I have columns in @columns:

my @columns =('column1', 'column2', 'column3');

and I have separators in @separators:

my @separators = (',', '|');

I want to insert the separators between columns, one by one:

column1,column2|column

my solution is:

(@columns »~» (|@separators,"")).join("")

Here I have three columns and two separators, and how about insert N-1 separators between N columns?

  • You could try say ((@columns Z @separators), @columns[*-1]).flat.join("") – Håkon Hægland Jul 26 at 16:07
  • @HåkonHægland Thanks, have fixed the typo ^_^ – chenyf Jul 26 at 16:14
  • Do mean the case that N is different from @columns.elems? – Håkon Hægland Jul 26 at 16:18
  • @HåkonHægland N is equal to @columns.elems, also equal to @separators.elems +1 – chenyf Jul 26 at 16:29
  • But doesn't your proposed solution already work fine for that case? – Håkon Hægland Jul 26 at 16:38
up vote 8 down vote accepted

Assuming that @separators has the right number of values, you could use roundrobin.

roundrobin( @columns, @separators ).flat.join()

So this should work for a any length of @columns or @separators :

First we use the >>,>> hyper operator to make a list of lists.

(@columns >>,>> @separators)

Which gives :

[("column1", ","), ("column2", "|"), ("column3", ",")]

Then we flatten this into a single list using a slip.

(@columns >>,>> @separators).map( |* )

Which gives:

("column1", ",", "column2", "|", "column3", ",").Seq

Then we get the array of all but the last value :

(@columns >>,>> @separators).map(|*).head(*-1)

For :

("column1", ",", "column2", "|", "column3")

And finally join it with nothing :

(@columns >>,>> @separators).map(|*).head(*-1).join("")

Final result :

column1,column2|column3

Changing the number of columns or separators will not make a difference.

  • 1
    I think [^(*-1)] would be clearer if written as .head(*-1) – Brad Gilbert Jul 26 at 19:19
  • 1
    Good point. Fixed it. – Scimon Jul 27 at 8:04
  • The explanation is vary clear! – chenyf Jul 28 at 0:52

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