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Equivalent to 'long' in Java what do we have in Objective C, NSInteger?

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Does anyone know the reverse of this? I have a long in C and would like to use it in Java. –  JuiCe Jul 5 '12 at 19:26

3 Answers 3

up vote 9 down vote accepted

In Java, a long is always 64 bits. In C and Objective-C, a long might be 64 bits, or it might be 32 bits, or (in less common cases) it might be something else entirely; the C standard doesn't specify an exact bit width.

On OS X, an NSInteger is 64 bits on 64-bit platforms, and 32 bits on 32-bit platforms. 32-bit Mac platforms are increasingly rare, so you can probably use NSInteger and be fine.

However, if you always want a 64-bit integer, you'll probably want to use the int64_t data type defined in stdint.h.

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I think iphone/ios still has 32-bit longs. See discussions.apple.com/thread.jspa?messageID=9334648 –  Nordic Mainframe Mar 1 '11 at 23:11
    
@NordicMainframe yup, iPhone still rockin' 32-bit longs. –  Maurizio May 26 '13 at 23:28

A Java long is defined as a signed 64-bit value, neither long nor NSInteger guarantee this for Objective-C. For example, on 32-bit systems plaforms, NSInteger and long are 32-bit signed values. If your platform comes with C99 headers (for example when your compiler is gcc based), then you should have stdint.h which has platform independent definitions for integer types with guaranteed sizes. The 64 bit signed type is named int64_t.

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#include <stdint.h>
int64_t someVariable; // 64 bit signed integer, like Java's long

You didn't ask, but int32_t is the analogue to Java's int type (a 32-bit integer).

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