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This should be easy, but I'm having a hard time finding the easiest solution.

I need an NSString that is equal to another string concatenated with itself a given number of times.

For a better explanation, consider the following python example:

>> original = "abc"
"abc"
>> times = 2
2
>> result = original * times
"abcabc"

Any hints?


EDIT:

I was going to post a solution similar to the one by Mike McMaster's answer, after looking at this implementation from the OmniFrameworks:

// returns a string consisting of 'aLenght' spaces
+ (NSString *)spacesOfLength:(unsigned int)aLength;
{
static NSMutableString *spaces = nil;
static NSLock *spacesLock;
static unsigned int spacesLength;

if (!spaces) {
spaces = [@"                " mutableCopy];
spacesLength = [spaces length];
    spacesLock = [[NSLock alloc] init];
}
if (spacesLength < aLength) {
    [spacesLock lock];
    while (spacesLength < aLength) {
        [spaces appendString:spaces];
        spacesLength += spacesLength;
    }
    [spacesLock unlock];
}
return [spaces substringToIndex:aLength];
}

Code reproduced from the file:

Frameworks/OmniFoundation/OpenStepExtensions.subproj/NSString-OFExtensions.m

on the OpenExtensions framework from the Omni Frameworks by The Omni Group.

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5 Answers 5

up vote 78 down vote accepted

There is a method called stringByPaddingToLength:withString:startingAtIndex::

[@"" stringByPaddingToLength:100 withString: @"abc" startingAtIndex:0]

Note that if you want 3 abc's, than use 9 (3 * [@"abc" length]) or create category like this:

@interface NSString (Repeat)

- (NSString *)repeatTimes:(NSUInteger)times;

@end

@implementation NSString (Repeat)

- (NSString *)repeatTimes:(NSUInteger)times {
  return [@"" stringByPaddingToLength:times * [self length] withString:self startingAtIndex:0];
}

@end
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4  
That is genius! –  Clay Bridges Mar 1 '12 at 23:06
    
+1 for doing it all in a single call to the standard library. And here's how I used it to create a comma-separated list of question marks (for feeding to SQLite) -- [@"" stringByPaddingToLength:[fields count]*2-1 withString:@"?," startingAtIndex:0]. –  noamtm Aug 7 '12 at 18:00
NSString *original = @"abc";
int times = 2;

// Capacity does not limit the length, it's just an initial capacity
NSMutableString *result = [NSMutableString stringWithCapacity:[original length] * times]; 

int i;
for (i = 0; i < times; i++)
    [result appendString:original];

NSLog(@"result: %@", result); // prints "abcabc"
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I was trying to come up with something simpler, but I think this is the shortest way. –  Sergio Acosta Nov 4 '08 at 5:21
    
I made it a little more efficient since the acceptance by specifiying times first and having the capacity = [original length] * times –  Mike McMaster Nov 4 '08 at 5:21
1  
Just for completeness, if for some reason you want to use large numbers, you can improve this by reusing power-of-two concatenations (e.g. foo * 10 = foo * 2 + foo * 8; foo * 8 = foo * 4 + foo * 4; foo * 4 = foo * 2 + foo * 2 -> 3 concat operations instead of 9). –  Jens Ayton Nov 4 '08 at 9:14

For performance, you could drop into C with something like this:

+ (NSString*)stringWithRepeatCharacter:(char)character times:(unsigned int)repetitions;
{
    char repeatString[repetitions + 1];
    memset(repeatString, character, repetitions);

    // Set terminating null
    repeatString[repetitions] = 0;

    return [NSString stringWithCString:repeatString];
}

This could be written as a category extension on the NSString class. There are probably some checks that should be thrown in there, but this is the straight forward gist of it.

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Great idea, specially for performance hungry scenarios. Thanks! –  Sergio Acosta Jul 27 '09 at 8:20
    
check if repetitions > 0? –  David.Chu.ca May 20 '10 at 5:26
    
David, repetitions is an unsigned int –  jessecurry Jul 7 '10 at 20:31
    
I wouldn't be surprised if it turns out NSString's stringByPaddingToLength:withString:startingAtIndex: is implemented in the same way. –  ArtOfWarfare Sep 2 '13 at 18:58

The first method above is for a single character. This one is for a string of characters. It could be used for a single character too but has more overhead.

+ (NSString*)stringWithRepeatString:(char*)characters times:(unsigned int)repetitions;
{
    unsigned int stringLength = strlen(characters);
    unsigned int repeatStringLength = stringLength * repetitions + 1;

    char repeatString[repeatStringLength];

    for (unsigned int i = 0; i < repetitions; i++) {
    	unsigned int pointerPosition = i * repetitions;
    	memcpy(repeatString + pointerPosition, characters, stringLength);		
    }

    // Set terminating null
    repeatString[repeatStringLength - 1] = 0;

    return [NSString stringWithCString:repeatString];
}
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If you're using Cocoa in Python, then you can just do that, as PyObjC imbues NSString with all of the Python unicode class's abilities.

Otherwise, there are two ways.

One is to create an array with the same string in it n times, and use componentsJoinedByString:. Something like this:

NSMutableArray *repetitions = [NSMutableArray arrayWithCapacity:n];
for (NSUInteger i = 0UL; i < n; ++i)
	[repetitions addObject:inputString];
outputString = [repetitions componentsJoinedByString:@""];

The other way would be to start with an empty NSMutableString and append the string to it n times, like this:

NSMutableString *temp = [NSMutableString stringWithCapacity:[inputString length] * n];
for (NSUInteger i = 0UL; i < n; ++i)
	[temp appendString:inputString];
outputString = [NSString stringWithString:temp];

You may be able to cut out the stringWithString: call if it's OK for you to return a mutable string here. Otherwise, you probably should return an immutable string, and the stringWithString: message here means you have two copies of the string in memory.

Therefore, I recommend the componentsJoinedByString: solution.

[Edit: Borrowed idea to use …WithCapacity: methods from Mike McMaster's answer.]

share|improve this answer
    
Thanks for the alternative of using componentsJoinedByString. –  Sergio Acosta Nov 4 '08 at 5:28
    
Yeah, good suggestion. Probably a teeny bit more efficient that my (admittedly generic) solution. –  Mike McMaster Nov 4 '08 at 5:39

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