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>>> [(x*y) for (x,y) in zip(range(3), (1,11,111))]
[0, 11, 222]                                             

Not like this

> data.frame(0:2,c(1,11,111))
  X0.2 c.1..11..111.
1    0             1
2    1            11
3    2           111
> data.frame(0:2,c(1,11,111))->a
> a[1]*a[2]
  X0.2
1    0
2   11
3  222

but something like this

lapply(a, function(x)
{   ...how can I access here the parameters of x? 
    (not using x[1] or x[2])
}
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So you want to supply a function and a list, and apply the function to elements of the list using pattern-matching? –  Chris Taylor Jan 5 '12 at 16:40

3 Answers 3

up vote 9 down vote accepted

For the general pattern, perhaps

Map(`*`, 0:2, c(1, 11, 111))

or

unlist(Map(`*`, 0:2, c(1, 11, 111)))

or more explicitly

Map(function(x, y) x*y, 0:2, c(1, 11, 111))

(I like Map better than Steve's mapply because it does not simplify by default, is shorter to type, and plays well with the other functional functions documented on its man page, e.g., Reduce, Filter, and Negate).

An earlier answer for the particular question, since removed, was just 0:2 * c(1, 11, 111), which would be much more efficient.

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Good point re: Map's advantages over mapply. –  Steve Lianoglou Jan 5 '12 at 17:25
    
+1 +1 +1 like this...rather than messing up with v/l/apply, Reduce and Filter?!? Appetit... –  hhh Jan 6 '12 at 3:26
    
I didn't even know Map/Reduce existed. That provides a very clean,well known syntax for non-R users. –  zach Jun 4 '14 at 19:45

Josh's answer is spot on, but if you want some generalization of the thing that zip is doing for you in the Python context, have a look at mapply, which "apply"s over several "things" at once, and applies a function on the ith element from each "thing", eg:

x1 <- 0:2
x2 <- c(1, 11, 111)
mapply(function(x, y) x*y, x1, x2)
## [1]   0  11 222

and:

x3 <- c(10, 20, 30)
mapply(function(x, y, z) x * y + z, x1, x2, x3)
## [1]  10  31 252

Update: See Martin's answer, too: he makes a good point about if you think you want mapply, you might really want the to use the convenience of Map instead.

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+1 Ah, it would have helped if I knew what zip did. The OP is probably looking for mapply and/or Map. Though do.call would be faster in this example, since binary functions are vectorized. –  Joshua Ulrich Jan 5 '12 at 17:09
    
You rock! +1 +1 +1 –  hhh Jan 6 '12 at 3:25

Your question isn't clear to me. lapply loops over the elements of a list. So your anonymous function would be applied to each column of a, but your example seems to indicate you want to apply a binary function to the two columns.

I'm guessing you want something like:

do.call("*",a)
# [1]   0  11 222
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