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Given an R list, I wish to find the index of a given list entry. For example, for entry "36", I want my output to be "2". Also, how could I do such queries in parallel using lapply?

list

$1 [1] "7" "12" "26" "29"

$2 [1] "11" "36"

$3 [1] "20" "49"

$4 [1] "39" "41"

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Maybe something like lapply(component_list, function(x) any(match(x, "36"))) gets you close. –  Tyler Rinker Apr 2 '12 at 18:01
    
Your example is ambiguous because "36" is the second list element and second element in the second list element. –  Joshua Ulrich Apr 2 '12 at 18:48
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2 Answers

up vote 3 down vote accepted

Here's a one-liner that allows for the (likely?) possibility that more than one element of the list will contain the string for which you're searching:

## Some example data
ll <- list(1:4, 5:6, 7:12, 1:12)
ll <- lapply(ll, as.character)

seq_along(ll)[sapply(ll, FUN=function(X) "12" %in% X)]
# [1] 3 4
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Thanks so much! R can be a bit of a headache at the beginning. –  SAT Apr 2 '12 at 18:08
    
It's like learning any language (natural or otherwise). But if you stick with it, you may get hooked by the satisfaction of being able to say what you mean. To learn a bit more about how I constructed the above, try breaking apart the last line. (i.e. do: seq_along(ll); "12" %in% c("11", "12"); "12" %in% c("1", "2"); 1:4[c(FALSE, TRUE, FALSE, TRUE), etc.) Best of luck! –  Josh O'Brien Apr 2 '12 at 18:26
    
@Josh: shouldn't your example return [1] 3 4 ? –  Carl Witthoft Apr 2 '12 at 18:27
    
@CarlWitthoft -- Yep, thanks. (I did a quick code edit early on but apparently neglected to change the results bit.) Fixed it now. Also, do feel free to edit things like that yourself (at least in any of my posts)! –  Josh O'Brien Apr 2 '12 at 18:33
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You could first turn your list into a data.frame that maps values to their corresponding index in the list:

ll <- list(c("7", "12", "26", "29"),
           c("11", "36"),
           c("20", "49"),
           c("39", "41"))

df <- data.frame(value = unlist(ll),
                 index = rep(seq_along(ll), lapply(ll, length)))
df
#    value index
# 1      7     1
# 2     12     1
# 3     26     1
# 4     29     1
# 5     11     2
# 6     36     2
# 7     20     3
# 8     49     3
# 9     39     4
# 10    41     4

Then, write a function using matchfor finding the index of the first occurrence of a given value:

find.idx <- function(val)df$index[match(val, df$value)]

You can call this function on a single value, or many at a time since match is vectorized:

find.idx("36")
# [1] 2
find.idx(c("36", "41", "99"))
# [1]  2  4 NA

Of course, you can also run it through lapply, especially if you plan to run it in parallel:

lapply(c("36", "41", "99"), find.idx)
# [[1]]
# [1] 2
# 
# [[2]]
# [1] 4
# 
# [[3]]
# [1] NA

For running this last bit in parallel, there are many, many options. I would recommend you weigh your options by searching through http://cran.r-project.org/web/views/HighPerformanceComputing.html.

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