-3

Consider the following scenario:

String str = "str";
System.out.println("str subs: " + str.substring(3,3));

Expected result:
StringIndexOutOfBoundsException (since beginIndex starts "after" the string ends)

Actual result:
The empty string is printed

From String.java:

public String substring(int beginIndex, int endIndex) {
    if (beginIndex < 0) {
        throw new StringIndexOutOfBoundsException(beginIndex);
    }
    if (endIndex > count) {
        throw new StringIndexOutOfBoundsException(endIndex);
    }
    if (beginIndex > endIndex) {
        throw new StringIndexOutOfBoundsException(endIndex - beginIndex);
    }
    return ((beginIndex == 0) && (endIndex == count)) ? this :
        new String(offset + beginIndex, endIndex - beginIndex, value);
}

It's easy to see that the implementation doesn't take care of the edge case where:
beginIndex == endIndex == count (count is the length of the string).

According to the manual the method substring:

Returns a new string that is a substring of this string. The substring begins at the specified beginIndex and extends to the character at index endIndex - 1. Thus the length of the substring is endIndex-beginIndex.

It also states that the method throws:

IndexOutOfBoundsException - if the beginIndex is negative, or endIndex is larger than the length of this String object, or beginIndex is larger than endIndex.

Does it makes sense to consider the case: beginIndex == endIndex == count as valid ?
Am I missing something ?

  • It's certainly arguable, but I personally like this behavior. PHP's substr function returns false in this case and I found that to be an annoying edge case, where I was pulling data off some string buffer that became false once it was exactly emptied instead of "", and consequently broke a later $buf === "" check. – Boann Nov 11 '13 at 6:58
  • @Boann I didn't explore substr, and in Java this kind of behavior doesn't seem arguable to me (actually - I was looking for an argument that can explain this behavior and failed to find one - that's why I posted this question). – Nir Alfasi Nov 11 '13 at 7:05
  • The substring extends to the character at index endIndex - 1. Why don't you expect an exception for substring(0,0)? – Cephalopod Nov 12 '13 at 20:08
  • @Arian cause string[0] is not out of bounds. – Nir Alfasi Nov 13 '13 at 17:47
  • For endIndex = 0, the last character to include is at -1, which is just as out of bounds as startIndex = length. Yet, you accept that 0,0 succeeds. It's the same for 3,3, just from the other end of the string. – Cephalopod Nov 13 '13 at 20:04
7
"abc".substring(3,3) == ""

As you said, let's look at the manual:

Returns a new string that is a substring of this string.

okay

The substring begins at the specified beginIndex and extends to the character at index endIndex - 1.

The interpretation of this sentence is difficult regardless of the length of the string. But I think we can agree that an empty string does not violate this.

Thus the length of the substring is endIndex-beginIndex.

okay

Throws: IndexOutOfBoundsException - if the beginIndex is negative

it is not

or endIndex is larger than the length of this String object

it is not

or beginIndex is larger than endIndex.

it is not.

Behavior seems as promised to me.

You can also see it like this: the string "abc" contains four empty substrings, two between the characters, one at the beginning, and one at the end. They can be accessed via substring with 1,1 and 2,2, 0,0, and 3,3, respectively. Compare also with the following code

class EmptyTest {

    public static void main (String[] args) {

         Matcher m = Pattern.compile("").matcher("abc");
         while (m.find()) {
            System.out.println(m.start() + "," + m.end());
         }
    }
}

which prints

0,0
1,1
2,2
3,3
| improve this answer | |
  • +1 for a nice detailed answer - you obviously investigated the docs carefully! Yet, the fact that index 3 is outOfBound is obvious (try to turn the string to char array and access the item at index length). For end-index that's fine cause according to the spec it is designed to be a right marker to the last item+1, but it is not, by any means, documented or detailed that begin-index can go out of bounds. The fact that Pattern matcher also goes "out of bounds" is a direct result of this bug... – Nir Alfasi Nov 11 '13 at 15:33
  • Accessing the char at 3 would be somewhat equivalent to substring(3,4), which fails too. The point is, 3,3 is an actual sub-string, so it should be accessible via substring, shouldn't it? – Cephalopod Nov 12 '13 at 8:50
  • the letter c is at index 2, so I don't understand why do you consider [3,3] as an actual sub-string – Nir Alfasi Nov 12 '13 at 19:08
  • 3,3 identifies the empty sub-string at the end of the string, after c, which is at index 2. Unless you would not agree that "abc" has four empty sub-strings. – Cephalopod Nov 12 '13 at 20:00
  • I too thought that this is the most reasonable explanation, but, if the empty string "at the end" of the string is [3,3] - applying the same logic we should have been able to do [-1,-1] for the empty string at the beginning of the string. Since it makes no sense the "right" way to consider the first and last empty substrings are: [0,0] and [2,2] – Nir Alfasi Nov 12 '13 at 20:39
2

beginIndex == endIndex == count means that the virtual "start cursor" would be placed right after the last character in the string, at the same point as the "end cursor", so you'd get a zero-length string. It seems just as valid as returning the empty string for (0,0).

| improve this answer | |
  • beginIndex starts after the string ends. That doesn't seem valid to me. A "substring" should be a real substring of the string (an empty string is a valid substring of any string). But here we try to "take" a substring from "outside" the string which doesn't make any sense. – Nir Alfasi Nov 11 '13 at 6:41
  • Further, if your claim would be valid, under the same logic we should get the empty string returned from a call with: substring(length*2, length*2). If you were right that was an inconsistent behavior! – Nir Alfasi Nov 11 '13 at 6:43
  • @alfasin Except that it is specifically prohibited to put the indices outside the string. I visualize this method as putting two slideable bounds somewhere in the slots between the character array, and both "before the first" and "after the last" are meaningful (though not always useful) positions. In particular, this means that loops can iterate through the string with more flexibility. – chrylis -cautiouslyoptimistic- Nov 11 '13 at 6:47
  • "after the last" makes sense only for endIndex which by definition is a right marker+1. It doesn't make sense to allow the left marker go OutOfBounds – Nir Alfasi Nov 11 '13 at 6:49
0

This behaviour is consistent with:

String str = "str";
System.out.println("str subs: " + str.substring(2,2));

Also returns empty string and not a substring. Empty set is subset of all the sets.

Refer class java.lang.String Parameters: beginIndex the beginning index, inclusive.

| improve this answer | |
  • According to your logic this behavior is not consistent with str.substring(5,5) (which throws an exception) – Nir Alfasi Nov 11 '13 at 6:50
  • @harsh "up to" - yes, inclusive - no! – Nir Alfasi Nov 11 '13 at 6:55
  • But in that case you are failing the validation to be within the bounds of the String. Would you accept it if the behaviour was to throw exception whenever start Index and End Index were equal? I wouldn't and I guess I am not alone. – Nitin Dandriyal Nov 11 '13 at 6:56
  • @NitinDandriyal you're missing the point: I don't expect an exception to be thrown whenever start Index and End Index were equal, I expect an exception to be thrown when start Index is out of bounds (when start index points to string[length] it is no longer pointing to the string!). – Nir Alfasi Nov 11 '13 at 7:34
  • Javadoc says beginidex is inclusive: param beginIndex the beginning index, inclusive. – Nitin Dandriyal Nov 11 '13 at 8:46

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