There's my cue to drag in the lambda calculus: \g = (\a\x ...) \f = (g a) Now f ... | Hacker News

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fexl on July 5, 2011 | parent | context | favorite | on: The Pi Manifesto

There's my cue to drag in the lambda calculus:

  \g = (\a\x ...)
  \f = (g a)

Now f is is a function of x.

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