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I'm not understanding how to create a new 'lagged' column in a data.frame. My current data is collected at the end of the data. One program I need to send this to assumes it's collected first thing in the morning, so I need to lag column 2 by 1 row. The code I wrote just returns the same data.

How can I do this properly?

Thanks.

D8 = structure(list(Date = structure(c(14396, 14397, 14398, 14399, 
14400, 14403, 14404, 14405, 14406,
14407, 14410, 14411, 14412,  14413,
14414, 14417, 14418, 14419, 14420,
14421, 14424, 14425,  14426, 14427,
14428, 14431, 14432, 14433, 14434,
14435), class = "Date"), 
    PL8 = c(0, 0, 0, 0, 76, 0, -334, -974, -104, 356, 378, -1102, 
    -434, 266, -434, 444, 464, 0, 486, 406, -224, -214, 0, -4, 
    0, -188, 356, 322, -484, 436)), .Names = c("Date", "PL8"), row.names =
c(NA,  30L), class = "data.frame")


D8

D8[,3] = lag(D8[,2],k=-1)

D8
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1 Answer 1

up vote 6 down vote accepted

Try this:

transform(D8, PL8.lag = c(PL8[-1], NA))

It would be a bit easier if you used a time series class. In that case you could use lag:

library(zoo)
z <- read.zoo(D8)
lag(z, 0:1)

In the other direction we would have:

transform(D8, PL8.lag = c(NA, head(PL8, -1)))

and

lag(z, 0:-1)
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Thank you very much. The zoo method worked nicely. –  LGTrader Mar 19 '11 at 19:26
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