[R] Character (1a, 1b) to numeric
William Michels
wjm1 @end|ng |rom c@@@co|umb|@@edu
Sat Jul 11 08:25:03 CEST 2020
Hello Jean-Louis,
Noting the subject line of your post I thought the first answer would
have been encoding histology stages as factors, and "unclass-ing" them
to obtain integers that then can be mathematically manipulated. You
can get a lot of work done with all the commands listed on the
"factor" help page:
?factor
samples <- 1:36
values <- runif(length(samples), min=1, max=length(samples))
hist <- rep(c("1", "1a", "1b", "1c", "2", "2a", "2b", "2c"), times=1:8)
data1 <- data.frame("samples" = samples, "values" = values, "hist" = hist )
(data1$hist <- factor(data1$hist, levels=c("1", "1a", "1b", "1c", "2",
"2a", "2b", "2c")) )
unclass(data1$hist)
library(RColorBrewer); pal_1 <- brewer.pal(8, "Pastel2")
barplot(data1$value, beside=T, col=pal_1[data1$hist])
plot(data1$hist, data1$value, col=pal_1)
pal_2 <- brewer.pal(8, "Dark2")
plot(unclass(data1$hist)/4, data1$value, pch=19, col=pal_2[data1$hist] )
group <- c(rep(0,10),rep(1,26)); data1$group <- group
library(lattice); dotplot(hist ~ values | group, data=data1, xlim=c(0,36) )
HTH, Bill.
W. Michels, Ph.D.
On Fri, Jul 10, 2020 at 1:41 PM Jean-Louis Abitbol <abitbol using sent.com> wrote:
>
> Many thanks to all. This help-list is wonderful.
>
> I have used Rich Heiberger solution using match and found something to learn in each answer.
>
> off topic, I also enjoyed very much his 2008 paper on the graphical presentation of safety data....
>
> Best wishes.
>
>
> On Fri, Jul 10, 2020, at 10:02 PM, Fox, John wrote:
> > Hi,
> >
> > We've had several solutions, and I was curious about their relative
> > efficiency. Here's a test with a moderately large data vector:
> >
> > > library("microbenchmark")
> > > set.seed(123) # for reproducibility
> > > x <- sample(xc, 1e4, replace=TRUE) # "data"
> > > microbenchmark(John = John <- xn[x],
> > + Rich = Rich <- xn[match(x, xc)],
> > + Jeff = Jeff <- {
> > + n <- as.integer( sub( "[a-i]$", "", x ) )
> > + d <- match( sub( "^\\d+", "", x ), letters[1:9] )
> > + d[ is.na( d ) ] <- 0
> > + n + d / 10
> > + },
> > + David = David <- as.numeric(gsub("a", ".3",
> > + gsub("b", ".5",
> > + gsub("c", ".7", x)))),
> > + times=1000L
> > + )
> > Unit: microseconds
> > expr min lq mean median uq max neval cld
> > John 228.816 345.371 513.5614 503.5965 533.0635 10829.08 1000 a
> > Rich 217.395 343.035 534.2074 489.0075 518.3260 15388.96 1000 a
> > Jeff 10325.471 13070.737 15387.2545 15397.9790 17204.0115 153486.94 1000 b
> > David 14256.673 18148.492 20185.7156 20170.3635 22067.6690 34998.95 1000 c
> > > all.equal(John, Rich)
> > [1] TRUE
> > > all.equal(John, David)
> > [1] "names for target but not for current"
> > > all.equal(John, Jeff)
> > [1] "names for target but not for current" "Mean relative difference:
> > 0.1498243"
> >
> > Of course, efficiency isn't the only consideration, and aesthetically
> > (and no doubt subjectively) I prefer Rich Heiberger's solution. OTOH,
> > Jeff's solution is more general in that it generates the correspondence
> > between letters and numbers. The argument for Jeff's solution would,
> > however, be stronger if it gave the desired answer.
> >
> > Best,
> > John
> >
> > > On Jul 10, 2020, at 3:28 PM, David Carlson <dcarlson using tamu.edu> wrote:
> > >
> > > Here is a different approach:
> > >
> > > xc <- c("1", "1a", "1b", "1c", "2", "2a", "2b", "2c")
> > > xn <- as.numeric(gsub("a", ".3", gsub("b", ".5", gsub("c", ".7", xc))))
> > > xn
> > > # [1] 1.0 1.3 1.5 1.7 2.0 2.3 2.5 2.7
> > >
> > > David L Carlson
> > > Professor Emeritus of Anthropology
> > > Texas A&M University
> > >
> > > On Fri, Jul 10, 2020 at 1:10 PM Fox, John <jfox using mcmaster.ca> wrote:
> > > Dear Jean-Louis,
> > >
> > > There must be many ways to do this. Here's one simple way (with no claim of optimality!):
> > >
> > > > xc <- c("1", "1a", "1b", "1c", "2", "2a", "2b", "2c")
> > > > xn <- c(1, 1.3, 1.5, 1.7, 2, 2.3, 2.5, 2.7)
> > > >
> > > > set.seed(123) # for reproducibility
> > > > x <- sample(xc, 20, replace=TRUE) # "data"
> > > >
> > > > names(xn) <- xc
> > > > z <- xn[x]
> > > >
> > > > data.frame(z, x)
> > > z x
> > > 1 2.5 2b
> > > 2 2.5 2b
> > > 3 1.5 1b
> > > 4 2.3 2a
> > > 5 1.5 1b
> > > 6 1.3 1a
> > > 7 1.3 1a
> > > 8 2.3 2a
> > > 9 1.5 1b
> > > 10 2.0 2
> > > 11 1.7 1c
> > > 12 2.3 2a
> > > 13 2.3 2a
> > > 14 1.0 1
> > > 15 1.3 1a
> > > 16 1.5 1b
> > > 17 2.7 2c
> > > 18 2.0 2
> > > 19 1.5 1b
> > > 20 1.5 1b
> > >
> > > I hope this helps,
> > > John
> > >
> > > -----------------------------
> > > John Fox, Professor Emeritus
> > > McMaster University
> > > Hamilton, Ontario, Canada
> > > Web: http::/socserv.mcmaster.ca/jfox
> > >
> > > > On Jul 10, 2020, at 1:50 PM, Jean-Louis Abitbol <abitbol using sent.com> wrote:
> > > >
> > > > Dear All
> > > >
> > > > I have a character vector, representing histology stages, such as for example:
> > > > xc <- c("1", "1a", "1b", "1c", "2", "2a", "2b", "2c")
> > > >
> > > > and this goes on to 3, 3a etc in various order for each patient. I do have of course a pre-established classification available which does change according to the histology criteria under assessment.
> > > >
> > > > I would want to convert xc, for plotting reasons, to a numeric vector such as
> > > >
> > > > xn <- c(1, 1.3, 1.5, 1.7, 2, 2.3, 2.5, 2.7)
> > > >
> > > > Unfortunately I have no clue on how to do that.
> > > >
> > > > Thanks for any help and apologies if I am missing the obvious way to do it.
> > > >
> > > > JL
> > > > --
> > > > Verif30042020
> > > >
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> >
> >
>
> --
> Verif30042020
>
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