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I have an app that runs on the iPhone and iPod Touch, it can run on the Retina iPad and everything but there needs to be one adjustment. I need to detect if the current device is an iPad. What code can I use to detect if the user is using an iPad in my ViewController and then change something accordingly? Thanks!

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5 Answers

up vote 169 down vote accepted

There are quite a few ways to check if a device is an iPad. This is my favorite way to check wether the device is in fact an iPad:

if ( UI_USER_INTERFACE_IDIOM() == UIUserInterfaceIdiomPad )
{
    return YES; /* Device is iPad */
}

The way I use it

#define IDIOM    UI_USER_INTERFACE_IDIOM()
#define IPAD     UIUserInterfaceIdiomPad

if ( IDIOM == IPAD ) {
    /* do something specifically for iPad. */
} else {
    /* do something specifically for iPhone or iPod touch. */
}   

Other Examples

if ( [(NSString*)[UIDevice currentDevice].model hasPrefix:@"iPad"] ) {
    return YES; /* Device is iPad */
}

#define IPAD     UI_USER_INTERFACE_IDIOM() == UIUserInterfaceIdiomPad
if ( IPAD ) 
     return YES;
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Wonderful! Thankyou! Just what I was looking for! :) –  Albert Renshaw Apr 16 '12 at 0:08
11  
The way you use it isn't as efficient as it could be. UI_USER_INTERFACE_IDIOM() is equivalent to ([[UIDevice currentDevice] respondsToSelector:@selector(userInterfaceIdiom)] ? [[UIDevice currentDevice] userInterfaceIdiom] : UIUserInterfaceIdiomPhone). You might be better off caching the result somewhere: BOOL iPad = UI_USER_INTERFACE_IDIOM() == UIUserInterfaceIdiomPad; … if (iPad) …. –  Marcelo Cantos Feb 16 '13 at 0:04
5  
I would use hasPrefix rather than isEqualToString in your last method. In this way the code works on the simulator as well. –  elbuild Sep 27 '13 at 11:00
    
will the above work for iPad mini? –  Arun Rvrjc Apr 10 at 8:00
    
Yes this will return iPad for the mini. –  WrightsCS Apr 10 at 14:06
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UI_USER_INTERFACE_IDIOM() only returns iPad if the app is for iPad or Universal. If its an iPhone app being ran on an iPad then it won't. So you should instead check the model.

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This was exactly my issue. Sadly I looked over your answer hours ago. –  thefoyer May 23 at 17:34
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You can also use this

#define IPAD UI_USER_INTERFACE_IDIOM() == UIUserInterfaceIdiomPad
...
if (IPAD) {
   // iPad
} else {
   // iPhone / iPod Touch
}
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Nice! Gotta love succinct syntax. –  Clifton Labrum Jan 8 at 0:21
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This is part of UIDevice as of iOS 3.2, e.g.:

[UIDevice currentDevice].userInterfaceIdiom == UIUserInterfaceIdiomPad
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idiom is generally better but if you are running an iphone app on iPad than this will return UIUserInterfaceIdiomPhone. –  Yunus Nedim Mehel Dec 18 '13 at 17:05
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I found that this didn't work for me in the Simulator within Xcode 4.5

NSString *deviceModel = (NSString*)[UIDevice currentDevice].model;

if ([[deviceModel substringWithRange:NSMakeRange(0, 4)] isEqualToString:@"iPad"]) {
    DebugLog(@"iPad");
} else {
    DebugLog(@"iPhone or iPod Touch");
}

Also in the 'Other Examples' in Xcode the device model comes back as 'iPad Simulator' so the above tweak should sort that out.

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Maybe Apple updated the simulator to say something like "iPad simulator" or "iPad 2.1" or something... if that's the case you could use hasSuffix:@"iPad" instead of isEqualToString@"iPad"... your best bet is to Log the device model that simulator does return and go from there... –  Albert Renshaw Nov 14 '12 at 21:31
    
*^ I meant hasPrefix of course... haha –  Albert Renshaw Jun 26 at 21:30
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