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I have a filename in my code as :

String NAME_OF_FILE="//sdcard//imageq.png";
FileInputStream fis =this.openFileInput(NAME_OF_FILE); // 2nd line

I get an error on 2nd line :

05-11 16:49:06.355: ERROR/AndroidRuntime(4570): Caused by: java.lang.IllegalArgumentException: File //sdcard//imageq.png contains a path separator

I tried this format also:

String NAME_OF_FILE="/sdcard/imageq.png";
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4 Answers 4

up vote 20 down vote accepted

This method opens a file in the private data area of the application. You cannot open any files in subdirectories in this area or from entirely other areas using this method. So use a FileInputStream or such.

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openFileInput() doesn't accept paths, only a file name if you want to access a path, use new File(path) and corresponding FileInputStream

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4  
Would be great if you have provided some sample code to achieve this! –  Muhammad Babar May 30 at 6:07

You cannot use path with directory separators directly, but you will have to make a file object for every directory.

NOTE: This code makes directories, yours may not need that...

File file= context.getFilesDir();
file.mkdir();

String[] array=filePath.split("/");
for(int t=0; t< array.length -1 ;t++)
{
    file=new File(file,array[t]);
    file.mkdir();
}

File f=new File(file,array[array.length-1]);

RandomAccessFileOutputStream rvalue = new RandomAccessFileOutputStream(f,append);
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1  
What ? File f = new File(fileDirPath); f.mkdirs(); Please edit –  Mr_and_Mrs_D May 5 '13 at 0:19

The solution is:

FileInputStream fis = new FileInputStream (new File(NAME_OF_FILE));  // 2nd line

The openFileInput method doesn't accept path separators.

Don't forget to

fis.close();

at the end.

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Given that one can use FileInputStream like this, why choose to use openFileInput? –  mickey Dec 19 '13 at 22:32

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