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I would like to select a subset of a vector based on the value in the previous row. Is this something that is possible without a loop? More specifically, using time series notation (I made up the 2nd line), I am looking to get y

x = c(-2,3,-1,2,8,)
y = x(t)[x(t)>0, x(t-1)<0, x(t)-x(t-1)>2]
y  
[1] 3

I don't really need a solution for y as I can always loop it. But would be very interested to know if there is a shift operator or something similar for logical vector indexing

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3 Answers

I am not sure what you are looking for. But for this simple purpose, you can use:

x <- c(-2,3,-1,2,8)
x1 <- x[-length(x)]
z <- x[-1]
y <- z[z>0 & x1<0 & (z-x1)>2]
y

For operating on many 'x(t-i)', I don't know an elegant way, but you could try to wrap the uggly code in a function and then just call fts(x)

fts <- function(x){
  xmat <- sapply(1:10,function(i){
    x[-1:i]

  })
......
}

Also, for 'x(t)-x(t-1)', you can use diff(x); for x(t)-x(t-i) you can use diff(x,lag=i)

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Thank you very much for the reply and it works well. But I was hoping to see if there was a way to do it directly on the x vector itself. Because in this case, if I needed to include x(t-2) x(t-3)... it would mean defining many other vectors and the code becomes very ugly –  hjw Jul 16 '13 at 11:15
    
I guess you can set up a function to wrap up the ugly code and then call the function on your vector. –  Zhenglei Jul 16 '13 at 12:15
    
duh! Just realised that x[-1] is a better way of writing x[2:length(x)] as I did in my answer, ditto x[-length(x)] for x[1:(length(x)-1)]. –  TooTone Jul 18 '13 at 14:36
    
@hjw I think this is either / or. You either have a vectorized approach, which involves multiple vectors, or you have a function that you call in a loop, on a single vector. –  TooTone Jul 18 '13 at 14:38
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Not much different than the other answer, but a bit more compact:

x[x > 0 & 
    c(FALSE, head(x,-1) < 0) & 
    c(FALSE, diff(x) > 2)]
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up vote 0 down vote accepted

This is what I found to accomplish what I would have liked

x = c(-2,3,-1,2,8)
x = zoo(x)
y = x[x>0 & lag(x,-1)<0 & (x-lag(x,-1))>2]
y
2 4 
3 2 

It very elegantly handles lag(x,-i) without you having to resize your vector

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