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Given a date I can access the appropriate element in a zoo vector. For example:

z[as.POSIXct(1213708500, origin="1970-01-01")]

this returns

2008-06-17 14:15:00 
           -8.28123 

I would like to get a vector of 30 consecutive elements (ending with the element above).

How do I do that (efficiently) without knowing the time stamp of the starting element?

I know that I can do this with the window function, but it requires a start time and an end time.

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Are you trying to do rolling calculations? If that is the case see ?rollapply –  G. Grothendieck Feb 4 '12 at 23:39
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1 Answer

up vote 4 down vote accepted

Use something like

ind <- which(index(z)==as.POSIXct(1213708500, origin="1970-01-01")) + seq(-29,0)

followed by

z[ind]

where the which() gives you the index of the match, from which you can then pick the thirty consecutive elements by normal indexing.

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Thanks a lot! Can you please tell me, if instead of the timestamp (1213708500) I have a vector of timestamps, how can I return a matrix into ind? –  Mike Feb 4 '12 at 22:44
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Hm, that may "just" be normal vector valued indexing problem. Try looking at help(match) / help("%in%"). Also, I really like the xts package for its indexing where you say something like x["2010-01::2010-06"] to get six months, and idem for hour/mins/secs/... etc. Ultimately, that is better because in what we discuss here, you do depend on equality being true somewhere. That said min(which(... >= ...)) would work too I suppose. –  Dirk Eddelbuettel Feb 4 '12 at 22:59
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