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The JLS 11 "7.7.2. Exported and Opened Packages" says:

It is permitted for opens to specify a package which is not declared by a compilation unit associated with the current module.

What would be a scenario for this? Why is this needed?

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    The JLS in next sentence says that this opens does not affect packages from other modules, so no hijacking: "(If the package should happen to be declared by an observable compilation unit associated with another module, the opens directive has no effect on that other module.)" so, your scenario probably does not fit. – Barat Sahdzijeu May 15 at 11:05
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    Think about a module that contains resources in their own "package". If you want other modules to be able to locate those resources then you'll need to open that package. – Alan Bateman May 15 at 17:10
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    Alan, but the question is specifically about the situation that what is opened doesn't exist in the module. You're describing, as I read it, a perfectly reasonable situation, of course, but one in which the module does exist in that module. Or did I miss your intention? – Toby Eggitt May 15 at 19:37
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    I think the issue here is "compilation unit" versus "resource". The quote from the JLS doesn't say that the package is non-existing: it says there are no compilation units. Consider the case where config.properties is stored in com.foo.abc. The package exists with entities to be exported but there are no compilation units (I'm assuming properties files aren't compilation units!) – Michael Easter May 16 at 1:14
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    @MichaelEaster, OK, I understand your scenario. But in your scenario, the directory com/foo/abc must exist (we can consider it "package" or "resources folder", no matter) anyway (although with .properties file, not the .java file). I wonder why compilation succeeds when no com/foo/abc exists at all? I tried and this is a valid scenario. Is there any explanation/reason why this is allowed? – Barat Sahdzijeu May 16 at 7:32
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Thanks to Alan Bateman and Michael Easter for explanations, and I can think of some realistic scenarios.

First, as was explained by Alan and Michael: JLS allows to "open" directories without Java types for situations when we keep resources in them. So, for us these are "resource directories", but JLS names it as package which is not declared by a compilation unit. And it's not even question of "allows" but rather "must". Without opens directive for resources directory (com/foo/abc), another module cannot read resource like that:

InputStream is = ClassLoader.getSystemResourceAsStream("com/foo/abc/config.properties");

Second, I wrote this question mostly because I was puzzled that opens allows to specify even non-existing "packages" (directories), although it gives warnings, but compiles successfully. A possible scenario behind that I can think of a build script for modular JAR file:

  1. it compiles .java files (we have module-info.java define opens com.foo.abc; and com/foo/abc directory ("package") does not exist)
  2. it creates com/foo/abc directory
  3. it copies there config_dev.properties file, at this step decision made for what environment we make build (PROD/TEST/DEV)
  4. JAR file is packaged, containing bytecode and resources.

In case opens for non-existing directory was not allowed, step #1 would fail. But it only gives a warning during compile time, which is Ok.

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