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I need to allow the end user enter only 1-9 digits:

- (BOOL)textField:(UITextField *)textField shouldChangeCharactersInRange:(NSRange)range replacementString:(NSString *)string{
        NSString *newString = [textField.text stringByReplacingCharactersInRange:range withString:string];
        if([newString length]>=1)
        {
            NSString *sepStr=[newString substringToIndex:1];
            return !([sepStr length]>1);
        }

        if ([string length] == 0 && range.length > 0){
            textField.text = [textField.text stringByReplacingCharactersInRange:range withString:string];
            return NO;
        }
        NSCharacterSet *nonNumberSet = [[NSCharacterSet characterSetWithCharactersInString:@"0123456789"] invertedSet];
        if ([string stringByTrimmingCharactersInSet:nonNumberSet].length > 0)return YES;
        return NO;
    }

But it's still possible to enter more than 1 number. Please help to find an error.

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Do you mean you want to limit input to a 1-9 digits, as in "5" or "123456789" but not "1234567890", or one digit between 1 and 9, as in "1" or "5" but not "0" or "12"? –  Kevin Oct 6 '12 at 18:27
    
I mean allow only characters in the diapason {1,2,3,4,5,6,7,8,9}, so for example 1 and not 12 –  barn.gumbl Oct 6 '12 at 18:29

5 Answers 5

up vote 3 down vote accepted

Just add this to your first test :

if ([newString length] > 1)
    return NO;
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Why don't you specify the numeric keyboard/keypad for this field with a max length of 1?

The UITextField object has a keyboardType property. Set it to UIKeyboardTypeDecimalPad

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sorry for maybe dumb question, how can I do it? –  barn.gumbl Oct 6 '12 at 18:31
    
textField.keyboardType = UIKeyboardTypeDecimalPad; –  parilogic Oct 6 '12 at 18:45
    
ok, many thanks, now I have a proper keyboard, but I still can enter a decimal number. How can I solve it? –  barn.gumbl Oct 6 '12 at 18:51
    
Then you have to make custom keyboard. Or else picker is the better option. You can show 1 to 9 and user will choose it. –  parilogic Oct 6 '12 at 19:05
    
yep, it's possible, but for me it seems that it's a case that had to be considered by the platform. :( –  barn.gumbl Oct 6 '12 at 19:17

Cyrille has the correct answer, but just to let you know why it's not currently working:

When you enter the second digit, the code will go into this if statement:

if([newString length]>=1)
{
    NSString *sepStr=[newString substringToIndex:1];
    return !([sepStr length]>1);
}

which is always going to return YES, because sepStr is always going to have a length of 1.

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you are right, many thanks. –  barn.gumbl Oct 6 '12 at 19:21
NSString *number = @"[0-9]"; 
NSPredicate *numbertest = [NSPredicate predicateWithFormat:@"SELF MATCHES %@", number]; 
if ([numbertest evaluateWithObject:yourtextfield.text] != YES)
{
// Display error message
}

just use this code

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Use this code it will work for me (Working Code)

#define ACCEPTABLE_CHARACTERS @"0123456789"

-(BOOL)textField:(UITextField *)textField shouldChangeCharactersInRange:(NSRange)range replacementString:(NSString *)string { if ([textField isEqual:zipCode]) {

    NSCharacterSet *cs = [[NSCharacterSet characterSetWithCharactersInString:ACCEPTABLE_CHARACTERS] invertedSet];
    NSString *filtered = [[string componentsSeparatedByCharactersInSet:cs] componentsJoinedByString:@""];
    return [string isEqualToString:filtered];

}

return YES;

}

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