1

I wish to concatenate every nth:nth(+jth) object in a list of objects I have. More specifically, I would like every two objects to be concatenated. A small sample of the list in question is below.

list("SRR1772151_1.fastq", "SRR1772151_2.fastq", "SRR1772152_1.fastq", 
    "SRR1772152_2.fastq", "SRR1772153_1.fastq", "SRR1772153_2.fastq")

I would like to make a new list from this which looks closer to this.

list(c("SRR1772151_1.fastq", "SRR1772151_2.fastq"), c("SRR1772152_1.fastq", 
"SRR1772152_2.fastq"), c("SRR1772153_1.fastq", "SRR1772153_2.fastq"
))

I have made the following attempt at doing this but my for loop has been unsuccessful.

for (i in seq(1,36, 2)) {
  for (j in 1:18) {
    unlist(List1[i:i+1]) -> List2[[j]]
  }
}

Any help or advice would be very appreciated.

  • 1
    i:i is i; i:i+1 is i+1, eventually you want i:(i+1) – jogo Jun 12 at 9:14
1

You could divide this into two problems -- split the list, e.g.,

elts = split(lst, 1:2)

and concatenate the elements

Map(c, elts[[1]], elts[[2]])

But I think it's better to follow 'tidy' data practices and to create a single vector with a grouping factor

df = data.frame(fastq = unlist(x), grp = 1:2, stringsAsFactors = FALSE)

or more discriptively

df = data.frame(
    fastq = unlist(lst),
    sample = factor(sub("_[12].fastq", "", unlist(lst))),
    stringsAsFactors = FALSE
)

It's better to work with tidy data because one can accomplish more knowing less, for instance notice that when working with lists you have to learn about split() and Map() and c(), whereas working with vectors and data.frames you don't!

  • 1
    Or Map(`c`, lst[c(TRUE, FALSE)], lst[c(FALSE, TRUE)]) – Ronak Shah Jun 12 at 9:12
  • Thank you for the responses. I found both Map functions most useful for this question. The df creation was useful but I wanted to keep my objects in a list format. – Krutik Jun 12 at 9:17
1

Here is one other attempt using dataframes. The output is a list.

library(tidyverse)

data.frame(X1 = unlist(my_list), stringsAsFactors = F) %>% 
  group_by(str_sub(X1,1,10)) %>% # assuming first 10 characters forms the string
  summarise(list_value=list(X1)) %>% 
  pull(list_value)
1

For the general case, you can create a vector of consecutive groups of size j with:

ceiling(seq_along(x) / j)

… and then use tapply() to concatenate all elements in those groups. Unlike using Map(), this will also work if the chunk size does not equally divide the length of the list.

x <- list("SRR1772151_1.fastq", "SRR1772151_2.fastq", "SRR1772152_1.fastq",
    "SRR1772152_2.fastq", "SRR1772153_1.fastq", "SRR1772153_2.fastq")

tapply(x, ceiling(seq_along(x) / 2), unlist)
#> $`1`
#> [1] "SRR1772151_1.fastq" "SRR1772151_2.fastq"
#> 
#> $`2`
#> [1] "SRR1772152_1.fastq" "SRR1772152_2.fastq"
#> 
#> $`3`
#> [1] "SRR1772153_1.fastq" "SRR1772153_2.fastq"
tapply(x, ceiling(seq_along(x) / 4), unlist)
#> $`1`
#> [1] "SRR1772151_1.fastq" "SRR1772151_2.fastq" "SRR1772152_1.fastq"
#> [4] "SRR1772152_2.fastq"
#> 
#> $`2`
#> [1] "SRR1772153_1.fastq" "SRR1772153_2.fastq"

Created on 2019-06-12 by the reprex package (v0.2.1)

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