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double (*bar(int, double(*)(double,double[])))(double);

While reviewing a lecture slide, I found an exercise left to the student:

In plain English, what is the type of bar in this C declaration?

Please help walk me through this. I don't even know where to begin, except that something is ultimately returning a double.

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1  
don't know what the type is, but suddenly I'm thinking Tim Hortons for some reason... –  Marc B Nov 27 '12 at 20:24
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declare bar as function (int, pointer to function (double, array of double) returning double) returning pointer to function (double) returning double. (I cheated.) –  Hot Licks Nov 27 '12 at 20:25
    
(And that's a lot of double-talk.) –  Hot Licks Nov 27 '12 at 20:26
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The first reaction should be to catch the poor bastard who codes like that, and yell at him in plain English :) –  dasblinkenlight Nov 27 '12 at 20:27
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I'm not sure I fully understand why this question was closed as "too localized". While the exact line of code won't come up and need to be understood by most people, the ability to understand complex C declarations is a very useful skill... this question just exemplifies it. –  Mike Apr 14 at 16:19

2 Answers 2

up vote 7 down vote accepted

This answer is brought to you by the ability to use the Spiral Rule. Being able to understand a complex expression by starting at the unknown element and reading around it (resolving things in the parenthesis first). A very useful skill when reading code.

        bar                                            - bar
        bar()                                          - is a function
        bar(int, )                                     - which takes an int...
        bar(int, (*)())                                - and a function pointer
        bar(int, double(*)())                          - which returns a double
        bar(int, double(*)(double, ))                  - and takes a double...
        bar(int, double(*)(double, double[]))          - and an array of doubles
      (*bar(int, double(*)(double, double[])))         - and returns a pointer
      (*bar(int, double(*)(double, double[])))()       - to a function
      (*bar(int, double(*)(double, double[])))(double) - taking a double
double(*bar(int, double(*)(double, double[])))(double) - which returns a double

That was the hard way... There are of course sites that make this easier, the cdecl site for example; but it's good to be able to read code even when you can't get to the internet.

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Wow.......full credit. –  Aerovistae Nov 27 '12 at 22:32

If you're not sure you can always use the cdecl utility described in K&R like so:

$ cdecl
Type `help' or `?' for help
cdecl> explain double (*bar(int, double(*)(double,double[])))(double);
declare bar as function 
(int, pointer to function (double, array of double) returning double)
returning pointer to function (double) returning double

So bar is a function that takes an int and a pointer to a function that takes a double and double[] and returns a double:

double(*)(double,double[]))

And bar returns a pointer to another function that takes a double and returns a double

double(*)(double)
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Why does that exist...? –  Aerovistae Nov 27 '12 at 20:28
    
+1 for pointing to cdecl –  Olaf Dietsche Nov 27 '12 at 20:28
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Is it just me, or is the original code easier to read compared to that particular output of cdecl? :-P –  Nikos C. Nov 27 '12 at 20:31
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@NikosC. There's small choice in rotten apples :) –  dasblinkenlight Nov 27 '12 at 20:33
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@Aerovistae Pick the answer that helped you most. That's what the checkmark is meant to indicate. Only if you pick a downvoted answer (and perhaps not even then if it's at -1) have you reason to stop and think whether you should really accept that one. –  Daniel Fischer Nov 27 '12 at 23:28

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