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Sample Code is :-

import java.io.*;

public class WriteInt{
    public static void main(String [] args)
    {
    WriteInt obj = new WriteInt();
    obj.write();
    }

    public void write(){
    File file = null;
    FileOutputStream out = null;
    int [] arr = {6};
    try{
    file= new File("CheckSize.txt");
    out = new FileOutputStream(file);
    for(int i =0; i<arr.length;i++)
    {
        System.out.println("Trying to write to file:-"+ file);
        out.write(arr[i]);
    }

    }
    catch(IOException ioex){
    ioex.printStackTrace();
    } 
    finally{
    if(out != null)
    {
        System.out.println("Closing the stream");
        try{
        out.close();
        }   
        catch(IOException ioex){
        ioex.printStackTrace();
        }
    }

    else{
        System.out.println("Stream not open");
        }   
    }
    }

    }

Since I am using Byte-Oriented Stream to write data to a file; My Question is that will the data be written to file in 4 steps (1 byte) in each step. Considering int to be of 4 bytes. Please correct me if I am wrong.

share|improve this question
1  
You can read about it in the documentation –  jlordo Nov 22 '12 at 13:54
2  
Maybe you could check by yourself by trying it? –  sp00m Nov 22 '12 at 13:54
    
how can this be checked? –  Ankit Nov 22 '12 at 13:59
    
write one int to the file like you are doing it and look at the file afterwards (maybe with a hex editor) –  jlordo Nov 22 '12 at 14:01
    
You aren't writing an int at all. You are writing a byte. That only takes one write. –  EJP Nov 22 '12 at 20:33

2 Answers 2

up vote 2 down vote accepted

out.write(arr[i]) will write only the lowest byte of int. The best solution is to use java.io.DataOutputStream which has writeInt(int) method.

    DataOutputStream out = new DataOutputStream(new FileOutputStream("file"));
    out.writeInt(arr[i]);
share|improve this answer
    
there will be lost of precision; so can this be assumed that int is first converted to byte than written to file? –  Ankit Nov 22 '12 at 14:19
    
see OutputStream.write(int b) API, it says: "Writes the specified byte to this output stream. The general contract for <code>write</code> is that one byte is written to the output stream. The byte to be written is the eight low-order bits of the argument <code>b</code>. The 24 high-order bits of <code>b</code> are ignored." –  Evgeniy Dorofeev Nov 22 '12 at 14:24
    
Int does get converted to byte but here in your case value which needs to be written is within the range of byte so even if the truncation occurs there is no loss of precision.But even if the value 127(more than max value of byte) there will be no loss of precision. Check this link : stackoverflow.com/questions/19402568/… –  userv Oct 17 '13 at 10:14

In your example you are using OutputStream.write(int) which writes only byte representation of provided number - only one byte is writen, take a look to OutputStream API. So your file will contain only one byte with 6. If you will try to write a number that is more than 255 - you can expect an exception.

Basically OutputStream requires its subclasses to implement only write(int) method, so other OutputStream methods sends theirs bytes to write(int). However all write methods in FileOutputStream are overridden and utilizes buffered native call that probably tries to send all data at a time.

share|improve this answer
    
I was expecting an exception but to my surprise number 257 is taken as 1. –  Ankit Nov 22 '12 at 15:50
    
I have checked FileOutputStream source code. It simply utilizes buffered call of native library (check writeBytes method here: docjar.com/html/api/java/io/FileOutputStream.java.html). So all writing methods sends data through this one. –  Mikhail Tsaplin Nov 23 '12 at 5:51

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