20

Suppose I have two long strings. They are almost same.

String a = "this is a example"
String b = "this is a examp"

Above code is just for example. Actual strings are quite long.

Problem is one string have 2 more characters than the other.

How can I check which are those two character?

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26

You can use StringUtils.difference(String first, String second).

This is how they implemented it:

public static String difference(String str1, String str2) {
    if (str1 == null) {
        return str2;
    }
    if (str2 == null) {
        return str1;
    }
    int at = indexOfDifference(str1, str2);
    if (at == INDEX_NOT_FOUND) {
        return EMPTY;
    }
    return str2.substring(at);
}

public static int indexOfDifference(CharSequence cs1, CharSequence cs2) {
    if (cs1 == cs2) {
        return INDEX_NOT_FOUND;
    }
    if (cs1 == null || cs2 == null) {
        return 0;
    }
    int i;
    for (i = 0; i < cs1.length() && i < cs2.length(); ++i) {
        if (cs1.charAt(i) != cs2.charAt(i)) {
            break;
        }
    }
    if (i < cs2.length() || i < cs1.length()) {
        return i;
    }
    return INDEX_NOT_FOUND;
}
  • 10
    As far as I see, this does not return characters that are different, but just the whole string from the point where the strings don't match anymore... – brimborium Aug 23 '12 at 11:00
  • 1
    @brimborium so maybe you should clarify your question. I think this answer is really appropriate to your original question. – alcor Aug 23 '12 at 15:05
  • 1
    @alcor I am not the OP. ;) And I disagree. The original title was a bit misleading, but the question itself always stated clearly that he wants to extract the odd characters... – brimborium Aug 23 '12 at 15:10
  • @brimborium you're definitely right. please excuse me :) – alcor Aug 23 '12 at 15:13
14

To find the difference between 2 Strings you can use StringUtils class and the difference method. It compares the two Strings, and returns the portion where they differ.

 StringUtils.difference(null, null) = null
 StringUtils.difference("", "") = ""
 StringUtils.difference("", "abc") = "abc"
 StringUtils.difference("abc", "") = ""
 StringUtils.difference("abc", "abc") = ""
 StringUtils.difference("ab", "abxyz") = "xyz"
 StringUtils.difference("abcde", "abxyz") = "xyz"
 StringUtils.difference("abcde", "xyz") = "xyz"

See: https://commons.apache.org/proper/commons-lang/javadocs/api-2.6/org/apache/commons/lang/StringUtils.html

13

Without iterating through the strings you can only know that they are different, not where - and that only if they are of different length. If you really need to know what the different characters are, you must step through both strings in tandem and compare characters at the corresponding places.

7

The following Java snippet efficiently computes a minimal set of characters that have to be removed from (or added to) the respective strings in order to make the strings equal. It's an example of dynamic programming.

import java.util.HashMap;
import java.util.Map;

public class StringUtils {

    /**
     * Examples
     */
    public static void main(String[] args) {
        System.out.println(diff("this is a example", "this is a examp")); // prints (le,)
        System.out.println(diff("Honda", "Hyundai")); // prints (o,yui)
        System.out.println(diff("Toyota", "Coyote")); // prints (Ta,Ce)
        System.out.println(diff("Flomax", "Volmax")); // prints (Fo,Vo)
    }

    /**
     * Returns a minimal set of characters that have to be removed from (or added to) the respective
     * strings to make the strings equal.
     */
    public static Pair<String> diff(String a, String b) {
        return diffHelper(a, b, new HashMap<>());
    }

    /**
     * Recursively compute a minimal set of characters while remembering already computed substrings.
     * Runs in O(n^2).
     */
    private static Pair<String> diffHelper(String a, String b, Map<Long, Pair<String>> lookup) {
        long key = ((long) a.length()) << 32 | b.length();
        if (!lookup.containsKey(key)) {
            Pair<String> value;
            if (a.isEmpty() || b.isEmpty()) {
                value = new Pair<>(a, b);
            } else if (a.charAt(0) == b.charAt(0)) {
                value = diffHelper(a.substring(1), b.substring(1), lookup);
            } else {
                Pair<String> aa = diffHelper(a.substring(1), b, lookup);
                Pair<String> bb = diffHelper(a, b.substring(1), lookup);
                if (aa.first.length() + aa.second.length() < bb.first.length() + bb.second.length()) {
                    value = new Pair<>(a.charAt(0) + aa.first, aa.second);
                } else {
                    value = new Pair<>(bb.first, b.charAt(0) + bb.second);
                }
            }
            lookup.put(key, value);
        }
        return lookup.get(key);
    }

    public static class Pair<T> {
        public Pair(T first, T second) {
            this.first = first;
            this.second = second;
        }

        public final T first, second;

        public String toString() {
            return "(" + first + "," + second + ")";
        }
    }
}
  • this solves my problem of spellchecking perfectly! this is the most generic solution. – bersling Oct 24 '18 at 12:10
2
String strDiffChop(String s1, String s2) {
    if (s1.length > s2.length) {
        return s1.substring(s2.length - 1);
    } else if (s2.length > s1.length) {
        return s2.substring(s1.length - 1);
    } else {
        return null;
    }
}
  • What if the diff is not after the string and is in the middle? – brunoais Aug 24 '13 at 8:25
  • @brunoais If you need to find a mid-string difference, see JRL's answer. This was intended to be a simpler answer based on a different interpretation of the question. – GlenPeterson Mar 13 '15 at 21:03
1

To find the words that are different in the two lines, one can use the following code.

    String[] strList1 = str1.split(" ");
    String[] strList2 = str2.split(" ");

    List<String> list1 = Arrays.asList(strList1);
    List<String> list2 = Arrays.asList(strList2);

    // Prepare a union
    List<String> union = new ArrayList<>(list1);
    union.addAll(list2);

    // Prepare an intersection
    List<String> intersection = new ArrayList<>(list1);
    intersection.retainAll(list2);

    // Subtract the intersection from the union
    union.removeAll(intersection);

    for (String s : union) {
        System.out.println(s);
    }

In the end, you will have a list of words that are different in both the lists. One can modify it easily to simply have the different words in the first list or the second list and not simultaneously. This can be done by removing the intersection from only from list1 or list2 instead of the union.

Computing the exact location can be done by adding up the lengths of each word in the split list (along with the splitting regex) or by simply doing String.indexOf("subStr").

  • 1
    So "this is a test" and "a test this is" are equal? – Tim Sep 27 '17 at 18:54
  • Yes. However the op seems to be interested only in the difference of charecter rather than the order. Once you have the different words, they can be compared in a similar ways at the charecter Level to find the extra charecters... – stolen_leaves Feb 22 '18 at 11:32
0

To directly get only the changed section, and not just the end, you can use Google's Diff Match Patch.

List<Diff> diffs = new DiffMatchPatch().diffMain("stringend", "stringdiffend");
  for (Diff diff : diffs) {
    if (diff.operation == Operation.INSERT) {
      return diff.text; // Return only single diff, can also find multiple based on use case
    }
  }
}

To add in Android: implementation 'org.bitbucket.cowwoc:diff-match-patch:1.2'

This package is far more powerful than just this feature, it is mainly used for creating diff related tools.

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