1

I'm looking at reducers.

There is a nice example in the Tutor for counting words:

(0 | it + 1 | /\w+/ := S)

where S is some longer string with several words. The reducer returns the count of such words.

I was wondering how to capture the matched substring and use it in the accumulating expression, something like

("" | it + e | str e ... /\w+/ := S)

so that the result would be the concatenation of all matched substrings.

Any idea?

1

Yes, the capture syntax is with the <name:regex> notation:

("" | it + e | /<e:\w+>/ := S)

rascal>S  ="Jabberwocky by Lewis Carroll";
str: "Jabberwocky by Lewis Carroll"
rascal>("" | "<it>,<e>" | /<e:\w+>/ := S)[1..]
str: "Jabberwocky,by,Lewis,Carroll"

or use the for-template syntax instead of a reducer expression:

rascal>x = "<for (/<e:\w+>/ := S) {><e>;
>>>>>>>    '<}>";
str: "Jabberwocky;\nby;\nLewis;\nCarroll;\n"
rascal>import IO;
ok
rascal>println(x)
Jabberwocky;
by;
Lewis;
Carroll;

ok
rascal>
  • Great. Just a tiny extension: There is this idiom to loop over a list with <-. How would I extend the reducer to match all strings from a list, e.g. ("" | it + e | <e:\w+> ... <- L) where L would be a list of strings? – ThomasH Feb 7 at 10:16
  • 1
    Just like that. The syntax is "pattern <- generator" so you could have/regex/ <- myList and the regex would be tested against every element in order, and every match in every string would trigger a single loop iteration. – Jurgen Vinju Feb 7 at 11:06

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