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I'm currently using the following method to convert a mts dataset to a data frame with time indexes as columns. Is there a more elegant way to do this?

z <- ts(matrix(rnorm(300), 100, 3), start=c(1961, 1), frequency=12)
YM<-cbind(Year=as.numeric(floor(time(z))),Month=as.numeric(cycle(z)))
z<-cbind(as.data.frame(YM),as.data.frame(z))

str(z)
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3 Answers

up vote 2 down vote accepted

Try this:

data.frame(Year = c(floor(time(z) + .01)), Month = c(cycle(z)), z)

or

as.data.frame(cbind(Year = floor(time(z) + .01), Month = cycle(z), z))
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This solution works great, except a few cases where it yielded a very vexing bug. I suggest using the following function to make absolutley sure year is being calculated correctly. as.data.frame(cbind(Year = trunc(round(time(z),1))), Month = cycle(z), z)) –  Zach Feb 14 '11 at 20:23
    
In that case add a small number to avoid floating point problems. I have edited the solution to show that. –  G. Grothendieck Feb 14 '11 at 20:32
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You can extract the index from the ts with index() (from zoo package)

zindex <- index(z)
zdf <- data.frame(Year = trunc(zindex), Month = (zindex - trunc(zindex)) * 12, z)

Or generate a sequence of dates with

Year = rep(1961:1969, each = 12)[1:100]
Month = rep(1:12, times = 9)[1:100]
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I thought there was a function to do x - trunc(x) but I'm drawing a blank at the moment... –  J. Winchester Feb 11 '11 at 20:31
    
index() is not a base function, so you should specify that it's in the zoo package. –  Joshua Ulrich Feb 11 '11 at 20:37
    
Thanks, added that. –  J. Winchester Feb 11 '11 at 20:47
    
Whats the difference between index() in zoo and time() in base? –  Zach Feb 11 '11 at 20:59
    
@Zach: Good question. time is in base and there is a zoo::time, which simply calls index. –  Joshua Ulrich Feb 11 '11 at 22:26
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A similar solution to @jonw's, but using xts:

x <- as.xts(z)
d <- data.frame(Year=.indexyear(x)+1900, Month=.indexmon(x)+1, coredata(x))
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