166

How do I get up to the first n characters of a string in Java without doing a size check first (inline is acceptable) or risking an IndexOutOfBoundsException?

  • 1
    unless you catch the exception, I don't know how you plan to handle the case where the character length is greater than the String length. – Matt Boehm Oct 18 '09 at 3:52
  • 2
    Why? What's your aversion to checking length or catching an exception? – paxdiablo Oct 18 '09 at 3:57
  • 1
    OUt of curiosity, why do you want to avoid the size check. This is not C. – Tom Hawtin - tackline Oct 18 '09 at 3:59
  • what I meant to express was a desire to avoid an if/else block, not an aversion to actually checking length. – antony.trupe Oct 18 '09 at 4:22
  • potential duplicate of : stackoverflow.com/questions/8499698/… – Mulki Feb 12 '19 at 23:37
358

Here's a neat solution:

String upToNCharacters = s.substring(0, Math.min(s.length(), n));

Opinion: while this solution is "neat", I think it is actually less readable than a solution that uses if / else in the obvious way. If the reader hasn't seen this trick, he/she has to think harder to understand the code. IMO, the code's meaning is more obvious in the if / else version. For a cleaner / more readable solution, see @paxdiablo's answer.

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  • 1
    +1. Even better if this is wrapped in a function named safe_substring or substring_safe, like paxdiablo's answer, so that usage is easier to read / intent more obvious. – ToolmakerSteve Aug 20 '14 at 5:17
  • I disagree with what you are saying. If this is wrapped in a function, it doesn't matter what is inside the function, and any "neatness" is definitely out-weighed by lack of clarity. The point of this solution is that it is "neat" for the case where you don't want to create a wrapper function. – Stephen C Jun 19 '18 at 11:42
90

Don't reinvent the wheel...:

org.apache.commons.lang.StringUtils.substring(String s, int start, int len)

Javadoc says:

StringUtils.substring(null, *, *)    = null
StringUtils.substring("", * ,  *)    = "";
StringUtils.substring("abc", 0, 2)   = "ab"
StringUtils.substring("abc", 2, 0)   = ""
StringUtils.substring("abc", 2, 4)   = "c"
StringUtils.substring("abc", 4, 6)   = ""
StringUtils.substring("abc", 2, 2)   = ""
StringUtils.substring("abc", -2, -1) = "b"
StringUtils.substring("abc", -4, 2)  = "ab"

Thus:

StringUtils.substring("abc", 0, 4) = "abc"
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  • 1
    It doesn't answer the question, but regardless it still provides the solution. If the OP is able to understand, I think this is a better solution. – aullah Mar 9 '14 at 23:43
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    It might also be useful to point out that StringUtils.substring(yourString, 0, n) is not the same as yourString.substring(0, n). The former is from StringUtils, while the latter is using String.substring (which gives exception if end index exceeds string length). – ToolmakerSteve Aug 20 '14 at 4:59
  • Just as FYI if you look in the source for this method its handling the case where the end is greater than the length by changing the end to the length: if (end > str.length()) { end = str.length();} – bholl Apr 5 '17 at 19:14
  • 1
    The last Parameter of StringUtils.substring(String s, int start, int len) is not len, it is the end-Index. – gorootde Apr 10 '17 at 10:27
  • StringUtils.substring("abc", 0, 4) = "abc", worked for me. Thanks ! – Akash5288 Sep 24 '18 at 8:58
44

Apache Commons Lang has a StringUtils.left method for this.

