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Is there a simple way to add a character or another String n-times to an existing String? I couldn´t find anything in String, Stringbuilder, ...

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What's wrong with a for loop? –  Hosam Aly Dec 7 '11 at 11:28
1  
Are you looking for one method? there isn't one. –  Sean Owen Dec 7 '11 at 11:30
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I couldn´t find anything in String, Stringbuilder ... I'm sure you haven't seen append(str) method of StringBuilder or + concat operation of String. –  Harry Joy Dec 7 '11 at 11:30
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Any method you use will use a loop for you. You can write such a a method of your own. –  Peter Lawrey Dec 7 '11 at 11:36
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Sure it uses a loop, but I don`t create my own methods if there are already some. –  user905686 Dec 7 '11 at 11:51
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10 Answers 10

Apache commons-lang3 has StringUtils.repeat(String, int), with this one you can do (for simplicity, not with StringBuilder):

String original;
original = original + StringUtils.repeat("x", n);

Since it is open source, you can read how it is written. There is a minor optimalization for small n-s if I remember correctly, but most of the time it uses StringBuilder.

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Its better to use StringBuilder instead of String because String is an immutable class and it cannot be modified once created: in String each concatenation results in creating a new instance of the String class with the modified string.

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for(int i = 0; i < n; i++) {
    existing_string += 'c';
}

but you should use StringBuilder instead, and save memory

int n = 3;
String existing_string = "string";
StringBuilder builder = new StringBuilder(existing_string);
for (int i = 0; i < n; i++) {
    builder.append(" append ");
}

System.out.println(builder.toString());
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For the case of repeating a single character (not a String), you could use Arrays.fill:

  String original = "original ";
  char c = 'c';
  int number = 9;

  char[] repeat = new char[number];
  Arrays.fill(repeat, c);
  original += new String(repeat);
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You can use Guava's Strings.repeat method:

String existingString = ...
existingString += Strings.repeat("foo", n);
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In addition to the answers above, you should initialize the StringBuilder with an appropriate capacity, especially that you already know it. For example:

int capacity = existingString.length() + n * appendableString.length();
StringBuilder builder = new StringBuilder(capacity);
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public String appendNewStringToExisting(String exisitingString, String newString, int number) {
    StringBuilder builder = new StringBuilder(exisitingString);
    for(int iDx = 0; iDx < number; iDx++){
        builder.append(newString);
    }
    return builder.toString();
}
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I think you didn't mean to have "existingString" in quotes. Right? You meant to pass the argument in there. –  Gray Dec 7 '11 at 13:58
    
yeah, without IDE sometimes :) –  mprabhat Dec 7 '11 at 14:01
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Keep in mind that if the "n" is large, it might not be such a great idea to use +=, since every time you add another String through +=, the JVM will create a brand new object (plenty of info on this around).

Something like:

StringBuilder b = new StringBuilder(existing_string);
for(int i = 0; i<n; i++){
    b.append("other_string");
}
return b.toString();

Not actually coding this in an IDE, so minor flaws may occur, but this is the basic idea.

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you mean this is more efficient? –  user905686 Dec 7 '11 at 11:53
    
Yes, it is much more efficient for operations where you do many appends to the original String, or simply when you're building a String through the concatenation of several sub-strings. ensta-paristech.fr/~diam/java/online/notes-java/data/strings/… read the bit on efficiency. –  pcalcao Dec 7 '11 at 12:34
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Here is a simple way..

for(int i=0;i<n;i++)
{
  yourString = yourString + "what you want to append continiously";
}
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 String toAdd = "toAdd";
 StringBuilder s = new StringBuilder();
 for(int count = 0; count < MAX; count++) {
     s.append(toAdd);
  }
  String final = s.toString();
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