Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.
NSMutableString *a = @"Hi";

NSMutableString *b =[a stringByAppendingString:@"\n\n Hi Again"];

The above doesn't give an error but does not put "Hi Again" on the next line. Why?

share|improve this question
6  
How/where are you attempting to output the mutable string? –  middaparka Mar 27 '11 at 21:27
    
HTML replaces whitespace runs, including \n characters, with a single space; that's why there's  . Whatever you're rendering the string with (WebKit?) could be doing something similar. –  Mike DeSimone Mar 27 '11 at 22:41
    
The output is to View on iPhone window –  Michael Mar 28 '11 at 1:36

5 Answers 5

EDIT2 I realised after posting, that the OP had NSString in the title but put NSMutableString in the code. I have submitted an edit to change the NSMutableString to NSString.

I will leave this as it still maybe helpful.


Well I am surprised that does not give an error, because you are giving a NSMutableString a NSString.

You need to read the Documentation on NSMutableStrings.

to give you an idea

//non mutable strings
  NSString *shortGreetingString = @"Hi";
NSString *longGreetingString =  @"Hi Again";
 /*mutable string - is created and given a character capacity The number of characters indicated by capacity is simply a hint to increase the efficiency of data storage. The value does not limit the length of the string
*/

NSMutableString *mutableString= [NSMutableString stringWithCapacity:15];

/*The mutableString, now uses an appendFormat to construct the string
     each %@ in the Parameters for the appendFormat is a place holder for values of NSStrings
     listed in the order you want after the comma. 
    Any other charactars will be included in the construction, in this case the new lines.
*/
[mutableString appendFormat:@"%@\n\n%@",shortGreetingString,longGreetingString];


NSLog (@"mutableString = %@" ,mutableString);

[pool drain];
share|improve this answer

I think this might help you. You'd rather to use '\r' instead of '\n'

I also had a similar problem and found \n works in LLDB but not in GDB

share|improve this answer

Try using NSString. You could use:

NSString *a = [NSString stringWithFormat:@"%@\n\n%@", @"Hi", @"Hello again"]
share|improve this answer
    
perfect. thaanks everyone –  Michael Mar 28 '11 at 1:53
    
Please accept an answer, also did you mean NSString or NSMutableString. You title and code do not match. Cheers –  markhunte Mar 28 '11 at 10:00

The first @"Hi" is a constant. It cannot be mutated. Even if the pointer says it's an NSMutableString, the actual object is still a constant.

To create an NSMutableString object you will need to do for example [NSMutableString stringWithString:@"Hi"].

Also stringByAppendingString: returns an immutable NSString, not a mutable string.

Your code should either be (1):

NSMutableString *a = [NSMutableString stringWithString:@"Hi"];

NSString *b = [a stringByAppendingString:@"\n\n Hi Again"];

(2):

NSMutableString *a = [NSMutableString stringWithString:@"Hi"];

[a appendString:@"\n\n Hi Again"];

or (3):

NSString *a = [NSString stringWithFormat:@"%@%@", @"Hi", @"\n\n Hi again"];

(1) will give you two strings (one mutable, one immutable), (2) will give you one mutable string and (3) will give you one immutable string.

share|improve this answer

If your string is going in a UIView (e.g a UILabel), you also need to set the number of lines to 0

myView.numberOfLines=0;
share|improve this answer

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.