> so (Any)
False

But

> so [1, Any]
True

How to make it produce False?

UPD: This seems to work, though I'm not sure it's the right way.

> so [1, Any].all
False
up vote 2 down vote accepted

If you want definedness rather than truthyness checks, you can also say [1, 2, Any].all.defined, which will autothread the defined method call over the junction.

say [1, 2, True].all.defined   # True
say [1, Int, True].all.defined # False

First of all, (Any) is not a List, (Any,) is (note the comma). You should either make the first case an array (like [Any]). Otherwise you're comparing apples with oranges :-)

When you give so a list (lowercase list meaning an Array or a List in this context), it will take the number of elements in the list: so every list that has at least one element, will give True.

To answer your question, there are many ways of doing that, but all will require at least partial walking of the list. If you are sure that your list does not contain 0 or the empty string, you could do something as simple as:

say so [&&] (1,Any,3); # False
say so [&&] (1,2,3);   # True

The [&&] is basically saying: 1 && Any && 3 and 1 && 2 && 3.

If you cannot be sure of that, then you will have to do an additional step:

say [&&] (1,Any,3).map: *.defined; # False
say [&&] (1,0,3).map: *.defined;   # True

Note that in this case you don't have to do the so, as the .map already makes the values either True or False. I'm leaving it as an exercise for the reader to do something faster using .first.

Your Answer

 

By clicking "Post Your Answer", you acknowledge that you have read our updated terms of service, privacy policy and cookie policy, and that your continued use of the website is subject to these policies.

Not the answer you're looking for? Browse other questions tagged or ask your own question.