On Apr 6, 2015, at 9:38 PM, Christine Lee via R-help wrote:
> Thank you Duncan,
>
> I am new to R. Could you please tell me how to download the latticeExtra
> package to get stationx time conditioning? I am terribly sorry that I have
> read 3-4 R books for dummies but I am still quite helple
Yes, it definitely is the GUI as it works just fine when I load data using a
file path. I can work around it, thankfully, but it would be great if this
issue could be fixed. I suspected Yosemite as it's given me multiple problems
since install.
Thanks for the input. Hopefully someone with th
People do not usually do homework stuff here but I do not see the point in
repeating the same sample 500 times. You might want to simulate 40x500
independent samples and put those in a matrix (see ?matrix) with lets say 40
rows and 500 columns. Once done, you can apply calculate the 500 sample
Thank you Duncan,
I am new to R. Could you please tell me how to download the latticeExtra
package to get stationx time conditioning? I am terribly sorry that I have
read 3-4 R books for dummies but I am still quite helpless with using R. >_<
Regards,
Christine
Please try help(rnorm)
Thanks & Regards,Arnab Arnab Kumar Maity
Graduate Teaching Assistant
Division of Statistics
Northern Illinois University
DeKalb,
Illinois 60115
U.S.A
From: Debojyoti Samadder
To: r-help@r-project.org
Sent: Monday, April 6, 2015 7:50 AM
Subject: [R] problem in searc
Hello,
I'm facing the following task:
Simulate 500 values of the statistic (n-1)s^2/sigma^2 based on taking 500
samples of size n=40
from the N(mu=10; sigma^2 = 25) distribution.
I think with the following command:
rep(rnorm(40,10,25),times=500)
I was able to simulate the samples but how I now ca
forgot to cc to list
have a look at https://stat.ethz.ch/pipermail/r-help/2012-January/300275.html
and other messages in the sequence
if you use Marc Schwartz's list2df you with have to transpose it with t()
Duncan
Duncan Mackay
Department of Agronomy and Soil Science
University of New Englan
Hi
also have a look at useOuterStrips in the latticeExtra package if you want
station x time conditioning
useOuterStrips(strip = strip.custom(par.strip.text = list(cex = 0.75)),
strip.left = strip.custom(horizontal = FALSE,
par.strip.text = list(cex
Does not min(abs(diff(z))) give you the scaling you need to set a tolerance?
-- Bert
Bert Gunter
Genentech Nonclinical Biostatistics
(650) 467-7374
"Data is not information. Information is not knowledge. And knowledge
is certainly not wisdom."
Clifford Stoll
On Mon, Apr 6, 2015 at 2:55 PM, M
split() might help, but you should give a more complete
explanation of your problem.
Bill Dunlap
TIBCO Software
wdunlap tibco.com
On Mon, Apr 6, 2015 at 1:56 PM, Keshav Dhandhania
wrote:
> Hi,
>
> I know that one can find all occurrences of x in a vector v by doing
> > which(x == v).
>
> Howeve
On Apr 6, 2015, at 1:56 PM, Keshav Dhandhania wrote:
> Hi,
>
> I know that one can find all occurrences of x in a vector v by doing
>> which(x == v).
>
> However, if I need to do this again and again, where v is remaining the
> same, then this is quite inefficient. In my particular case, I need
Hi,
I know that one can find all occurrences of x in a vector v by doing
> which(x == v).
However, if I need to do this again and again, where v is remaining the
same, then this is quite inefficient. In my particular case, I need to do
this millions of times, and length(v) = 100 million.
Does an
The first solution with diff works for uniform abscissa only with integer
values.
z <- seq(0, 10, length=100)
all(diff(z) == z[2] - z[1] )
## FALSE
In this case, as you recommended, I could use signif or round or a
tolerance for real numbers. In my particular case, in order to set a
tolerance, I
On Apr 6, 2015, at 11:15 AM, Bert Gunter wrote:
> Not quite, David.
>
> If I understand the OP's query, he wants the ties to be broken by the
> "lexicographic" order (with apologies if I have misused this term) of
> the 1's within the rows. Makes things a bit more interesting.
This should corre
> On 06 Apr 2015, at 22:17 , Prof Brian Ripley wrote:
>
> Nicole Ford wrote:
[snip]
>>
>> I found a page where people were indicating they had this issue, but there
>> was no one responding with a fix. see below:
>>
>> bugs.r-project.org/bugzilla/show_bug.cgi?id=14240
>
> Which is about Wi
It seems this is not R but R.app (the separate project providing an OS X
console: see the 'R Installation and Administration' manual). If so,
the only appropriate list is R-sig-Mac (see the posting guide).
