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I have a sort of a problem with this code:

String[] paragraph;
if(paragraph[searchKeyword_counter].matches("(.*)(\\b)"+"is"+"(\\b)(.*)")){

if i am not mistaken to use .matches() and search a particular character in a string i need a .* but what i want to happen is to search a character without matching it to another word. For example is the keyword i am going to search I do not want it to match with words that contain is character like ship, his, this. so i used \b for boundary but the code above is not working for me.

Example:

String[] Content= {"is,","his","fish","ish","its","is"};
String keyword = "is";
for(int i=0;i<Content.length;i++){
    if(content[i].matches("(.*)(\\b)"+keyword+"(\\b)(.*)")){
         System.out.println("There are "+i+" is.");
    }
}

What i want to happen here is that it will only match with is is, but not with his fish. So is should match with is, and is meaning I want it to match even the character is beside a non-alphanumerical character and spaces.

What is the problem with the code above?

what if one of the content has a uppercase character example IS and it is compared with is, it will be unmatched. Correct my if i am wrong. How to match a lower cased character to a upper cased character without changing the content of the source?

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Is paragraph[searchKeyword_counter] an instance of java.util.Pattern? –  Aubin Nov 6 '12 at 14:36
1  
Can you give some text samples, with expected results? –  Aubin Nov 6 '12 at 14:38
1  
Your code seems to work just fine, what is your problem? –  Keppil Nov 6 '12 at 14:42

3 Answers 3

String string = "...";
String word = "is";

Pattern p = Pattern.compile("\\b" + Pattern.quote(word) + "\\b");
Matcher m = p.matcher(string);
if (m.find()) {
  ...
}
share|improve this answer
    
Although the answer is not incorrect towards it's results, I disagree with it's current state: -Be it about the OP's issues, or this answer's code, no explanation is given whatsoever. -Also, I think that the code, although not incorrect, is not really suitable for the described intended purpose. --- To prevent misguidance to the community members with this or similar issues, I think a [-1] is in order until this answer is improved or removed. –  TheLima Nov 6 '12 at 18:30
    
@TheLima - I respect your opinion and you are welcome to put anything to your answer, even all your above ideas, however please do not spam my answer with sooooo chatty comments. I would appreciate if you remove all your above comments. I respect you, even your right to downvote me, but I like to my posts clear, if possible... Thank you, Sir. –  Ωmega Nov 6 '12 at 21:20

just add spaces like this:

suppose message equal your content string and pattern is your keyword

if ((message).matches(".* " + pattern + " .")||(message).matches("^" + pattern + " .") ||(message).matches(".* " + pattern + "$")) {

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There are two errors in your code:

  • When printing the text "There are # is.", you are using the index variable i as a counter. The index will give you the current iteration position, not a count of matches.
  • Your content variable is not consistent throughout the code, being present as both Tittle Case / Capitalized (Content) and lowercase (content). Java is case-sensitive, so it's effectively two different variables (one is not currently declared, even).

Regarding the second, you should respect Java's conventions for variable naming. In particular the following:

--"If the name you choose consists of only one word, spell that word in all lowercase letters. If it consists of more than one word, capitalize the first letter of each subsequent word. The names gearRatio and currentGear are prime examples of this convention."

--"If your variable stores a constant value, such as static final int NUM_GEARS = 6, the convention changes slightly, capitalizing every letter and separating subsequent words with the underscore character. By convention, the underscore character is never used elsewhere."


As for your regex pattern, although clarity can be improved, there is nothing really wrong with it.

There are some unnecessary capturing groups on your pattern string, and content[i].matches(".*\\b" + keyword + "\\b.*") would be cleaner while achieving the same result.

Fixing the actual errors mentioned in the first section, and applying what I say above, your code would be this:

String[] content = {"is,", "his", "fish", "ish", "its", "is"};
String keyword = "is";
int count = 0;
for (int i = 0; i < content.length; i++) {
  if (content[i].matches(".*\\b" + keyword + "\\b.*")) {
    System.out.println("Matched: \"" + content[i] + "\"");
    count++;
  }
}
System.out.println("There are " + count + " \"" + keyword + "\".");

There are two additional things you should consider:

1) If your paragraph is already split, and the element's were obtained with predictable ways such as content.split("\\b"), you should consider if the use of regex for the matching is even needed in the first place.

For example, the following code would work fine for your purposes:

String content = "is, his fish ish its is";
String keyword = "is";
int count = 0;
for (String sub : content.split("\\b")) {//<-Decompose: Regex or something else.
  if (sub.equals(keyword)) { //<-Matching: No regex.
    count++;
  }
}
System.out.println("There are " + count + " \"" + keyword + "\".");

2) If you want to actually list your matches, or something that involves retrieving them specifically, then you are best-set using a Matcher to "catch" the matches:

String content = "is his fish ish its is";
String keyword = "is";
List<String> matches = new ArrayList<String>();
Matcher m = Pattern.compile("\\b" + Pattern.quote(keyword) + "\\b").matcher(content);
while (m.find()) {
  matches.add(m.group());
}

In your example, it's kinda useless though: The code above gets you a list of multiple (2) duplicates of "is". But the principle applies to a scenario where the match wouldn't be a single word, or if you want to list or map the different words present in content.

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