1

Currently in Ramda if I want to deep merge (right) multiple objects I....

var a = _.mergeDeepRight( { one: 1 }, { two: { three: 3 } } )
var b = _.mergeDeepRight( a, { three: { four: 4 } } )
var c = _.mergeDeepRight( b, { four: { five: 5 } } )

// c === { one:1, two: { three: 3 }, three: { four: 4 }, four: { five: 5 } }

If I use _.mergeAll (i.e. _.mergeAll( a, b, c )) it returns { one:1, two: { three:3 } } as _.mergeAll is not deep

Is there a more tidy way of deep merging (right) multiple objects? Something like...

_.mergeDeepRightAll( a, b, c )
4

reduce might be a good call here, as we're transforming a series of items into one.

If we change the input to

var a = mergeDeepRight( { one: 1 }, { two: { three: 3 } } )
var b = { three: { four: 4 } }
var c = { four: { five: 5 } }

We can do

const mergeDeepAll = reduce(mergeDeepRight, {})

mergeDeepAll([a, b, c])

// -> {"four": {"five": 5}, "one": 1, "three": {"four": 4}, "two": {"three": 3}}

And if you wanted to provide the arguments not as an array, you can unapply it, although an array is more in-line with R.mergeAll's signature

const mergeDeepAll = unapply(reduce(mergeDeepRight, {}))

mergeDeepAll(a, b, c)

I'll note that the examples don't actually have any conflicting keys, so a straight up R.mergeAll would work here. Neither of these output in the exact order you mentioned however.

  • About the output order: object property order is only guaranteed ES 2015+. OP should be wary of relying on it anyway. – Jared Smith Oct 4 '17 at 11:38
  • Note that the key order change is mostly due to some output format (say console.log or JSON.stringify.) Yes, were no guarantees before es6, but the engines have long been mostly consistent. So keys(mergeDeepAll([a, b, c])); //=> ["one", "two", "three", "four"]. – Scott Sauyet Oct 4 '17 at 13:37

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