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Editorial Team
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Asked: 2026-05-12T23:37:54+00:00

I have a file reader channel picking up an xml document. By default, a

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I have a file reader channel picking up an xml document. By default, a file reader channel populates the ‘originalFilename’ in the channel map, which ony gives me the name of the file, not the full path. Is there any way to get the full path, withouth having to hard code something?

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  1. Editorial Team

    Unfortunately, there is no variable or method for retrieving the file’s full path. Of course, you probably already know the path, since you would have had to provide it in the Directory field. I experimented with using the preprocessor to store the path in a channel variable, but the Directory field is unable to reference variables. Thus, you’re stuck having to hard code the full path everywhere you need it.

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