On 06/04/2015 19:14, Nicole Ford wrote:
Hello,
I am experiencing an issue, repeatedly,
Mi data is like that:
i tried:
stripchart(spei[, 1:3], method="jitter", xlim=c(1,2.5),at=c(1.25, 1.75,
2.25),offset=1/2,vertical=TRUE, pch=19, las=1, subset(spei,
speia,1]==quantile(spei[,1],c(.10,.90
structure(list(year = 1901:2013, J = c(1.547878, -1.100605, -0.4222952,
-1.221505, -0.2250
original data are something like that:
structure(list(year = 1901:2013, J = c(1.547878, -1.100605, -0.4222952,
-1.221505, -0.2250523, -0.1260924, -0.6251569, -0.7348371, 0.9646313,
1.21345, 0.9746932, 0.5155271, -0.3323591, -0.6689715, 0.8461724,
1.772659, 1.436295, -1.108881, -1.196227, 1.445744,
Reproducibility
https://github.com/hadley/devtools/wiki/Reproducibility
http://stackoverflow.com/questions/5963269/how-to-make-a-great-r-reproducible-example
John Kane
Kingston ON Canada
> -Original Message-
> From: catalinro...@gmail.com
> Sent: Mon, 6 Apr 2015 20:16:39 +0300
> To: r
Hi again
the data represents a directed graph represented in a matrix
e.g
library(igraph)
g <- forest.fire.game(10, fw.prob=0.3 , bw.factor=0.32/0.3, directed = TRUE)
m=get.adjacency(g , attr=NULL)
print(m)
--
many thanks and pardon me for multiple posts
Ragia
> Date: Mon, 6 Apr 2015
Hello,
You should have used ?dput to post your data example.
Since you haven't, I've made up one.
set.seed(4795)
mat <- matrix(sample(0:1, 24, replace = TRUE), nrow = 6)
mat
inx <- order(rowSums(mat), decreasing = TRUE)
mat[inx, ]
Hope this helps,
Rui Barradas
Em 06-04-2015 18:18, Ragia Ibr
Hello,
I am experiencing an issue, repeatedly, which began today.
Example code:
load(file.choose()) ##sometimes it crashes here/ endless spinner/ other times
I can get through.
or: i go up to options at the top to set wd, or select ‘file’ -> ‘open’ and it
will do the same thing.
I found a
Not quite, David.
If I understand the OP's query, he wants the ties to be broken by the
"lexicographic" order (with apologies if I have misused this term) of
the 1's within the rows. Makes things a bit more interesting.
Have at it!
Cheers,
Bert
Bert Gunter
Genentech Nonclinical Biostatistics
(6
The answer depends on what kind of matrix/data frame you have. That is why we
encourage people to use dput() to create a copy of the sample data in their
email. Some combination of order() function the rowSums() function will
probably get you what you want. For example,
dat[order(rowSums(dat=="
... correction: you need to use absolute value for the comparison, of course.
all(abs(diff(z) - z[2] + z[1]) < tol)
-- Bert
Bert Gunter
Genentech Nonclinical Biostatistics
(650) 467-7374
"Data is not information. Information is not knowledge. And knowledge
is certainly not wisdom."
Clifford Sto
Perhaps ?diff might be useful here:
z <- runif(20)
all(diff(z) == z[2] - z[1] )
## FALSE
z <- seq_len(10)
all(diff(z) == z[2] - z[1] )
##TRUE
You can use signif or round as before to allow for "near uniformity"
or use ?zapsmall or an explicit comparison with a tolerancec instead
of ==, e.g. all(
Dear group
i have the following matrix
1 . . 1 . . 1 . . . .
2 . . . . . . 1 . . .
3 1 . . . 1 . . 1 . 1
4 . . . . . 1 . . . .
5 . . 1 . . . . . . 1
6 1 . . 1 . . . . 1 .
7 . 1 . . . . . 1 . .
8 . . 1 . . . 1 . . 1
9 . . . . . 1 . . . 1
10 . . 1 . 1 . . 1 1 .
I want to sort it according
Dear all!
I have a problem! I want to plot temperature anomalies per months until
1901-2014. For this I want to make a stripchart. I used the specified
command, but I want to plot the extreme values with full dots above 90th
and bellow 10th percentile, and the normal values with hallow dots.
