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 have a text area wherein i have limited the user from entering more that 15 characters in one line as I want to get the free flow text separated into substrings of max limit 15 characters and assign each line an order number. This is what I was doing in my java class:

int interval = 15;                
items = new ArrayList();
 TextItem item = null;
 for (int i = 0; i < text.length(); i = i + interval) {
  item = new TextItem ();
  item.setOrder(i);

  if (i + interval < text.length()) {
    item.setSubText(text.substring(i, i + interval));
    items.add(item);
  } 
  else {
    item.setSubText(text.substring(i));
    items.add(item);
  }
}

Now it works properly unless the user presses the enter key. Whenever the user presses the enter key I want to make that line as a new item having only that part as the subText.

I can check whether my text.substring(i, i + interval) contains any "\n" and split till there but the problem is to get the remaining characters after "\n" till next 15 or till next "\n" and set proper order and subText.

share|improve this question
    
Please add the language/tools info in the question and tags. e.g. c#, winforms, textbox or adobe, air, textbox –  shahkalpesh Jun 21 '09 at 7:18

2 Answers 2

You could reverse the order of doing things: First, split the content of your text area at occurences of '\n'. Then take each of the resulting strings and split them into parts of maximum length 15.

Edit: I'm not totally sure about what you want to do, but here's what I would do. Note that I'm not a Java programmer, so I might be making false assumptions, and the following is untested.

int interval = 15;                
items = new ArrayList();
lines = text.split("\n");
for (int i = 0; i < lines.length(); i++)
{
  str = lines[i];
  while (str.length() > interval)
  {
    items.add(str.substring(0,interval)); // add the first 15 characters of str to the list
    str = str.substring(interval); // ... and remove them from str
  }
  items.add(str); // add the rest
}

After that, items is an ArrayList of strings that are in the correct order. It should be possible to extend this code to whatever additional information you need to store with the actual strings.

share|improve this answer
    
Thanks balpha. But as i mentioned the problem i have is to set proper oder number and subText...how to loop around this...any help. –  desmiserables Jun 21 '09 at 7:52
    
I have edited my answer. –  balpha Jun 21 '09 at 8:53
    
Thanks Balpha! Only thing is that if we split the string with '/n' then we are losing out the lines which only contains the '/n'. The idea is that if the user presses only the enter key also still those lines have to be accounted unless such occurrences are at the beginning of the text area without any characters entered before the user presses enter key. –  desmiserables Jun 22 '09 at 1:13
    
No, you won't miss the empty lines. According to the Java String.split() documentation at j2ee.me/j2se/1.4.2/docs/api/java/lang/… the split will retain empty strings in the middle. And discarding the empty ones at the beginning shouldn't be to hard. –  balpha Jun 22 '09 at 8:19
    
Thanks Balpha... I am facing an issue with this code... basically, items.add(str.substring(0,interval)); is getting overridden by items.add(str); it is getting added to the same item.... after the while loop –  desmiserables Jun 22 '09 at 15:22

Is this what you're trying to do?

public static void main(String[] args)
{
  String str =
  "\n\n123456789ABCDEF123456\n123456789AB\n\n123" +
  "456789ABCDEF123456789AB\n123456789ABCDEF\n";

  List<String> parts = new ArrayList<String>();

  // remove leading line separators
  str = str.replaceFirst("\\A[\r\n]+", "");

  // match up to 15 non-newline characters, but don't
  // match a zero-length string at the end
  Matcher m = Pattern.compile("(?!\\z).{0,15}").matcher(str);
  while (m.find())
  {
    parts.add(m.group());
  }

  for (String s : parts)
  {
    System.out.println(s);
  }
}

result:

123456789ABCDEF
123456

123456789AB


123456789ABCDEF
123456789AB

123456789ABCDEF
share|improve this answer

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.