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I need to read a file that is opened for writing in other part of the program

const string fileName = "file.bin";
FileStream create = File.Open(fileName, FileMode.Create, FileAccess.Write, FileShare.Read);
FileStream openRead = File.Open(fileName, FileMode.Open, FileAccess.Read, FileShare.Read);

The last line raises IOException:

"The process cannot access the file because it is being used by another process"

Please help properly configure File.Open parameters.

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make sure the file is closed before reading –  62071072SP Sep 15 '11 at 9:10
    
if you have it opened in another part of your application then just refactor this to use it in a single-instance/service so you only have to open it once –  Carsten König Sep 15 '11 at 9:12
    
No. I need read from file is opened for writing. Windows must allow this. –  Alex Sep 15 '11 at 9:14
1  
@Alex : Try changing FileShare.Read as FileShare.ReadWrite –  62071072SP Sep 15 '11 at 9:19
    
Yes. You right. –  Alex Sep 15 '11 at 10:41

5 Answers 5

up vote 3 down vote accepted

Change FileShare parameter to FileShare.ReadWrite in both statement:

FileStream create = File.Open(fileName, FileMode.Create, FileAccess.Write, FileShare.ReadWrite);
FileStream openRead = File.Open(fileName, FileMode.Open, FileAccess.Read, FileShare.ReadWrite);

ReadWrite flag description from MSDN:

Allows subsequent opening of the file for reading or writing. If this flag is not specified, any request to open the file for reading or writing (by this process or another process) will fail until the file is closed.

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You need to close the file first with the .Close() method.

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No. I need read from file is opened for writing. Windows must allow this. –  Alex Sep 15 '11 at 9:13

The first stream is going to write to the file whereas the second one permits reading only

FileStream create = File.Open(fileName, FileMode.Create, **FileAccess.Write**, FileShare.Read);
FileStream openRead = File.Open(fileName, FileMode.Open, FileAccess.Read, **FileShare.Read**);
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Please show your example –  Alex Sep 15 '11 at 9:15

Use FileShare.ReadWrite for that:

 const string fileName = "file.bin";
    FileStream create = File.Open(fileName, FileMode.Create, FileAccess.Write, FileShare.ReadWrite); 
    FileStream openRead = File.Open(fileName, FileMode.Open, FileAccess.Read, FileShare.ReadWrite);
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To complete Reniuz's answer, you can do this :

FileStream create = File.Open(fileName, FileMode.Create, FileAccess.Write, FileShare.Read);
FileStream openRead = File.Open(fileName, FileMode.Open, FileAccess.Read, FileShare.ReadWrite);

Notice FileShare.Read for the first FileStream for write access. The write stream allows other streams to read it. It doesn't seem safe to set FileShare.ReadWrite in the writer stream.

The second stream for read access effectively need to set FileShare.ReadWrite because the parameter FileShare defines the permissions for other streams. If you set only FileShare.Read while another stream is already open for write, the reader stream simply cannot fulfill the FileShare.Read permission (which implicitly says the stream cannot be written by another stream).

I think there is a natural confusion between the two parameters FileAccess and FileShare. The first is basically the permission of the stream you create, the second is for any other.

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