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In Java, is it possible to specifiy a directory using a wildcard character, when trying to create a file object as below?

File newFile = new File("\temp\*\path");

In this case, the directory is created by some other part of code which I don't have access to, which puts a timestamp in the name. So the problem would be solved if I can put * in place of the timestamp, like

 File newFile = new File("\temp\dirname-*\path");  // * is timestamp when directory was created.

Thanks for any help.

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3 Answers 3

If you're a programmer, you should learn that statements like "I am sure that a single directory exists at that place" will be true until they are false (and they will be false at some point).

Do the work to look in \temp\, verify that there is only one directory, then open the file with the correct path. Then when the precondition isn't true you can throw an exception or display a message.

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well, the thing is that directory is created by someone else's code, which runs before I run mine. Also I can run my code only if the first chunk that creates the directory runs successfully. So I am sure the directory exists, and I am not trying to access any random directory. –  rgamber Sep 21 '11 at 22:29
    
@rgamber, then why do you need '*' if it is not a random directory :)? –  Andrey Adamovich Sep 21 '11 at 22:32
    
@AndreyAdamovich,the directory name is based on a timestamp. I cannot precisely assume the creation time. Though if I am able to put a wildcard where the timestamp is, then the problem is solved. I should have mentioned this in the question!! –  rgamber Sep 21 '11 at 22:34
    
You say it's "based" off of the timestamp- is there any part of it that you can reliably know? E.g. If it's going to be temp\dir1234567\path then you could look for child folders of temp whose names start with "dir" –  Dylan Sep 21 '11 at 22:39
    
Yes..its something like temp\dir-1234567\path\file. Thats why I was trying to put a *: temp\dir-*\path\file. –  rgamber Sep 22 '11 at 1:08
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Creating it as you described is not possible. It is, however, possible to write an algorithm to search for a File that fits the description. In your case, you would want to create a new File("temp") then recursively search through its children (using the listFiles for any file whose isDirectory method returns true) for a file that is named "path".

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Thanks for the suggestion. –  rgamber Sep 23 '11 at 15:24
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No, it is not possible to use wild cards in file names in Java.

You will need to resolve the path yourself, but it is not hard.

You might find

new java.io.File("/tmp").listFiles();

an interesting place to start.

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