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I want to check whether a vector y contains another vector x

y <- c(0,0,0,NA,NA,0)
x <- c(0,0,0,0)

In this case, it should give me FALSE because there is no sequence of four NULL in y. But if we take a look at vector y2, the result should be TRUE.

y2 <- c(0,0,NA,0,0,0,0)

EDIT:

I tried to use %in% but it seems to only work for elements of vectors, not for whole vectors. The solution doesn't have to be applicable to more general problems. It would be nice if it works for this particular case.

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2  
-1 What have you tried? See How do I ask a good question? and the StackOverflow question checklist. –  Joshua Ulrich Sep 10 '13 at 13:18
    
I don't see why this matters. All I tried didn't give me the expected result. Therefore I'm asking here. What is missing in my question? –  beginneR Sep 10 '13 at 13:26
5  
Did you look at either of the links in my previous comment? They discuss why it matters. Also, if you don't show what you tried, it looks like you're simply asking others to do your work for you. –  Joshua Ulrich Sep 10 '13 at 13:37
    
How general do you want this to be? Because there are probably more efficient answers if the data is only 0s and NAs, or if it is just integers, or if you want exact floating matches. –  Spacedman Sep 10 '13 at 13:45
    
I searched on Google for various search terms regarding my question but all I found was how to use the %in% function which I already know and with which I tried to solve my problem before. I don't want others to do my work, I only wanted to ask if there might be a function or a simple trick I missed. Till now I Thought that providing a working example and describing the problem accurately is enough for a "good" question. Thus, thank you for the links and your comment –  beginneR Sep 10 '13 at 13:47

6 Answers 6

up vote 5 down vote accepted

You can use a combination of grepl and paste. Here you need to collapse each vector into one character using the collapse argument in paste.

> grepl(paste(x,collapse=";"),paste(y2,collapse=";"))
[1] TRUE
> grepl(paste(x,collapse=";"),paste(y,collapse=";"))
[1] FALSE

> grepl(paste(c(123),collapse=";"),paste(c(12,3),collapse=";"))
[1] FALSE
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Now it works fine for numeric vectors. There may be some rare conflicts with characters, though. –  Ferdinand.kraft Sep 10 '13 at 13:33
    
This is exactly why I asked if it was more than just 0s and NAs and you beat me to the answer! :) –  Spacedman Sep 10 '13 at 14:00
    
@dayne Upvoted. I've ended up with the same solution when trying to solve this. You do not need to use ";", collapse='' is enough. –  Tomas Greif Sep 10 '13 at 14:05
    
@TomasGreif As Ferdinand pointed out in an earlier, now deleted, comment, try grepl(paste(c(123),collapse=''),paste(c(12,3),collapse='')) –  dayne Sep 10 '13 at 14:15
    
@dayne Yes, but you have only 0s and NAs as input, see comment by OP. –  Tomas Greif Sep 10 '13 at 14:21

Just for those who might wonder, a time test of the answers.

findit1<-function(x,y) any(apply(embed(y,length(y)-length(x)+1),2,identical,x))
findit2<-function(x,y) grepl(paste(x,collapse=";"),paste(y,collapse=";"))

x<-c(0,1,1,0,0,0,1,0,1)
y<-sample(c(0,1),1e5,replace=TRUE)

Rgames> microbenchmark(findit1(x,y),findit2(x,y))
Unit: milliseconds
          expr       min       lq   median       uq      max neval
 findit1(x, y) 403.79291 449.9028 457.8320 466.4996 603.6573   100
 findit2(x, y)  99.09317 100.7774 101.4513 102.1728 119.8970   100

EDIT: using eddi's rle answer,

Rgames> findit3<-function(x,y) sum(length(x) <= rle(y)$lengths[rle(y)$values %in% 0]) 
Rgames> x<-c(0,0,0,0,0)
Rgames> microbenchmark(findit1(x,y),findit2(x,y),findit3(x,y))
Unit: milliseconds
          expr       min        lq   median        uq       max neval
 findit1(x, y) 340.63570 383.39450 414.6791 456.38786 532.98017   100
 findit2(x, y)  99.72606 101.11308 101.9399 103.20869 117.91149   100
 findit3(x, y)  23.39226  24.39826  31.8478  35.10592  53.15408   100

But in the general case of any sequence in x I doubt there's a way to massage rle or seqle to do this. I'll have to go play with things for a while. :-)

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For this particular case of 0's only in x, just use rle:

sum(length(x) <= rle(y2)$lengths[rle(y2)$values %in% 0]) > 0
#[1] TRUE
sum(length(x) <= rle(y)$lengths[rle(y)$values %in% 0]) > 0
#[1] FALSE
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1  
+1 There is base function for everything in R, but it takes years to remember them all :) –  Tomas Greif Sep 10 '13 at 15:10

Use this:

any(apply(embed(y,length(y)-length(x)+1),2,identical,x))
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I have to actually go to work now, but I am excited to look at this later. Never would have thought to approach it like this. Love this site! –  dayne Sep 10 '13 at 13:30

The OP didn't ask for this, but here's a way to find where the instances of x occur. I used "9" as my tagging character on the assumption that "9" never shows up in y. Clearly one could choose some other character.

 > bar<-gsub(paste(x,collapse=""),'9',paste(y,collapse=""))
 > rab<-as.numeric(unlist(strsplit(bar,'')))
 > rle(rab==9)
Run Length Encoding
  lengths: int [1:3123] 49 1 49 1 20 1 6 1 78 1 ...
  values : logi [1:3123] FALSE TRUE FALSE TRUE FALSE TRUE ...
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Yet another option:

length(x) == max(nchar(strsplit(paste(y,collapse=''),"NA")[[1]]))
length(x) == max(nchar(strsplit(paste(y2,collapse=''),"NA")[[1]]))

I also think there should be smarter way, e.g. utilize somehow cumsum (and make it reset to 0 at every occurence of NA and then get the maximum and compare it to the length of x). After some Internet search I have:

length(x) == max(sapply(split(y, replace(cumsum(is.na(y)), is.na(y), -1))[-1],length))
length(x) == max(sapply(split(y2, replace(cumsum(is.na(y2)), is.na(y2), -1))[-1],length))

Or maybe to start with which(is.na(x)) and then somehow calculate the maximum difference between elements in result.

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