Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

I am not a beginner to regular expressions, but their use in perl seems a bit different than in Java.

Anyways, I basically have a dictionary of shorthand words and their definitions. I want to iterate over words in the dictionary and replace them with their meanings. what is the best way to do this in JAVA?

I have seen String.replaceAll(), String.replace(), as well as the Pattern/Matcher classes. I wish to do a case insensitive replacement along the lines of:

word =~ s/\s?\Q$short_word\E\s?/ \Q$short_def\E /sig

While I am at it, do you think that it is best to extract all the words from the string and then apply my dictionary or just apply the dictionary to the string? I know that I need to be careful, because the shorthand words could match parts of other shorthand meanings.

Hopefully this all makes sense.

Thanks.

Clarification:

Dictionary is something like: lol:laugh out loud, rofl:rolling on the floor laughing, ll:like lemons

string is: lol, i am rofl

replaced text: laugh out loud, i am rolling on the floor laughing

notice how the ll wasnt added anywhere

share|improve this question
    
To clarify: Do you mean you want to iterate over words in a string and replace the shortword with its definition? E.g., replace "e.g., replace" with "exampli gratis, replace", over a long body of text? If no, please provide a before-and-after example. –  Little Bobby Tables Sep 24 '10 at 14:17
    
i updated my question. the example is at the bottom –  ekawas Sep 24 '10 at 15:06
add comment

3 Answers

up vote 2 down vote accepted

The danger is false positives inside of normal words. "fell" != "felikes lemons"

One way is to split the words on whitespace (do multiple spaces need to be conserved?) then loop over the List performing the 'if contains() { replace } else { output original } idea above.

My output class would be a StringBuffer

StringBuffer outputBuffer = new StringBuffer();
for(String s: split(inputText)) {
   outputBuffer.append(  dictionary.contains(s) ? dictionary.get(s) : s); 
   }

Make your split method smart enough to return word delimiters also:

split("now is the  time") -> now,<space>,is,<space>,the,<space><space>,time

Then you don't have to worry about conserving white space - the loop above will just append anything that isn't a dictionary word to the StringBuffer.

Here's a recent SO thread on retaining delimiters when regexing.

share|improve this answer
add comment

If you insist on using regex, this would work (taking Zoltan Balazs' dictionary map approach):

Map<String, String> substitutions = loadDictionaryFromSomewhere();
int lengthOfShortestKeyInMap = 3; //Calculate
int lengthOfLongestKeyInMap = 3; //Calculate

StringBuffer output = new StringBuffer(input.length());
Pattern pattern = Pattern.compile("\\b(\\w{" + lengthOfShortestKeyInMap + "," + lengthOfLongestKeyInMap + "})\\b");
Matcher matcher = pattern.matcher(input);
while (matcher.find()) {
    String candidate = matcher.group(1);
    String substitute = substitutions.get(candidate);
    if (substitute == null)
        substitute = candidate; // no match, use original
    matcher.appendReplacement(output, Matcher.quoteReplacement(substitute));
}
matcher.appendTail(output);
// output now contains the text with substituted words

If you plan to process many inputs, pre-compiling the pattern is more efficient than using String.split(), which compiles a new Pattern each call.

(edit) Compiling all of the keys into a single pattern yields a more efficient approach, like so:

Pattern pattern = Pattern.compile("\\b(lol|rtfm|rofl|wtf)\\b");
// rest of the method unchanged, don't need the shortest/longest key stuff

This allows the regex engine to skip over any words that happen to be short enough but aren't in the list, saving you a lot of map accesses.

share|improve this answer
    
I dont think |'ing every key in my dictionary is a good approach, because i then need to check what the key is before inserting my definition. –  ekawas Sep 24 '10 at 16:08
    
That's check is implicit in substitute = substitutions.get(candidate). –  Barend Sep 24 '10 at 19:05
add comment

The first thing, that comes into my mind is this:

...
// eg: lol -> laugh out loud
Map<String, String> dictionatry;

ArrayList<String> originalText;
ArrayList<String> replacedText;

for(String string : originalText) {
   if(dictionary.contains(string)) {
      replacedText.add(dictionary.get(string));
   } else {
      replacedText.add(string);
   }
...

Or you could use a StringBuffer instead of the replacedText.

share|improve this answer
    
Are you implying that I explode my original text? Also, it seems like there is a lot of overhead here? Do you think that exploding the text and keeping these arrays is better (efficient) than using regular expressions? –  ekawas Sep 24 '10 at 15:17
    
In Java the String class is immutable, so once created and initialized, it cannot be changed on the same reference. So every replace calling would create a new String. The other reason why I suggest this implementation is because it is easy to read and understand. You just have to explode your big string into a list and keep this 2 lists in memory. –  Zoltan Balazs Sep 24 '10 at 15:31
    
Thanks. I like your answer, but I used the other one. –  ekawas Sep 24 '10 at 16:10
add comment

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.