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I have 2 storyboards one is for an iPhone 5 and the other for the 4s/4/3. I made my picker programmitcally and I positioned it accordingly so it fits on the iphone 5 with this code

 picker1 = [[UIPickerView alloc] initWithFrame:CGRectMake(13, 272.5, 294, 219
                                                        )];

etc.

But when I run it on my iPhone 4 it is too low and I dont want to ruin my iphone 5 since Ive spent the last two days perfect everything on it. Is there a way to have the iphone load the same picker but at different sizes and coordinates based on the screen size for instance if screen == 568 ..... else ....

?? This is the last step in my app. Any clue how to complete this ?

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1 Answer

up vote 1 down vote accepted

This should provide what you're after:

CGRect iphone5frame = CGRectMake(13, 272.5, 294, 219);
CGRect iphone4frame = CGRectMake(13, 272.5, 294, 219); // Edit these values for the iPhone 4
picker1 = [[UIPickerView alloc] initWithFrame:([[UIScreen mainScreen] bounds].size.height <= 480.0 ? iphone4frame : iphone5frame)];

EDIT: Updated code for more customization

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so i would basically just copy my picker1 = [[UIPickerView alloc] initWithFrame:CGRectMake(13, 272.5, 294, 219 )]; where you put the ( ) and make it fit the iphone 4? –  Gabriel Oct 8 '12 at 4:51
    
You would replace the line you posted with the lines I provided and replace the (whatever you want on the non-iPhone 5 display) with a proper number suited for an iPhone 4S/4/3/etc display. If this works for you please mark the answer as accepted. –  zsnow Oct 8 '12 at 4:56
    
to be honest i'm a bit lost on what goes after the int retina35= ? so for example i'd put int retina35 = (13,272.5,294,219); that would be the size and position of the picker on the iPhone4? –  Gabriel Oct 8 '12 at 6:16
    
The variable retina40 contains the y location you would like your UIPickerView to be at on the iPhone 5. The variable retina35 should contain the same value except targeted for the iPhone 4S/4/3/etc. –  zsnow Oct 8 '12 at 6:19
    
Yes, that's correct. –  zsnow Oct 8 '12 at 6:22
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