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This seems to work (compiler doesn't complain, anyway):

float adsr[4] = {0,1.0/PULSE_SPEED, 0,1};
[sequence setBaseADSR:adsr];

but I want to make it more concise and do this:

[sequence setBaseADSR:{0,1.0/PULSE_SPEED, 0,1}];

How do I do it? In javascript, I'd call stuff in the brackets an "array literal". Not sure if C languages have the same concept or terminology though.

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If you have control over this API, I would strongly recommend not passing around raw arrays like that. C arrays are messy and fiddly. –  Chuck Mar 23 '10 at 17:52
@Chuck what would you suggest instead? –  Tom Abraham Jul 12 '12 at 0:15

2 Answers 2

up vote 2 down vote accepted

The second way does not work because the compiler does not know which type the array elements are. However, this or something like this should work:

[sequence setBaseADSR:(float adsr[4] = {0,1.0/PULSE_SPEED, 0,1})];

as a declaration returns the leftmost element in the expression (cannot test it right now though)

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+1, but that looks... wrong... :P –  Dave DeLong Mar 23 '10 at 15:53
indeed. But is the same way we initialize counters in for loops, so for throwaway purposes, it suffices –  Victor Jalencas Mar 23 '10 at 15:54
Totally unnecessary. See Cirno de Bergerac's answer. –  Jonathan Sterling Nov 25 '10 at 2:21
can you post a link to Cimo's answer? can't see it here –  Victor Jalencas May 27 '13 at 16:09

If your compiler supports the C99 compound literal syntax, it's possible.

[sequence setBaseADRS:(float [4]){0,1.0/PULSE_SPEED,0,1}];
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One of my favorite features. I do this a lot for CGPoint, CGRect, UIEdgeInsets, etc: (CGRect){{x, y), {w, h}} –  nielsbot Feb 27 '12 at 20:16

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