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Based on the community's positive response to my canonical question about Spring, I think it would be helpful to have a similar canonical about using classpath resources from JAR files or similar packaged applications. (The question "I used File and it didn't work in a JAR file" shows up on my feed about once a day.)

I'm posting this to solicit feedback, particularly on whether there's a good existing canonical that I managed to overlook.

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This question with its accepted answer, as identified by @Lino, seems to clearly isolate the problem usage and explain why it doesn't work and what to do instead. I propose using this as a canonical dupe and performing a mass Mjollnir.

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    There is no canonical answer though. The accepted answer uses getClass().getResourceAsStream() which is quite an error prone way to load resources. There is also a distinct lack of using try-with-resources in all the answers. – Gimby Aug 26 at 7:38
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    @Gimby What is your recommendation in place of getClass().getResourceAsStream(String)? – chrylis -cautiouslyoptimistic- Aug 26 at 8:06
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    You should use ClassName.class.getResourceAsStream(String). Otherwise, it could fail when you have a subclass in a different package. Unless, you want to potentially end up at different, sub-class specific resources, of course. Usually, you don’t. – Holger Aug 26 at 8:10
  • @Holger Fair enough; I have so infrequently loaded relative-path resources I overlooked that. – chrylis -cautiouslyoptimistic- Aug 26 at 8:11
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    Even for absolute paths there’s the hypothetical case of a subclass in a different module that can’t access the resource. – Holger Aug 26 at 8:13
  • @Holger getResourceAsStream() is @CallerSensitive - the permissions of the caller are used, not of the subclass. – Johannes Kuhn Aug 26 at 8:31
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    @JohannesKuhn when you do getClass().getResourceAsStream(String), the resource will be searched in the subclass’ module. The caller on the other hand, is not the subclass. – Holger Aug 26 at 8:53
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    So it's looking like subtle pitfalls in the existing solutions plus the introduction of Jigsaw mean that a new version is needed. – chrylis -cautiouslyoptimistic- Aug 26 at 8:54
  • Well, the superclass can't access the resource in the subclass's module. – Johannes Kuhn Aug 26 at 9:28
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    @chrylis-cautiouslyoptimistic- definitely a new version is needed. Key factors are Class.getResourceAsStream() Vs ClassLoader.getResourceAsStream() and the problems that modules add to the mix. I would write one myself, but I haven't researched into the module specifics yet. – Gimby Aug 26 at 11:57
  • @Gimby Is it necessary to delve into those subtleties? Would it be sufficient for purpose to say "Use Foo.class.getResourceAsStream()"? – chrylis -cautiouslyoptimistic- Aug 26 at 16:33
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    IMO it's not needed to explain the different ways to call getResourceAsStream, but it is needed to make sure the asker understands why File doesn't work. They should have that facepalm moment where they realize the thing they're trying to load isn't a file. – user253751 Aug 26 at 16:57
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    To me, if an answer doesn't mention the difference between ClassName.class.getResourceAsStream(relativeToClass) and ClassName.class.getClassLoader().getResourceAsStream(relativeToClasspath), it's not a "canonical answer". – Olivier Grégoire Aug 28 at 11:16

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