494

Given a number:

int number = 1234;

Which would be the "best" way to convert this to a string:

String stringNumber = "1234";

I have tried searching (googling) for an answer but no many seemed "trustworthy".

1

6 Answers 6

957

There are multiple ways:

  • String.valueOf(number) (my preference)
  • "" + number (I don't know how the compiler handles it, perhaps it is as efficient as the above)
  • Integer.toString(number)
14
  • 3
    @Trufa - I would use valueOf() out of these 3.
    – CoolBeans
    Feb 21, 2011 at 20:52
  • 5
    they are practically the same (the last one invokes the first one, and the 2nd one is compiled to the first one). I prefer the 1st one
    – Bozho
    Jun 3, 2013 at 9:39
  • 23
    @Bozho Your last comment is BACKWARDS. Actually, the first way invokes the last. (See String source in JDK at grepcode.com/file/repository.grepcode.com/java/root/jdk/openjdk/… .)
    – ingyhere
    Nov 16, 2013 at 13:36
  • 4
    int oopsPitfall = 0700; String.valueOf(oopsPitfall);
    – JBA
    Apr 10, 2015 at 7:54
  • 3
    @jba If you add a zero before an integer, it is taken as an octal nonetheless. So what String.valueof() gives is actually right and is not a pitfall.
    – posixKing
    Apr 8, 2017 at 2:11
64

Integer class has static method toString() - you can use it:

int i = 1234;
String str = Integer.toString(i);

Returns a String object representing the specified integer. The argument is converted to signed decimal representation and returned as a string, exactly as if the argument and radix 10 were given as arguments to the toString(int, int) method.

0
46

Always use either String.valueOf(number) or Integer.toString(number).

Using "" + number is an overhead and does the following:

StringBuilder sb = new StringBuilder();
sb.append("");
sb.append(number);
return sb.toString();
1
  • The bytecode compiler can't optimize that away? I would expect the optimizer to remove the sb.append(""). But I don't know much about compiler optimization in Java.
    – Gellweiler
    Nov 4, 2021 at 16:45
42

This will do. Pretty trustworthy. : )

    ""+number;

Just to clarify, this works and acceptable to use unless you are looking for micro optimization.

4
  • 6
    Thank you very much, this actually woks I don't like it though (nothing technical about my dislike) I just "feel" like it is a hack, not a real solution (probably not true).
    – Trufa
    Feb 21, 2011 at 21:00
  • 1
    Your answer has a lot of extra overhead (it's equivalent to new StringBuilder().append("").append(number).toString()) Jun 13, 2017 at 21:41
  • @SolomonUcko may I know your source of this information? I would like to add to the answer if it is correct.
    – Nishant
    Jan 20, 2018 at 5:48
  • For example: stackoverflow.com/a/47626/5445670 Jan 20, 2018 at 15:21
20

The way I know how to convert an integer into a string is by using the following code:

Integer.toString(int);

and

String.valueOf(int);

If you had an integer i, and a string s, then the following would apply:

int i;
String s = Integer.toString(i); or
String s = String.valueOf(i);

If you wanted to convert a string "s" into an integer "i", then the following would work:

i = Integer.valueOf(s).intValue();
1
  • 1
    which differences: Integer.toString(i) vs String.valueOf(i) ?
    – Kiquenet
    Jun 1, 2017 at 7:19
1

This is the method which i used to convert the integer to string.Correct me if i did wrong.

/**
 * @param a
 * @return
 */
private String convertToString(int a) {

    int c;
    char m;
    StringBuilder ans = new StringBuilder();
    // convert the String to int
    while (a > 0) {
        c = a % 10;
        a = a / 10;
        m = (char) ('0' + c);
        ans.append(m);
    }
    return ans.reverse().toString();
}
3
  • 25
    (1) Doesn't work with negatives [are you a C developer who loves unsigned int?] (2) Relies on truncation [we all know what assume means ...] (3) overly verbose (4) WHY?!
    – ingyhere
    Nov 16, 2013 at 13:23
  • 1
    Apart from problems described by @ingyhere , it also doesn't work for leading zeroes. 0123 as input becomes 83
    – Martin
    Jul 10, 2020 at 10:32
  • There is absolutely no reason to do any of this. You're attempting to shave off each digit from the integer backwards, convert each digit to a character manually, append each digit one at a time to the string builder, before reversing the whole thing to get the original ordering back. Why? A StringBuilder can just accept the whole integer in one call to append! And it works across all the special cases your code fails for. You can replace this entire thing with StringBuilder sb = new StringBuilder(); sb.append(intValue); return sb.toString();
    – user229044
    May 19 at 17:35

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