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I have a list like this

list <- structure(list(`1` = structure(c(274L, 173L), .Dim = 2L, .Dimnames = structure(list(
    c("2004", "2005")), .Names = ""), class = "table"), `2` = structure(73L, .Dim = 1L, .Dimnames = structure(list(
    "2005"), .Names = ""), class = "table"), `3` = structure(c(334L, 
365L, 366L, 365L, 365L, 365L, 366L, 365L, 287L), .Dim = 9L, .Dimnames = structure(list(
    c("1990", "1991", "1992", "1993", "1994", "1995", "1996", 
    "1997", "1998")), .Names = ""), class = "table"), `4` = structure(139L, .Dim = 1L, .Dimnames = structure(list(
    "2001"), .Names = ""), class = "table"), `5` = structure(71L, .Dim = 1L, .Dimnames = structure(list(
    "2009"), .Names = ""), class = "table"), `6` = structure(77L, .Dim = 1L, .Dimnames = structure(list(
    "1997"), .Names = ""), class = "table")), .Names = c("1", 
"2", "3", "4", "5", "6"))

The first level of this list is a rising number. In the second level we have tables with years as column-names.

I want to build a sum of all elements of the second level where the column name is 2005. How would I do this?

Thank you!

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2 Answers 2

up vote 3 down vote accepted

You can use a combination of sapply and [.

> sum(sapply(list, `[`, "2005"), na.rm=TRUE)
[1] 246
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This will do the trick

get2005 <- function(x){
  x[names(x) %in% 2005]
}

sum(unlist(lapply(list, get2005)))
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