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In my program I have used the function FileReader(String fileName) to read a file. This file is kept at fileName is holding a string setup.ini. I have kept this file in the same folder from where I am compiling my java program but even after I have removed the file from this folder I am not getting any Exception of File not found. So I wonder does the compiler take the file from some other location?

Please see the code below:

public class ReadINI
{
    public static void main(String args[]) throws IOException
    {
        String s = getParameter("bin","setup.ini");
        System.out.println("Result   " + s);
    }

    public static String getParameter(String inputValue, String fileName)
    {
        try
        {
            BufferedReader myInput = new BufferedReader(new FileReader(fileName));
            try 
            {

                try {
                        String fileLine;
                        fileLine = myInput.readLine();

                        do
                        {
                            String stringArray[] = fileLine.split("=");
                            if (inputValue.equals(stringArray[0]))
                            return stringArray[1];
                        }while ((fileLine = myInput.readLine()) != null); 
                    }
                    catch (Exception e)
                    {
                        System.err.println("Error1: " + e);
                    }
             } // end try
             catch (Exception e)
             {
                 System.err.println("Error2: " + e);
             }

         } // end try
         catch (Exception e)
         {
             System.err.println("failed to open file setup.ini");
             System.err.println("Error3: " + e);
         }
         return "Not Found";
     }

}
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Wherever you put the file in your project, its relative path must be given there. –  R.J Mar 11 '13 at 8:29
1  
If I don't mention anything other than the filename shouldn't it search for the file in the same directory where the program is being compiled? –  user186414 Mar 11 '13 at 8:31
2  
Where do you run your program? There should be a setup.ini file there. –  longhua Mar 11 '13 at 8:32
1  
add System.out.println((new File(fileName)).getAbsolutePath()); to the method body and check the path to actual file. –  default locale Mar 11 '13 at 8:33
2  
You dont need that many try catch clause. You can do with Just one try catch. –  Jayamohan Mar 11 '13 at 8:35

3 Answers 3

The compiler doesn't search for your file anywhere. The file is searched for at run time, not at compile time. If you give a relative path, the file will be searched for in the directory where you run the program.

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I have run the program, by removing the setup.ini file from the directory where I have kept my program and I expect my program to give an exception of 'file not found'. But the program doesn't give any exception. Can you please suggest some solution? –  user186414 Mar 11 '13 at 10:14
    the file should be right inside your project outside src directory , 
    the file should be in the same folder where src folder is present

    |--MyProject
       |--src
       |--youFile.txt

or you can give full path to the file which is located anywhere on the disk
String fileName = "c:/folder1/folder2/yourFile.txt";
share|improve this answer

Any request to open a file inside a java application makes the JVM start its search from the CLASSPATH of that particular java class. So, when you place the file you want to open in code in the CLASSPATH - basically the folder in which the .java file (and hence the compiled .class file) resides. Elaborating, if your file someFile.txt is to be accessed by SomeClass which is residing in package org.pack1.pack2, that someFile.txt should be present in the folder \org\pack1\pack2\

Use of absolute paths to access a file inside an application is discouraged as it would dent the portability of that application.

share|improve this answer
    
As you can see in the above code I have not used any absolute paths. I have just mentioned the file name directly in the string which is an argument of FileReader() function. –  user186414 Mar 11 '13 at 10:18

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