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Consider the following data in long format

library(plyr)
library(reshape2)

x <- seq(0,2*pi,length=20)
ll <- ll2 <- list(a = data.frame(x=x, y=sin(x)),
                  b = data.frame(x=x, y=cos(x)))

m <- melt(ll, id="x")
m2 <- m[sample(nrow(m)),]

head(m)
#         x variable     value L1
# 0.0000000        y 0.0000000  a
# 0.3306940        y 0.3246995  a
# 0.6613879        y 0.6142127  a
# 0.9920819        y 0.8371665  a
# 1.3227759        y 0.9694003  a
# 1.6534698        y 0.9965845  a

m$L1 is nicely ordered, but m2$L1 is all over the place. Now, starting with this kind of data, I want to take the difference value[L1 == "b"] - value[L1 == "a"] for each value of x. The following lines illustrate the problem of using diff when m2$L1 is not ordered: the sign can be wrong. Is there a trick I could use to achieve the result of the last two ddply calls, but more elegantly?

res <- ddply(m, "x", summarize, difference = diff(value))
res <- ddply(m2, "x", summarize, difference = diff(value)) # fails, because L1 not ordered
res <- ddply(m2[order(m2$L1, m2$x), ], "x", summarize, difference = diff(value)) 
res <- ddply(m2, "x", function(d)
             data.frame(difference = d$value[d$L1 == "b"] - d$value[d$L1 == "a"]))

plot(res) # visual check of the result
lines(x, cos(x) - sin(x) , col="red")
share|improve this question
up vote 3 down vote accepted

Doesn't dcast do what you want?

transform( 
  dcast( m2, x + variable ~ L1 ), 
  difference = b - a 
)
share|improve this answer
    
yes, it's probably the best way. Unfortunately I almost never get the formula right.. – baptiste Jan 26 '12 at 19:36

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