13

I have a Character array (not char array) and I want to convert it into a string by combining all the Characters in the array.

I have tried the following for a given Character[] a:

String s = new String(a) //given that a is a Character array

But this does not work since a is not a char array. I would appreciate any help.

1
  • above is working on char[] :) – diyoda_ Oct 31 '12 at 3:10

10 Answers 10

6

Iterate and concatenate approach:

Character[] chars = {new Character('a'),new Character('b'),new Character('c')};

StringBuilder builder = new StringBuilder();

for (Character c : chars)
    builder.append(c);

System.out.println(builder.toString());

Output:

abc

5
  • 3
    I would just check this compiles to a StringBuilder, for sizable n .. I think that will happen these days. – user166390 Oct 31 '12 at 3:12
  • thus, for N-length array you'll end up with N strings in the memory – Andrey Mormysh Oct 31 '12 at 3:47
  • 1
    @pst - I'm pretty sure that the JLS doesn't sanction string concatenation optimization across multiple statements. – Stephen C Oct 31 '12 at 3:50
  • As mentioned in other comments, one should use StringBuilder, not String concatenation in a loop like this. – Ed J Dec 12 '20 at 21:24
  • 1
    @EdJ Thanks. I've edited the answer accordingly. – Juvanis Dec 18 '20 at 15:04
17
Character[] a = ...
new String(ArrayUtils.toPrimitive(a));

ArrayUtils is part of Apache Commons Lang.

4
  • 6
    +1 for class I didn't know, I do not understand why such class is not in JDK :-/ – Betlista Oct 31 '12 at 3:16
  • It doesn't do anything special particularly. It just creates a char[] of same length and adds the char values. Very basic code. The JDK's job is to focus on the language core and solving not-so-simple, common problems. An open source utility library is the right place for this. – rees Oct 31 '12 at 3:48
  • 1
    This library should not be included for this solution, but my experience is that I always already have it included for something else anyway! – rees Oct 31 '12 at 3:49
  • 1
    -1 for "I do not understand why such class is not in JDK" - JDK would blow up if every imaginable utility class being added in new release. – Andrey Mormysh Oct 31 '12 at 3:50
9

The most efficient way to do it is most likely this:

Character[] chars = ...

StringBuilder sb = new StringBuilder(chars.length);
for (Character c : chars)
    sb.append(c.charValue());

String str = sb.toString();

Notes:

  1. Using a StringBuilder avoids creating multiple intermediate strings.
  2. Providing the initial size avoids reallocations.
  3. Using charValue() avoids calling Character.toString() ...

However, I'd probably go with @Torious's elegant answer unless performance was a significant issue.


Incidentally, the JLS says that the compiler is permitted to optimize String concatenation expressions using equivalent StringBuilder code ... but it does not sanction that optimization across multiple statements. Therefore something like this:

    String s = ""
    for (Character c : chars) {
        s += c;
    }

is likely to do lots of separate concatenations, creating (and discarding) lots of intermediate strings.

3

First convert the Character[] to char[], and use String.valueOf(char[]) to get the String as below:

    char[] a1 = new char[a.length];
    for(int i=0; i<a.length; i++) {
        a1[i] = a[i].charValue();
    }
    String text = String.valueOf(a1);
    System.out.println(text);
3

It's probably slow, but for kicks here is an ugly one-liner that is different than the other approaches -

Arrays.toString(characterArray).replaceAll(", ", "").substring(1, characterArray.length + 1);
3

Probably an overkill, but on Java 8 you could do this:

Character[] chars = {new Character('a'),new Character('b'),new Character('c')};

String value = Arrays.stream(chars)
                .map(Object::toString)
                .collect( Collectors.joining() );
3
  • 1
    Arrays.asList(chars).stream() can be simplified to Arrays.stream(chars) – Roman Mar 23 '16 at 21:35
  • for big arrays (>10000 elements) much better performance would be using \n char[] chars2 = new char[chars.length]; IntStream.range(0, chars.length).forEach(i -> chars2[i] = chars[i]); String str = new String(chars); – Oleksandr Tsurika Nov 27 '18 at 21:09
  • What is the time complexity of this approach? – Chigozie A. Sep 28 '20 at 8:52
2

At each index, call the toString method, and concatenate the result to your String s.

2

how about creating your own method that iterates through the list of Character array then appending each value to your new string.

Something like this.

public String convertToString(Character[] s) {
   String value;

   if (s == null) {
     return null;
   }

   Int length = s.length();
   for (int i = 0; i < length; i++) {
     value += s[i];
   }

   return value;
} 
3
  • You are checking s for null after calling length() on it. – rees Oct 31 '12 at 3:35
  • Should have noticed that at first as I was aiming to optimize it a bit for good example practice for others. :) – Tom Oct 31 '12 at 4:55
  • IMO, the null check is misguided. By default, a null argument is due to a programmer's error, and the best way to deal with it is to throw an NPE. – Stephen C Oct 31 '12 at 5:36
1

Actually, if you have Guava, you can use Chars.toArray() to produce char[] then simply send that result to String.valueOf().

0
int length = cArray.length;
String val="";
for (int i = 0; i < length; i++)
    val += cArray[i];
System.out.println("String:\t"+val);

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