22
library(dplyr)
cust_time<-data.frame(cid=c("c1","c2","c3","c4","c5"),ts=c(2,7,11,13,17))
#I want to do a cross join on self, preferable in dplyr else base package is Ok
#But w/o renaming header names
#Currently I have to create a duplicate cust_time to do this.
cust_time.1<-rename(cust_time,cid1=cid,ts1=ts)
merge(cust_time,cust_time.1,by=NULL)

#Later I will want to do cross join within the grouped region
cust_time <-mutate(cust_time,ts.bucket=ts%/%10)
#If using duplicate tables, not sure, how to do the below
#group_by(cust_time,ts.bucket) %>%
#do cross join within this bucket

Basically, I want to do a cross self-join on a table but since I cant a dplyr solution, I used the base package. But it requires me to rename all the columns. However, I later want to be able do a cross-join at a grouped level and this is where I am stumbling.
Any help appreciated.

14
  • there is no ts.bucket in cust_time
    – mtoto
    Commented Feb 15, 2016 at 10:23
  • You could try do.call(data.table::CJ, cust_time) Commented Feb 15, 2016 at 10:30
  • @DavidArenburg, that's just expand.grid(cust_time), isn't it?
    – talat
    Commented Feb 15, 2016 at 10:33
  • @docendodiscimus yes, but gazillion times faster... or tidyr::complete(cust_time, cid, ts) probably if we already into it... Commented Feb 15, 2016 at 10:36
  • @DavidArenburg, I know. What I mean is, it doesn't correspond to the output that OP creates with his merge
    – talat
    Commented Feb 15, 2016 at 10:36

4 Answers 4

31

As of dplyr version 1.0, you can do a cross join by specifying by = character():

cust_time %>% full_join(cust_time, by = character())
1
  • 1
    This is the best solution! If you have some other steps before full_join you use do ... %>% full_join(., ., by = character()).
    – yuk
    Commented Jul 15, 2022 at 19:04
18

You just need a dummy column to join on:

cust_time$k <- 1
cust_time %>% 
  inner_join(cust_time, by='k') %>%
  select(-k)

Or if you don't want to modify your original dataframe:

cust_time %>%
  mutate(k = 1) %>%
  replicate(2, ., simplify=FALSE) %>%
  Reduce(function(a, b) inner_join(a, b, by='k'), .) %>%
  select(-k)
0
5

Here's a solution that is completely dplyr-compatible. It shares many of the same ideas as attitude_stool's solution but has the advantage of only being one line.

require(magrittr)  # for the %<>% operator

# one line:
(cust_time %<>% mutate(foo = 1)) %>% 
        full_join(cust_time, by = 'foo') %>% 
        select(-foo)
1
  • 2
    Without modification of the original data: cust_time %>% mutate(foo=1) %>% full_join(.,., by="foo") %>% select(-foo)
    – Marek
    Commented Mar 9, 2020 at 14:46
1

With dplyr 1.1.0, you can now use cross_join:

cross_join(cust_time, cust_time)

Using by = character() is deprecated under dplyr 1.1.0 and above:

Warning message: Using by = character() to perform a cross join was deprecated in dplyr 1.1.0. ℹ Please use cross_join() instead.

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