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I fetch some html and do some string manipulation and en up with a string like

string sample = "\n    \n   2 \n      \n  \ndl. \n \n    \n flour\n\n     \n 4   \n    \n cups of    \n\nsugar\n"

I would like to find all ingredient lines and remove whitespaces and linebreaks

2 dl. flour and 4 cups of sugar

My approach so far is to the following.

Pattern p = Pattern.compile("[\\d]+[\\s\\w\\.]+");
Matcher m = p.matcher(Result);

while(m.find()) {
  // This is where i need help to remove those pesky whitespaces
}
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6 Answers 6

up vote 2 down vote accepted

Following code should work for you:

String sample = "\n    \n   2 \n      \n  \ndl. \n \n    \n flour\n\n     \n 4   \n    \n cups of    \n\nsugar\n";
Pattern p = Pattern.compile("(\\s+)");
Matcher m = p.matcher(sample);
sb = new StringBuffer();
while(m.find())
    m.appendReplacement(sb, " ");
m.appendTail(sb);
System.out.println("Final: [" + sb.toString().trim() + ']');

OUTPUT

Final: [2 dl. flour 4 cups of sugar]
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Your solution is just what im after, i will try it tomorrow. By the way, \n is included in \s, so you only need [\\s]+ in your pattern –  Flexo May 26 '11 at 20:43
    
Yes that's correct, thanks, edited the answer. –  anubhava May 26 '11 at 20:50
    
Why not use replaceAll() like everyone else did? –  Alan Moore May 26 '11 at 22:16
    
Yes could have used replaceAll() as well, but OP was trying to do it using Pattern/Matcher Classes so wrote code using that. –  anubhava May 26 '11 at 22:20
    
Actually, the reason i use the pattern/matcher is becuase the string contains other stuff as well, but thats the actual recipe. I just want format the ingredients so they can be presented in a nice list. –  Flexo May 27 '11 at 7:02

sample = sample.replaceAll("[\\n ]+", " ").trim();

Output:

2 dl. flour 4 cups of sugar

With no spaces in the beginning, and no spaces at the end.

It first replaces all spaces and newlines with a single space, and then trims of the extra space from the begging / end.

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I think something like this will work for you:

String test = "\n    \n   2 \n      \n  \ndl. \n \n    \n flour\n\n     \n 4   \n    \n cups of    \n\nsugar\n";

/* convert all sequences of whitespace into a single space, and trim the ends */
test = test.replaceAll("\\s+", " ");
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I assumed that the \n are not actual line feed, but it also works with linefeeds. This should work fine :

test=test.replaceAll ("(?:\\s|\\\n)+"," ");

In case there is no textual \n it can be simpler:

test=test.replaceAll ("\\s+"," ");

An you need to trim the leading/trailing spaces.

I use the RegexBuddy tool to check any single regex, very handy in so many languages.

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To match the literal sequence \n (backslash + 'n'), you would need four backslashes in the regex (\\\\n), not three. But it's pretty clear the OP is really trying to match linefeeds. –  Alan Moore May 26 '11 at 22:10

You should be able to use the standard String.replaceAll(String, String). The first parameter will take your pattern, the second will take an empty string.

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Thats where i need the regex variables which i dont really know how to use. Let me examplify: my pattern matches "\n \n 2 \n \n \ndl. \n \n \n flour\n\n \n" and i would like to replace that with "2 dl. flour". my question here is how do i extract the information from the matched substring? –  Flexo May 26 '11 at 19:24
    
@Flexo, see my reply, it does exactly that. –  Kaj May 26 '11 at 19:47
s/^\s+//s
s/\s+$//s
s/(\s+)/ /s

Run those three substitutions (replacing leading whitespace with nothing, replace trailing whitespace with nothing, replace multiple whitespace with a space.

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