9

I'm writing some tests with chai and chai-as-promised (and more frameworks, but it doesn't matter in this case) and I need to check if array I get from a web-page is same as a predefined array. I tried to use expect(arrayFromPage).to.eventually.deep.equal(predefinedArray), but it won't work, because order of elements on page is sometimes different (which is OK, I don't need to check if they are in the same order).

I've found a way to workaround the issue by using expect(listFromPage).to.eventually.include.all.members(predefinedArray), but I'd like to know if there is a better solution.

What bothers me most in my workaround, is that I only assure that predefinedArray is subset of listFromPage, not that they are made of same elements.

So, I'd like to know if there is an assert that will pass for [1,2,3] and [3,2,1], but not for [1] and [1,2,3] or [1,2,3,4] and [1,2,3].

I know that I can use some second expectation (compare lengths, or something else), but I'd like to know if there is a one-line solution.

20

Seeing as this was marked as resolved earlier, I tried doing the same thing as in the accepted answer. It probably worked back then, but doesn't seem to work anymore:

expect([1, 2, 3, 4]).to.have.all.members([2, 4, 3, 1]);

Gives the following error:

AssertionError: expected 1 to be an array

I did a little more research and found a pull request that added this functionality back in 2013:

https://github.com/chaijs/chai/pull/153

So the official way of doing this now is like this:

expect([1, 2, 3, 4]).to.have.same.members([2, 4, 3, 1]);

For completeness, here's the error that two different sets produces:

AssertionError: expected [ 1, 2, 3, 4 ] to have the same members as [ 4, 3, 1 ]

Hope this helps anyone searching for the same answer now. :-)

  • Any ideas why it worked in August '16 if this pull-request was merged in '13? – Alissa Mar 23 '17 at 12:16
  • Nope. But if we dig deep in the commits, then perhaps they made it not work because it never was supposed to some time between then and now. :-) – sindrenm Mar 26 '17 at 14:33
  • If you ever test an array of objects this might by your solution: expect(result).to.have.same.deep.members(expected); – Costin Jun 5 '18 at 10:47
4

It's not entirely clear from the documentation, but .to.have.all.members seems to work. I could only find a mention of this feature for .keys, but looks like it also works for .members with arrays.

  • Do you mean that expect([1,2,3,4]).to.have.all.members([1,2,3]) will fail? Because I need it to fail in this case and it is the main concern about using to.have.all.members – Alissa Aug 19 '16 at 10:38
  • Yes, exactly: expect([1, 2, 3, 4]).to.have.all.members([2, 3, 1, 4]) succeeds, but expect([1, 2, 3, 4]).to.have.all.members([1, 2, 3]) fails with AssertionError: expected [ 1, 2, 3, 4 ] to have the same members as [ 1, 2, 3 ] – pdenes Aug 19 '16 at 19:51
  • 1
    This probably worked at the time you wrote it, but has since stopped working. See my answer for a current working example. :-) – sindrenm Mar 23 '17 at 9:53
2

You can do it with 2 lines :

expect(listFromPage).to.eventually.include.all.members(predefinedArray)
expect(predefinedArray).to.eventually.include.all.members(listFromPage)

With this, you'll check if both arrays contains the same values. But order does not matter.

  • I'm not sure If it works, as listFromPage is array of promises, and predefinedArray is array of values. I could though compare lengths of the arrays, but I wonder if there is a one-line solution. – Alissa Nov 16 '15 at 15:48
  • There is a one line solution using "have", as described in the other answer. – Jürgen Strobel Sep 26 '16 at 10:32
1

From the future, the way that worked for me, was to use .deepEqual which did the trick for me

assert.deepEqual(['name'], ['name'], 'this must be same to proceed');

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