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I am new to Lucene and I would really appreciate an example on how to have bigrams and trigrams tokens in the index.

I'm using the following code and I have modified it to be able to calculate the term frequencies and weight but I need to do that to bigrams and trigrams also. I can't see the tokenization part! I searched online and some of the suggested classes do not exist in Lucene 3.4.0 as they have been deprecated.

Any suggestions please?

Thanks, Moe

EDIT: --------------------------------

Now I'm using the NGramTokenFilter as mbonaci suggested. This is part of the code where I Tokenize a text to get the uni, bi and trigrams. But it's being done on a character rather than word level.

Instead of: [H][e][l][l][o][HE][EL] etc.

I'm looking for: [Hello][World][Hello World]

        int min =1;
        int max =3;
        WhitespaceAnalyzer analyzer = new WhitespaceAnalyzer(Version.LUCENE_34);
        String text ="hello my world";
        TokenStream tokenStream = analyzer.tokenStream("Data", new StringReader(text));

        NGramTokenFilter myfilter = new NGramTokenFilter(tokenStream,min,max);
        OffsetAttribute offsetAttribute2 = myfilter.addAttribute(OffsetAttribute.class);
        CharTermAttribute charTermAttribute2 = myfilter.addAttribute(CharTermAttribute.class)
        while (myfilter.incrementToken()) {
            int startOffset = offsetAttribute2.startOffset();
            int endOffset = offsetAttribute2.endOffset();
            String term = charTermAttribute2.toString();
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up vote 1 down vote accepted

you need to look at shingles. That article shows how to do it.

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Thanks, this one did the job. – user849934 Jul 26 '12 at 9:16

Take a look at org.apache.lucene.analysis.ngram.NGramTokenFilter.

Here is the source.

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Thanks a lot. But how to make it on a word level rather than characters. For the text "Hello My World" I get: [H] [e] [l] [l] [o] [He] [el] [ll] [lo] etc... instead of [Hello] [My] [World] [Hello My] [My World] [Hello My World] etc... I used WhitespaceAnalyzer. – user849934 Jul 26 '12 at 0:11

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