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I got a headache trying to count returns (\n) in my UITextView. As you'll soon realise, I'm a bloody beginner and here is my theory of what I've come up with, but there are many gaps...

- (IBAction)countReturns:(id)sender {

int returns;

while ((textView = getchar()) != endOfString [if there is such a thing?])
{
   if (textView = getchar()) == '\n') {
   returns++;
   }
}

NSString *newText = [[NSString alloc] initWithFormat:@"Number of returns: %d", returns];
    numberReturns.text = newText;

    [newText release];
    }   

I checked other questions on here, but people are usually (in my eyes) lost in some details which I don't understand. Any help would be very much appreciated! Thanks for your patience.

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3 Answers 3

up vote 5 down vote accepted

You can simply

UITextView *theview; //remove this line, and change future theview to your veiw
NSString *thestring; //for storing a string from your view
int returnint = 0;
thestring = [NSString stringWithFormat:@"%@",[theview text]];

for (int temp = 0; temp < [thestring length]; temp++){ //run through the string
if ([thestring characterAtIndex: temp] == '\n')
    returnint++;
}
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Does \n count as 1 character? –  Aurum Aquila Mar 9 '11 at 15:54
    
The \indicates an escape sequence. \n is indeed a single character. –  ultifinitus Mar 9 '11 at 15:59
    
Thanks, very helpful and so graceful programmed. I know, I know, people must think this is bloody easy, but I really like it. I shall commit this to my memory. Thanks again! –  n.evermind Mar 9 '11 at 16:20
    
Glad to help, good luck! –  ultifinitus Mar 9 '11 at 16:36

there are a lot of ways to do that. Here is one:

NSString *str = @"FooBar\n\nBaz...\n\nABC\n";
NSString *tmpStr = [str stringByReplacingOccurrencesOfString:@"\n" withString:@""];
NSInteger count = [str length] - [tmpStr length];
NSLog(@"Count: %d", count);
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NSArray *newlines = [textView.text componentsSeparatedByString:@"\n"];
int returns = ([newlines count]-1)

Should work. Keep in mind this isn't such a great idea if you have a gia-normous string, but it's quick, dirty and easy to implement.

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