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Is there a way to create a "dictionary" in R, such that it has pairs? Something to the effect of:

x=dictionary(c("Hi","Why","water") , c(1,5,4))
x["Why"]=5

I'm asking this because I am actually looking for a two categorial variables function.

So that if x=dictionary(c("a","b"),c(5,2))

     x  val
1    a  5 
2    b  2 

I want to compute x1^2+x2 on all combinations of x keys

     x1 x2 val1  val2  x1^2+x2
1    a  a   5     5      30
2    b  a   2     5      9
3    a  b   5     2      27
4    b  b   2     2      6

And then I want to be able to retrieve the result using x1 and x2. Something to the effect of: get_result["b","a"] = 9

what is the best, efficient way to do this?

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2 Answers 2

See my answer to a very recent question. In essence, you use environments for this type of functionality.

For the higher dimensional case, you may be better off using an array (twodimensional) if you want the easy syntax for retrieving the result (you can name the rows and columns). As an alternative,you can paste together the two keys with a separator that doesn't occur in them, and then use that as a unique identifier.

To be specific, something like this:

tmp<-data.frame(x=c("a", "b"), val=c(5,2))
tmp2<-outer(seq(nrow(tmp)), seq(nrow(tmp)), function(lhs, rhs){tmp$val[lhs] + tmp$val[rhs]})
dimnames(tmp2)<-list(tmp$x, tmp$x)
tmp2
tmp2["a", "b"]
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In that vectors, matrices, lists, etc. behave as "dictionaries" in R, you can do something like the following:

> (x <- structure(c(5,2),names=c("a","b"))) ## "dictionary"
a b 
5 2 
> (result <- outer(x,x,function(x1,x2) x1^2+x2))
   a  b
a 30 27
b  9  6
> result["b","a"]
[1] 9

If you wanted a table as you've shown in your example, just reshape your array...

> library(reshape)
> (dfr <- melt(result,varnames=c("x1","x2")))
  x1 x2 value
1  a  a    30
2  b  a     9
3  a  b    27
4  b  b     6
> transform(dfr,val1=x[x1],val2=x[x2])
  x1 x2 value val1 val2
1  a  a    30    5    5
2  b  a     9    2    5
3  a  b    27    5    2
4  b  b     6    2    2
share|improve this answer
    
Parentheses around the assignment expressions are there just to print the results. –  crippledlambda Oct 19 '11 at 10:50

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