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I have long integer value ( ex: 2705758126 ) in NSString.

When i try to show it: NSLog(@"%i", [myValue integerValue]); it return: 2147483647.

How to show, compare and etc. this long integer

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4 Answers

up vote 10 down vote accepted

Try with

NSLog(@"%lld", [myValue longlongValue]);
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it is longLongValue :) – Akki May 16 '11 at 16:55
I made an edit to fix the case in the method. I had to add a link because edits of less than 6 characters are not allowed... (That is very annoying, and has bitten me on more than one occasion.) – Stig Brautaset Jun 14 '12 at 13:14
up vote 4 down vote

The documentation recommends using @"%ld" and @"%lu" for NSInteger and NSUInteger, respectively. Since you're using the integerValue method (as opposed to intValue or longLongValue or whatever), that will be returning an NSInteger.

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he has a long integer – IlDan Jul 18 '09 at 15:21
@IlDan No, he has an NSString that he's converting to an NSInteger which means it might be an int (on 32-bit machines) or it might be a long it (on 64-bit machines). – Dave DeLong Jul 18 '09 at 15:25
Oh well, I tend to listen to what people say. I'm reading "I have long integer value". – IlDan Jul 18 '09 at 15:35
@IlDan yeah I missed the NSString bit the first time reading it, too. =) – Dave DeLong Jul 18 '09 at 15:36
Seems to me the poster has a string that contains a number which will overflow a 32 bit value. Therefore NSInteger won't be good enough on a 32 bit machine. – Stig Brautaset Jul 18 '09 at 16:06
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up vote 2 down vote

You should have a look at Apple's documentation. NSString has the following method:

- (long long)longLongValue

Which should do what you want.

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up vote 1 down vote

from this example here, you can see the the conversions both ways: 

NSString *str=@"5678901234567890";

long long verylong;  
NSRange range;  
range.length = 15;  
range.location = 0;  

[[NSScanner scannerWithString:[str substringWithRange:range]] 
       scanLongLong:&verylong];

NSLog(@"long long value %lld",verylong);
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