef int km_per_hour ;
typedef int points ;

km_per_hour current_speed ;
points high_score ;
...

void congratulate(points your_score) {
if (your_score > high_score)
...

Going further it says this which I'm not able to understand why?

void foo() {
unsigned int a;         // Okay
unsigned km_per_hour b; // Compiler complains
long int c;             // Okay
long km_per_hour d;     // Compiler complains
...

Why does the compiler complain for unsigned and long?

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5  
Note that typedefs aren't the same as macros. –  Mysticial Sep 22 '12 at 6:33
    
Just like signed and unsigned cannot be used with user defined types (like structures), they cannot be used with typedef's also. –  Jay Sep 22 '12 at 7:27

4 Answers 4

up vote 3 down vote accepted

You cannot prepend signed or unsigned before a typedef'd type. signed and unsigned can only modify basic integer types and do that directly.

The compiler parses signed or unsigned either alone or near char, short, int and long. In all other cases they are considered invalid/unexpected/misplaced.

In that sense, signed and unsigned don't work as const or volatile modifiers.

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typedefs can not be modified or used like macros. You have km_per_hour as an int, so it can be used only as such!

You should either change the definition of the typedefs or define new ones to get rid of the compiler problems.

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You can't modify the typedef with an extra specifier. You should write only km_per_hour b; and km_per_hour d; I hope this helps.

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Because you have defined a type - i.e put the sword into the ground and made your case.

You cannot then go about and change your case. That does not work in a court of law nor in a compiler.

Sorry for the metaphor.

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