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I am writing code to split lines in java but it doesn't work properly.

import java.io.FileNotFoundException;
import java.io.IOException;
import java.util.ArrayList;
import java.lang.*;

public class mainprogram {
    public static void main(String [] args ) throws FileNotFoundException, IOException
    {
    //creating object for purpose of writing into file
    writFile ObjectwritFile = new writFile();

    //creating object for purpose of reading from file
    loadFile ObjectloadFile = new loadFile();

    //this will be used for storing text into from file
    String text="";

    //text = ObjectloadFile.loadFile("C://names.txt");

    System.out.println(text);

    ObjectwritFile.writeFile("C://testfile.txt",text);

   //these regexp didn't work
    //String regexp = "[\\r\\n]+"; 
   //String regexp = "[\\s,;\\n\\t]+";  

  String regexp = "[\\n]+";

   //this one didn't work  
   //String[] lines = text.split(regexp);



    String[] lines = text.split(System.getProperty("line.separator"));

    for(int i=0; i<lines.length; i++){

    System.out.println("Line "+i+": "+lines[i]);
    ObjectwritFile.writeFile("C://testfilelines.txt","Line "+i+": "+lines[i]);

    }         
          }

    }

The text is in this format.

John, Smith, 4 ,5 ,6
Adams, Olsen, 7,8, 3
Steve, Tomphson , 4,5 9
Jake, Oliver, 9,8,9

Once I separate text by lines I have to sort it by alphabet and but numbers into a file with same text format.

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" by alphabet and but numbers" <-- care to explain? –  fge Dec 22 '12 at 18:51
    
What do you mean by not working properly? Errors? –  Vincent Ramdhanie Dec 22 '12 at 18:51
    
why do you use regexp to split by lines? just follow singularity advice... –  UmNyobe Dec 22 '12 at 18:57
    
I have to sort by alphabetical order from a to z. And I have to sort those data by numbers from smaller to bigger numbers. This is what I got in the console Line 0: –  macroscripts Dec 22 '12 at 19:10
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5 Answers

up vote 2 down vote accepted

Try this:

String[] lines = text.split("\n+");

Note that "\n" is not a special regex character, so it doesn't need escaping. The regex "\\n" (in java) is the literal "n"

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You can use Scanner with \n as delimiter, to read line by line.

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Why bother doing everything by hand? Just use one of the available CSV libraries, such as Super CSV.

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I don't fully understand what you're trying to do, but if your input text is consistently in the format: String,String,int,int,int, then this groovy code will read the lines, sort them by the final three numbers in ascending order, and print them out:

def lines = new File('textSort.txt').readLines()
lines.sort{ it.split(',')[4].trim() }
lines.sort{ it.split(',')[3].trim() }
lines.sort{ it.split(',')[2].trim() }
println lines.join('\n')

It's a little hacky sorting three times, but it gets the job done and will work fine unless you have a large dataset. The Java code for it would be correspondingly much larger.

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OK checking this now. –  macroscripts Dec 22 '12 at 19:13
    
I checked and I got this. prntscr.com/mx47l –  macroscripts Dec 22 '12 at 19:16
    
You realize this is groovy code, not java, right? –  Ryan Stewart Dec 22 '12 at 19:18
    
Oh sorry I didn't fully understand you. So I would need more code to get this working. OK thanks. –  macroscripts Dec 22 '12 at 19:20
    
Well, in some ways, groovy can be thought of as java pseudocode. If you can express what you want in groovy, it can be easily expanded into java. It's just easier to express yourself in groovy because it's more powerful and requires less ceremony. So if this is what you want, or close to it, then you're near a java solution for it. –  Ryan Stewart Dec 22 '12 at 19:23
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String regexp = "[\\n]+";

   //this one didn't work  
   //String[] lines = text.split(regexp);

you don't need to escape \n with an extra backslash \\n as \n is a valid escape sequence.

String regexp ="[\n]+"; //will work fine
share|improve this answer
    
Nope that didn't work either. Each time I run the program I get this solution. prntscr.com/mx1uv Basically program outputs Line: 0 into text file and nothing else. I think I tried that solution but I didn't want to write each of the regexp that I tried. Next? –  macroscripts Dec 22 '12 at 18:55
    
@IceD then i think there's something wrong with the way you are reading the text file. but AFAIK youdon't really need to escape \n with an extra backslash \\n as \n is a valid java escape sequence . –  PermGenError Dec 22 '12 at 18:58
    
Here is the class I used for loading the file. pastebin.com/PUuP8T6N And when I saved the loaded text into a file it saved it well. So the loading process was correct. –  macroscripts Dec 22 '12 at 19:06
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