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Is there any way to do this in a condensed form?

GLfloat coordinates[8];
...
coordinates[0] = 1.0f;
coordinates[1] = 0.0f;
coordinates[2] = 1.0f;
coordinates[3] = 1.0f;
coordinates[4] = 0.0f;
coordinates[5] = 1.0f;
coordinates[6] = 0.0f;
coordinates[7] = 0.0f;
return coordinates;

Something like coordinates = {1.0f, ...};?

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Are you returning a pointer to a local variable, there? Some of the things people have said in answers/comments below assume either that the variables involved are automatics, or that they're not. Might help if you specify. –  Steve Jessop Aug 20 '10 at 23:45
    
Once the struct is initialized, there isn't an easy way to mass-assign members (other than making a copy of another struct with memcpy). I often find myself wishing I had this feature. –  bta Aug 21 '10 at 0:20
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5 Answers

up vote 6 down vote accepted

If you really to assign values (as opposed to initialize), you can do it like this:

 GLfloat coordinates[8]; 
 static const GLfloat coordinates_defaults[8] = {1.0f, 0.0f, 1.0f ....};
 ... 
 memcpy(coordinates, coordinates_defaults, sizeof(coordinates_defaults));

 return coordinates; 
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This is good idea, maybe i'll do it this way. –  smsteel Aug 20 '10 at 23:01
    
Better even, make it "static const" and compilers can optimize the variable right out of the code. –  Zan Lynx Aug 20 '10 at 23:03
    
@Zan: Good point! –  James Curran Aug 20 '10 at 23:05
    
@Zan Lynx: Won't most compilers be smart enough to do that anyways? Oh well. Good practice to be explicit I suppose. –  Chris Cooper Aug 20 '10 at 23:42
    
@Chris Cooper: not if it's a global (which might be modified in code the compiler can't see). You can't really tell from these code snippets whether the "..." elides the start of a function. –  Steve Jessop Aug 20 '10 at 23:49
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Exactly, you nearly got it:

GLfloat coordinates[8] = {1.0f, ..., 0.0f};
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What if i've done it and want to reassign after? –  smsteel Aug 20 '10 at 22:57
    
@smsteel That syntax only applies to declarations –  Michael Mrozek Aug 20 '10 at 22:58
    
This is bad.. Is there other way to simplify it? :) –  smsteel Aug 20 '10 at 22:58
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The old-school way:

GLfloat coordinates[8];
...

GLfloat *p = coordinates;
*p++ = 1.0f; *p++ = 0.0f; *p++ = 1.0f; *p++ = 1.0f;
*p++ = 0.0f; *p++ = 1.0f; *p++ = 0.0f; *p++ = 0.0f;

return coordinates;
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You can use:

GLfloat coordinates[8] = {1.0f, ..., 0.0f};

but this is a compile-time initialisation - you can't use that method in the current standard to re-initialise (although I think there are ways to do it in the upcoming standard, which may not immediately help you).

The other two ways that spring to mind are to blat the contents if they're fixed:

GLfloat base_coordinates[8] = {1.0f, ..., 0.0f};
GLfloat coordinates[8];
:
memcpy (coordinates, base_coordinates, sizeof (coordinates));

or provide a function that looks like your initialisation code anyway:

void setCoords (float *p0, float p1, ..., float p8) {
    p0[0] = p1; p0[1] = p2; p0[2] = p3; p0[3] = p4;
    p0[4] = p5; p0[5] = p6; p0[6] = p7; p0[7] = p8;
}
:
setCoords (coordinates, 1.0f, ..., 0.0f);

keeping in mind those ellipses (...) are placeholders, not things to literally insert in the code.

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There's a trick to wrap the array into a struct (which can be initialized after declaration).

ie. struct foo { GLfloat arr[10]; }; ... struct foo foo; foo = (struct foo) { .arr = {1.0, ... } };

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Oh, you didn't need that, just plain initialization would do. Disregard my answer. –  domen Aug 20 '10 at 23:40
    
You can click "delete" in the bottom left of your post if you want. =P –  Chris Cooper Aug 21 '10 at 0:07
    
Oh, well... maybe someone finds it useful :-) –  domen Aug 24 '10 at 13:34
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