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How can I convert a NSString containing a number of any primitive data type (e.g. int, float, char, unsigned int, etc.)? The problem is, I don't know which number type the string will contain at runtime.

I have an idea how to do it, but I'm not sure if this works with any type, also unsigned and floating point values:

long long scannedNumber;
NSScanner *scanner = [NSScanner scannerWithString:aString];
[scanner scanLongLong:&scannedNumber]; 
NSNumber *number = [NSNumber numberWithLongLong: scannedNumber];

Thanks for the help.

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13 Answers 13

up vote 869 down vote accepted

Use an NSNumberFormatter:

NSNumberFormatter *f = [[NSNumberFormatter alloc] init];
f.numberStyle = NSNumberFormatterDecimalStyle;
NSNumber *myNumber = [f numberFromString:@"42"];

If the string is not a valid number, then myNumber will be nil. If it is a valid number, then you now have all of the NSNumber goodness to figure out what kind of number it actually is.

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79  
+1 for 42, it's always good to see that! –  Irene May 31 '12 at 14:00
10  
For people where it doesn't seem to work: Check if it's related to your locale. The NSNumberFormatter (as far as I know) by default uses the US locale, i.e. expects the decimal separator to be the "." character. If you use "," to separate the fraction, you may need to tell the formatter to use your current locale: [f setLocale:[NSLocale currentLocale]]; –  pille Sep 28 '12 at 9:50
    
@pille by default the locale is the +currentLocale, but you're correct; one must always consider the locale when dealing with converting stuff to-and-from human-readable form. –  Dave DeLong Nov 22 '12 at 5:57

You can use -[NSString integerValue], -[NSString floatValue], etc. However, the correct (locale-sensitive, etc.) way to do this is to use -[NSNumberFormatter numberFromString:] which will give you an NSNumber converted from the appropriate locale and given the settings of the NSNumberFormatter (including whether it will allow floating point values).

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14  
+q Depending on the situation, non-locale-sensitive might actually be the correct way. –  Thilo Sep 12 '11 at 6:46
1  
I had to convert @"2000" to an int and [@"2000" integerValue] worked nicely and is a little simpler for my case. –  Besi Feb 2 '12 at 15:09
2  
There are also huge performance differences among these methods. –  Tom Andersen Jun 21 '13 at 14:56
    
this does not work with ARC: it won't convert NSInteger to NSNumber. I have to further use [NSNumber numberWithInteger ...] –  learner Aug 3 '14 at 3:08

For strings starting with integers, e.g., @"123", @"456 ft", @"7.89", etc., use -[NSString integerValue].

So, @([@"12.8 lbs" integerValue]) is like doing [NSNumber numberWithInteger:12].

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I'm surprised nobody mentioned using the @-notation yet:

NSNumber *num1 = @([@"42" intValue]);
NSNumber *num2 = @([@"42.42" floatValue]);

Addendum

And in Swift:

if let intValue = "42".toInt() {
    let number1 = NSNumber(integer:intValue)
}
let number2 = NSNumber(float:("42.42" as NSString).floatValue)
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1  
I prefer this based on profiling when I was parsing a large amount of string values. Using this syntax rather then an NSNumberFormatter led to significant reduction in time spent parsing the string to NSNumber. And yes the NSNumberFormatter was cached and reused. –  androider Mar 5 '14 at 12:27
2  
this literal syntax didn't exist when this question was asked. I'd say this is the correct answer nowadays though. –  brbob Sep 25 '14 at 22:09
    
I agree, but do note that some other countries use the , and . the other way around (eg 42.000,42. Something floatValue probably does not account for? –  Kevin R Oct 27 '14 at 12:49
    
This is the nicest solution on here, however I have just run a test and you will lose unsigned precision so WATCH OUT!!! –  Stoff81 Apr 28 at 11:47

You can also do this:

NSNumber *number = @([dictionary[@"id"] intValue]]);

Have fun!

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If you know that you receive integers, you could use:

NSString* val = @"12";
[NSNumber numberWithInt:[val intValue]];
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Here's a working sample of NSNumberFormatter reading localized number NSString (xCode 3.2.4, osX 10.6), to save others the hours I've just spent messing around. Beware: while it can handle trailing blanks ("8,765.4 " works), this cannot handle leading white space and this cannot handle stray text characters. (Bad input strings: " 8" and "8q" and "8 q".)

NSString *tempStr = @"8,765.4";  
     // localization allows other thousands separators, also.
NSNumberFormatter * myNumFormatter = [[NSNumberFormatter alloc] init];
[myNumFormatter setLocale:[NSLocale currentLocale]]; // happen by default?
[myNumFormatter setFormatterBehavior:NSNumberFormatterBehavior10_4];
     // next line is very important!
[myNumFormatter setNumberStyle:NSNumberFormatterDecimalStyle]; // crucial

NSNumber *tempNum = [myNumFormatter numberFromString:tempStr];
NSLog(@"string '%@' gives NSNumber '%@' with intValue '%i'", 
    tempStr, tempNum, [tempNum intValue]);
[myNumFormatter release];  // good citizen
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this doesn't work for me. I'm developing for 5.0 with xcode 4.3.2. any ideas why? –  acecapades Sep 7 '12 at 3:34

I wanted to convert a string to a double. This above answer didn't quite work for me. But this did: How to do string conversions in Objective-C?

All I pretty much did was:

double myDouble = [myString doubleValue];
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This doesn't convert the NSInteger to a NSNumber. It converts it to a double. –  FabKremer Mar 10 at 18:10

Thanks All! I am combined feedback and finally manage to convert from text input ( string ) to Integer. Plus it could tell me whether the input is integer :)

NSNumberFormatter * f = [[NSNumberFormatter alloc] init];
    [f setNumberStyle:NSNumberFormatterDecimalStyle];
    NSNumber * myNumber = [f numberFromString:thresholdInput.text];

    int minThreshold = [myNumber intValue];


NSLog(@"Setting for minThreshold %i", minThreshold);

if ((int)minThreshold < 1 )
{
    NSLog(@"Not a number");
}
else {
    NSLog(@"Setting for integer minThreshold %i", minThreshold);
}


[f release];
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I think NSDecimalNumber will do it:

Example:

NSNumber *theNumber = [NSDecimalNumber decimalNumberWithString:[stringVariable text]]];

NSDecimalNumber is a subclass of NSNumber, so implicit casting allowed.

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What about C's standard atoi?

int num = atoi([scannedNumber cStringUsingEncoding:NSUTF8StringEncoding]);

Do you think there are any caveats?

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You can just use [string intValue] or floatValue or doubleValue etc

You can also use NSNumberFormatter class: https://developer.apple.com/library/mac/documentation/cocoa/reference/foundation/classes/NSNumberFormatter_Class/Reference/Reference.html

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NSDecimalNumber *myNumber = [NSDecimalNumber decimalNumberWithString:@"123.45"];
NSLog(@"My Number : %@",myNumber);
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