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Whenever using the 'writeBytes' method of RandomAccessFile in java,it writes the text in the same line in the file. How can I get to a new line with RandomAccessFile only? (No BufferedReader).

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that is what javadoc says "The write starts at the current position of the file pointer". try writing new line character before writing data. –  sudmong Jan 30 '13 at 19:16

4 Answers 4

up vote 1 down vote accepted

Try this

RandomAccessFile file = new RandomAccessFile("e:\\demo.txt","rw");

String originalString = "First line \nSeconf line \n";

String updatedString = originalString.replace("\n","\r\n");

file.writeBytes(updatedString);
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Basically using '\r\n' escape sequence worked with it.Thanks a lot,friend!! –  aceBox Jan 30 '13 at 20:17
    
@user1907445 Always welcome.. –  Hemant Kumar Jan 30 '13 at 21:01

You can write a line separator. In order to get the correct line separator for the currently running operating system, you'll have to look for the line.separator property. Something along these lines:

randomAccessFile.writeBytes(System.getProperty("line.separator"));
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Your method is wrong. write() does not take in String. You should probably change it to writeChars(). Another way is randomAccessFile.writeBytes(System.getProperty("line.separator"));, since writeBytes() can take in String as a parameter. –  tom_mai78101 Nov 26 at 20:59
    
@tom_mai78101 Thanks, fixed it. –  Marc Baumbach Nov 26 at 21:23
System.getProperty("line.separator");

Try writing a new line to the file before anything else, as it will start writing where your last write left off.

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new line character has an ASCII value of 10 . You can store this value in in a Byte and then use the "writeBytes" which will result in a new line.

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