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I'm trying to open a resource in my Java application by calling MainClass.class.getResource("/Resources/file.extension") and passing it to File's constructor with getPath(). Next, when I initialize a new FileInputStream with the File, I get a FileNotFoundException. The complete stack trace looks this.

java.io.FileNotFoundException: E:\user\Documents\NetBeansProjects\Project name\build\classes\Resources\file.csv (The system cannot find the path specified)
    at java.io.FileInputStream.open(Native Method)
    at java.io.FileInputStream.<init>(FileInputStream.java:138)
    at my.secret.project.MainClass.main(MainClass.java:27)

Here's my code.

File file = new File(MainClass.class.getResource("/Resources/file.extension").getPath());

...

InputStream in = new FileInputStream(file);
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1  
Is the file present in the indicated location? – Abhinav Sarkar Oct 4 '12 at 17:13
    
I would use MainClass.class.getResourceAsInputStream(path) – Peter Lawrey Oct 4 '12 at 17:13
up vote 1 down vote accepted

Your whole code can be replaced with simple:

InputStream in = MainClass.class.getResourceAsStream("/Resources/file.extension");

No need to use File. In fact the file on your CLASSPATH might be pointing to some location inside JAR/WAR, which definitely won't work. Have a loot at Class.getResourceAsStream() for details.

share|improve this answer
    
Nice, thanks! Wait a few minutes and I'll accept it as an answer. – MikkoP Oct 4 '12 at 17:16

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