String upToNCharacters = StringUtils.left(s, n);
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  • Shouldn't this be the best solution? Why aren't many up-voting this? – Do Will Jul 24 '18 at 13:46
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    Maybe because other people don't have the same opinion as you? :-) – Stephen C Jul 25 '18 at 7:51
  • this answer came in much later than the original question ask date. – Mulki Feb 12 '19 at 23:36
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    @DoWill: Because adding an(other) 3rd-party library to your executable environment is not always worthwhile. – LarsH Oct 28 '19 at 16:08
13
String upToNCharacters = String.format("%."+ n +"s", str);

Awful if n is a variable (so you must construct the format string), but pretty clear if a constant:

String upToNCharacters = String.format("%.10s", str);

docs

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  • Interesting alternative, though I can't imagine ever using it, given the more traditional approaches, that were given four years ago. – ToolmakerSteve Aug 20 '14 at 5:14
  • Best answer because the input String is read only once, so there's no need to store it in a variable, which makes it possible to embed it neatly. – Profiterole Aug 18 '19 at 13:40
11

There's a class of question on SO that sometimes make less than perfect sense, this one is perilously close :-)

Perhaps you could explain your aversion to using one of the two methods you ruled out.

If it's just because you don't want to pepper your code with if statements or exception catching code, one solution is to use a helper function that will take care of it for you, something like:

static String substring_safe (String s, int start, int len) { ... }

which will check lengths beforehand and act accordingly (either return smaller string or pad with spaces).

Then you don't have to worry about it in your code at all, just call:

String s2 = substring_safe (s, 10, 7);

instead of:

String s2 = s.substring (10,7);

This would work in the case that you seem to be worried about (based on your comments to other answers), not breaking the flow of the code when doing lots of string building stuff.

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  • 2
    +1: This is a MUCH better approach than the accepted one, given OP's desire to not clutter the code. (or see Nickkk's solution of including a library that already has a function that behaves as desired.) – ToolmakerSteve Aug 20 '14 at 5:04
3

Use the substring method, as follows:

int n = 8;
String s = "Hello, World!";
System.out.println(s.substring(0,n);

If n is greater than the length of the string, this will throw an exception, as one commenter has pointed out. one simple solution is to wrap all this in the condition if(s.length()<n) in your else clause, you can choose whether you just want to print/return the whole String or handle it another way.

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  • 1
    this risks getting an IndexOutOfBoundsException – antony.trupe Oct 18 '09 at 3:47
  • By the way, if you plan on programming in Java, you should try to memorize most of the API methods for String (java.sun.com/j2se/1.5.0/docs/api/java/lang/String.html). – Matt Boehm Oct 18 '09 at 3:48
  • I've already ruled out substring, at least by itself, as not the answer. – antony.trupe Oct 18 '09 at 3:49
  • You have to either check the size or catch the exception. May I ask why doing either of these would not work in your situation? – Matt Boehm Oct 18 '09 at 3:54
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    How is this an answer to the question? The question was asking how to NOT have to do a size check first, nor cause an exception that needs to be caught. – ToolmakerSteve Aug 20 '14 at 5:22
3

If you are lucky enough to develop with Kotlin,
you can use take to achieve your goal.

val someString = "hello"

someString.take(10) // result is "hello"
someString.take(4) // result is "hell" )))
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0

ApacheCommons surprised me, StringUtils.abbreviate(String str, int maxWidth) appends "..." there is no option to change postfix. WordUtils.abbreviate(String str, int lower, int upper, String appendToEnd) looks up to next empty space.

I’m just going to leave this here:

public static String abbreviate(String s, int maxLength, String appendToEnd) {
    String result = s;
    appendToEnd = appendToEnd == null ? "" : appendToEnd;
    if (maxLength >= appendToEnd.length()) {
        if (s.length()>maxLength) {
            result = s.substring(0, Math.min(s.length(), maxLength - appendToEnd.length())) + appendToEnd;
        }
    } else {
        throw new StringIndexOutOfBoundsException("maxLength can not be smaller than appendToEnd parameter length.");
    }
    return result;
}
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  • 1
    @VolkanGüven It's because of this "ApacheCommons surprised me" sentence. I commited sin via critisizing holy ApacheCommons library. Or whatever... – yuceel Oct 11 '18 at 14:35
0

Kotlin: (If anyone needs)

var mText = text.substring(0, text.length.coerceAtMost(20))
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