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Is there a build preprocessor macro I can check, with #if or #ifdef to determine if my current Xcode project is being built for iPhone or iPad?

EDIT

As several answers have pointed out, often apps are universal, and the same binary can run on both devices. Conditional behavior between these very similar devices should be solved at runtime rather than compile time.

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up vote 8 down vote accepted

There is no way to determine whether your app is built for iPhone or iPad. Preprocessor #if directives are resolved during build. Once your app is built and flagged as Universal, it has to run correctly on both devices. During building nobody knows where it will be installed later and one build can be installed on both.

However you may want to do one of these:

  1. Detect device model during runtime.

    To do this, use [[UIDevice currentDevice] model] and compare to iPhone, iPod touch or iPad strings. This will return you correct device even when running in compatibility mode on iPad (for iPhone-only apps). This can be usefull for usage analytics.

  2. Detect user interface idiom during runtime.

    This is what everyone checks for, when providing different content for iPhone and iPad. Use [[UIDevice currentDevice] userInterfaceIdiom] and compare to UIUserInterfaceIdiomPhone or UIUserInterfaceIdiomPad. You may want to make convenience methods like this:

    @implementation UIDevice (UserInterfaceIdiom)
    
    - (BOOL)iPhone {
        return (self.userInterfaceIdiom == UIUserInterfaceIdiomPhone);
    }
    + (BOOL)iPhone {
        return [[UIDevice currentDevice] iPhone];
    }
    
    - (BOOL)iPad {
        return (self.userInterfaceIdiom == UIUserInterfaceIdiomPad);
    }
    + (BOOL)iPad {
        return [[UIDevice currentDevice] iPad];
    }
    
    @end
    

    Then you can use:

    if ([[UIDevice currentDevice] iPhone]) { }
    // or
    if ([UIDevice iPhone]) { }
    // or
    if (UIDevice.iPhone) { }
    
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I asked this over 2 years ago, I now understand when runtime vs compile time checks should be used. Thanks for the Answer! Im sure it will help others out. – Justin Meiners May 9 '13 at 18:36
    
Oh, the date! So I hope it will help someone. – Tricertops May 10 '13 at 9:10
2  
Why on earth isn't this the accepted answer? – Josh Caswell Aug 14 '13 at 7:29
NSString *deviceType = [UIDevice currentDevice].model;

if([deviceType isEqualToString:@"iPhone"]) {
    //iPhone
}
else if([deviceType isEqualToString:@"iPod touch"]) {
    //iPod Touch
}
else {
    //iPad
}

You cannot, as far as I am concerned, use #if or #ifdef to do this but, it is supported because Obj-C is a strict superset of C.

Related: Determine device (iPhone, iPod Touch) with iPhone SDK

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Thats what I was afraid of since they essential run the same applications. – Justin Meiners Sep 13 '10 at 0:03
    
Obj-C is a strict superset of Obj-C??? – Alexander Rafferty Sep 13 '10 at 0:05
4  
You can't do a compile-time check for a "universal binary" because it's being built for both. If you build separate iPad and iPhone apps, then there are many ways, including defining your own compiler macros for the different targets. – tc. Sep 13 '10 at 0:43
2  
This isn't safe! Tomorrow Apple change the string and you App stop working correctly. The userInterfaceIdiom property from UIDevice is the safest way. – SEQOY Development Team Aug 12 '11 at 15:30
1  
Not safe. You shouldn't compare strings but use the UIDevice API instead. – DZenBot Jan 2 '13 at 4:01

Some ideas in the comment section of this blog

http://greensopinion.blogspot.com/2010/04/from-iphone-to-ipad-creating-universal.html

Mostly using

UI_USER_INTERFACE_IDIOM()

Such as:

#ifdef UI_USER_INTERFACE_IDIOM()
  #define IS_IPAD() (UI_USER_INTERFACE_IDIOM() == UIUserInterfaceIdiomPad)
#else
  #define IS_IPAD() (false)
#endif
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That is a little hacky but that is pretty cool. – Justin Meiners Sep 13 '10 at 0:16
2  
this is actually suggested in apple lecture from wwdc. – Vojto Sep 13 '10 at 1:06
    
Why bother with the macro? Nobody supports iOS lower than 3.2, so the advantage of the UI_USER_INTERFACE_IDIOM is none. – Tricertops May 9 '13 at 14:28
    
This question and answer is from 2010. – Lou Franco May 9 '13 at 18:07
    
@LouFranco Sorry, next time I will check the date. – Tricertops May 10 '13 at 11:19

Check my answer http://stackoverflow.com/a/18226313/1934750 You can't do this with one binary. You need on binary for iPhone and one for iPad. Of course you can use universal binary for iPhone and iPad, but you will need to determine devices' idiom at runtime.

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Thank you, I came to that realization a little after asking the question (see edit). – Justin Meiners Aug 14 '13 at 15:58

Updation for swift:

Couldn't use preprocessor. Make global function as

func IS_IPAD() -> Bool { 
( return (UIDevice.respondsToSelector(Selector("userInterfaceIdiom"))) && (UIDevice.currentDevice().userInterfaceIdiom == UIUserInterfaceIdiom.Pad) )}
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2  
As documented in the UI_USER_INTERFACE_IDIOM() macro, you only need to check for the selector if you're deploying for an iOS version less than 3.2. Using Swift precludes that. ;) – Christopher Rogers Aug 8 '14 at 2:42

I use the following code for AppleTV 4 because UIUserInterfaceIdiomUnspecified, doesn't seem to work, nor can I find any other enums:

#ifdef TARGET_OS_IOS
CGSize result = [[UIScreen mainScreen] bounds].size;
    if(result.width == 1920) {
        NSLog(@"tvOS");
    }
#endif

I used to use this for iPad and such before the dark times, before the empire- OB1, hah good night. But you can use this similar technique for other screen sizes you know of.

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