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I have a long string that I want to parse and retrieve a value. I was thinking of using patterns but I am a bit rusty at this.

This is the part of the string that interests me:

...sinking will be 44% successful...

the word 'sinking' is the keyword. I am looking to get the percentage value(44% in this case)

What is the best way? Thank you.

** the words 'will be' may change.

share|improve this question
    
Only two options, stringtokenize/split (or) expressions. You need to chose one of these. – Nambari May 3 '12 at 15:19
up vote 2 down vote accepted

Here's a regex solution:

String str = "...sinking will be 44% successful...";
Pattern p = Pattern.compile( "sinking will be (\\S*) successful" );
Matcher m = p.matcher( str );
if ( m.find() ) {
    String percent = m.group( 1 );
}

If you want just the numeral value of the percent, change your pattern to this:

"sinking will be (\\d*)% successful"

If any of the preceding text is irrelevant, you just want to grab the percent in a line, use this pattern:

"(\\d*%)"

Edit: If your keyword is "sinking", and you want the first percentage value after this word, this would be your pattern:

"sinking(?:[\\w\\s]*) (\\d+%)"
share|improve this answer
    
thanks Jason. But there are a few other percentages before and after this text. so I dont think this will work. – Ray May 3 '12 at 15:48
    
Do you know exactly how many? If not, what word(s) make this percentage special from the rest of them? How would you pick this one out? – Jason Robinson May 3 '12 at 16:16
    
Reread your question, look at my edit. – Jason Robinson May 3 '12 at 16:31
    
exactly this Jason. I am looking the first percentage after my keyword:) thanks! – Ray May 3 '12 at 16:42

Simple solution if it is always THIS kind of string:

String splitMe = "...sinking will be 44% successful...";
String strPercents = splitMe.split(" ")[3];
System.out.println(strPercents);//test output

Otherwise: good regex ressource http://www.vogella.com/articles/JavaRegularExpressions/article.html#examples

share|improve this answer
    
thanks thomas. But i think this will not work(would it?) because this is just the part that interests me. before and after this there are a lots of other stuff, hence the ... – Ray May 3 '12 at 15:24

As long as you know the text will always start with "sinking will be " and a % will always be there this will work regardless of the text surrounding it

String s = "more text more text sinking will be 44% successful more text";
String find = "sinking will be ";
int findIndex = s.indexOf(find) + find.length();
int pctIndex = s.indexOf("%", findIndex);

String result = s.substring(findIndex , pctIndex);
share|improve this answer
    
unfortunately only the word "sinking' is certain to be there. – Ray May 3 '12 at 15:31
    
I just noticed you edited your post that the text "will be" may not always be there. In that case this won't work. Your best bet will be to use a regex – dymmeh May 3 '12 at 15:31

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