4

Is there a way to use the values assigned to the previous key in map, for eg:

def x = [
        a: someList.sum(),
        b: anotherList.sum(),
        c: someList.sum() / anotherList.sum()
]

I want the value of 'c' to be a/b, so is there a shortcut so that I don't have to recompute the sums while computing 'c'

  • def a = 1; def x = [a: a, b: a + 1]? – JB Nizet Apr 6 '16 at 20:54
  • that was obvious but not what I was looking for – Anand Sunderraman Apr 6 '16 at 20:54
  • 1
    Can you explain why you want this? I can't think of a reason apart from theoretical. – tim_yates Apr 6 '16 at 20:56
  • I second Tim. def x = [a: 1]; x.b = x.a + 1 can be used. – dmahapatro Apr 6 '16 at 20:59
  • ok I have rephrased the question based on comments – Anand Sunderraman Apr 6 '16 at 21:03
6

In order to use previously-added key/values to compute new key/values, you must be able to control the order in which the keys/values are added. I know that's obvious, but what may not be obvious is that Groovy Map declarations do not take order into account. For example, if you write this...

def x = [
        a: 8,
        b: 2,
        c: a / b
]

..., when evaluating the expression for the value of key c, Groovy will attempt to access a variable or property named a, which will fail because the variable/property does not exist. However, you can take advantage of that property lookup and do this:

def x = [:].with {
    a = 8
    b = 2
    c = a / b

    delegate
}

You start by creating an empty Map. Then, use with(Closure) to execute putAt() and get() against the Map. The example above is the equivalent to...

def x = [:].with {
    putAt('a', 8)
    putAt('b', 2)
    putAt('c', get('a') / get('b'))

    delegate
}

Finally, return the Map itself so that it's assigned to x.

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