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typedef const char* Argv[3+ 8];

My guess at this point is the [3+8] is creating an anonymous array of type Argv (which is of type const char*). If I'm right, the anonymous array part is basically meaningless.

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Correct. It's the same as typedef const char * Argv[]; or even more succinctly, typedef const char ** Argv;. –  David Hammen Sep 7 '12 at 22:17
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@DavidHammen, I wouldn't say const char ** is a perfect substitue: liveworkspace.org/code/52a9cbdcc95968a9b2bf18e9488378f5 –  chris Sep 7 '12 at 22:22
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@DavidHammen - correct if it's used in a context where it decays. There are contexts where it doesn't. sizeof(Argv), for example. –  Pete Becker Sep 7 '12 at 22:22
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@OP, It's readable via the spiral rule. Argv is an array of (3+8) pointers to const char (const can be either to left or right of char here), bundled as a typedef. –  chris Sep 7 '12 at 22:25
    
Another approach is to think of it as a declaration: const char *Argv[3+8]; would define Argv as an array of 11 pointers to const char *. So the typedef defines it as a synonym for that type. –  Pete Becker Sep 7 '12 at 22:32

2 Answers 2

up vote 7 down vote accepted

It defines Argv as a synonym for "array of 11 const char*".

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Array of 8? Why not 3+8=11? –  jfritz42 Sep 7 '12 at 22:20
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@jfritz42 - because my arithmetic is broken. Thanks. I'll fix it. –  Pete Becker Sep 7 '12 at 22:21

same as

const char* somevar[11];

or IOW

Argv somevar;
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