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I am trying to use apply() to fill in an additional column in a dataframe and by calling a function I created with each row of the data frame.

The dataframe is called Hit.Data has 2 columns Zip.Code and Hits. Here are a few rows

Zip.Code , Hits
97222    , 20
10100    , 35
87700    , 23

The apply code is the following:

Hit.Data$Zone = apply(Hit.Data, 1, function(x) lookupZone("89000", x["Zip.Code"]))

The lookupZone() function is the following:

lookupZone <- function(sourceZip, destZip){
  sourceKey = substr(sourceZip, 1, 3)
  destKey = substr(destZips, 1, 3)
  return(zipToZipZoneMap[[sourceKey]][[destKey]])
}

All the lookupZone() function does is take the 2 strings, truncates to the required characters and looks up the values. What happens when I run this code though is that R assigns a list to Hit.Data$Zone instead of filling in data row by row.

> typeof(Hit.Data$Zone)
[1] "list

What baffles me is that when I use apply and just tell it to put a number in it works correctly:

> Hit.Data$Zone = apply(Hit.Data, 1, function(x) 2)
> typeof(Hit.Data$Zone)
[1] "double"

I know R has a lot of strange behavior around dropping dimensions of matrices and doing odd things with lists but this looks like it should be pretty straightforward. What am I missing? I feel like there is something fundamental about R I am fighting, and so far it is winning.

share|improve this question
    
what is zipToZipZoneMap and what is the class of zipToZipZoneMap[[sourceKey]][[destKey]] – Ananta Feb 10 '14 at 19:14
    
It's hard to say exactly, because we don't have zipToZipZoneMap. But I feel pretty strongly that you shouldn't even be using apply to do this at all. – joran Feb 10 '14 at 19:15
    
zipToZipZoneMap is a hashmap from the hash package. The class of zipToZipZoneMap[[sourceKey]][[destKey]] is [1] "character" – Matthew Crews Feb 10 '14 at 19:21
up vote 0 down vote accepted

Your problem is that you are occasionally looking up non-existing entries in your hashmap, which causes hash to silently return NULL. Consider:

> hash("890", hash("972"=3, "101"=3, "877"=3))[["890"]][["101"]]
[1] 3
> hash("890", hash("972"=3, "101"=3, "877"=3))[["890"]][["100"]]
NULL

If apply encounters any NULL values, then it can't coerce the result to a vector, so it will return a list. Same will happen with sapply.

You have to ensure that all possible combinations of the first three zip code digits in your data are present in your hash, or you need logic in your code to return NA instead of NULL for missing entries.

share|improve this answer
    
Wow! Thank you so much. I was pulling my hair out over this. R is useful but I seem to find all of the strange, maddening corners of it. I was not aware that R would convert the result to a list if some of the values were NULL. Very useful information. – Matthew Crews Feb 10 '14 at 19:43
    
@MatthewCrews, one way to try to debug this issue is to produce the smallest possible data set that has the problem, and then add a browser() statement inside the function apply uses to see what's going on. – BrodieG Feb 10 '14 at 19:45
    
thank you for the tip. I'm still learning how to debug R and the silent failures can really stump me. – Matthew Crews Feb 10 '14 at 19:48

As others have said, it's hard to diagnose without knowing what ZiptoZipZoneMap(...) is doing, but you could try this:

Hit.Data$Zone <- sapply(Hit.Data$Zip.Code, function(x) lookupZone("89000", x))
share|improve this answer
    
sapply() still returns a list – Matthew Crews Feb 10 '14 at 19:29
    
Then show us the code for zipToZipZoneMap. – jlhoward Feb 10 '14 at 19:30

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