Ple
The aim is to control if a given abscissa/grid is uniform or not. Abscissa
in generic vector of real ordered numbers.
Here a reproducibile code:
# uniform abscissa/grid
abscissa1 <- seq(0, 1, length=100)
# non-uniform abscissa/grid
abscissa2 <- sort(runif(100))
control1 <- all(signif(abscissa1[1
Please use dput() to provide your data, as already requested. Just
providing the text file doesn't tell us enough about the structure:
are some columns factors? etc.
Or, if you must provide an attachment (really not preferred, as many
attachments won't make it to the list, and many people do not w
Thank you very much to Both Sarah and Michael,
Your responses are deeply appreciated. TxT
I have omitted the reinstatement of the data source as follows:
library(lattice)
histogram(~Width|Station*Year, data=Raw.no10,
layout=c(4,2),nin=30,xlab="Prosomal Width (mm)",
strip=strip.custom(bg='whit
It still sounds like a broken installation. I'd uninstall and
reinstall, I think.
But I've copied this back to the list (rather than just to me), and
someone else might have a better solution.
Sarah
On Mon, Apr 6, 2015 at 12:02 PM, Debojyoti Samadder
wrote:
> Dear list memeber,
>
See inline
On 06/04/2015 15:39, Sarah Goslee wrote:
Hi,
On Mon, Apr 6, 2015 at 7:44 AM, Christine Lee via R-help
wrote:
To whom it may help,
I am new to R.
I have been tring to have a lattice plot in two strip levels: 4 stations in 2
years.
I type in:
histogram(~Raw.no10$Width|Raw.no10$S
In this case I think it means your installation of the R software is broken,
though if you are messing around with environment variables that could probably
also do this. You should read the Posting Guide and follow the guidance there
if you want more specific feedback.
-
Hi,
On Mon, Apr 6, 2015 at 7:44 AM, Christine Lee via R-help
wrote:
> To whom it may help,
>
> I am new to R.
>
> I have been tring to have a lattice plot in two strip levels: 4 stations in 2
> years.
>
> I type in:
>
> histogram(~Raw.no10$Width|Raw.no10$Station*Raw.no10$Year, data=Raw.no10,
>
Hi Jim, So that does the rescale part very efficiently. But I’d like to know
how to do that on each list element using lapply or llply. I have about 4 data
frames and a few other recodes to do so automating would be nice, rather than
applying your code to each individual list element.
simon
> O
On Mon, Apr 6, 2015 at 8:50 AM, Debojyoti Samadder
wrote:
> Dear sir,
The masculine is no longer the default form of address. "Dear list" is
fine, as are many other options.
> I tried "help.search("rnorm")" in R version 3.1.2 .
> It gave a error
> "Error in `[<-`(`*tmp*`, , "name", value = sub
Without a reproducible example that includes some sample data (fake is
fine), the code you used (NOT in HTML format), and some clear idea of
what output you expect, it's impossible to figure out how to help you.
Here are some suggestions for creating a good reproducible example:
http://stackoverflo
Dear sir,
I tried "help.search("rnorm")" in R version 3.1.2 .
It gave a error
"Error in `[<-`(`*tmp*`, , "name", value = sub("\\.[^.]*$", "",
basename(vDB$File))) :
subscript out of bounds".
Can you tell me the reason.It may be silly.
To whom it may help,
I am new to R.
I have been tring to have a lattice plot in two strip levels: 4 stations in 2
years.
I type in:
histogram(~Raw.no10$Width|Raw.no10$Station*Raw.no10$Year, data=Raw.no10,
layout=c(4,2),nin=30,xlab="Prosomal Width (mm)",
strip=strip.custom(bg='white'),ylab=
I need to control of a given grid is uniform. This control using signif
until now works:
if (all(signif(abscissa[1:(length(abscissa) - 1) + 1] -
abscissa[1:(length(abscissa) - 1)]) == signif(rep((range(abscissa)[2] -
range(abscissa)[1])/(length(abscissa) - 1), length(abscissa) -
1 {
#
Hello Carlijn
Well the documentation for trimfill says they are added.
library(metafor)
example(trimfill)
This now leaves you with
res
res.tf
By looking at these and seeing which vectors have grown you should be
able to extract the yi and vi which you want.
Wolfgang will doubtless be on the
Maybe something like the appended?
-- Mike
lst <- list(setNames(c(1,10,50,60,70,80),
c("id","id1","math","phy","che","bio")),
setNames(c(2,20,45),
c("id","id1","phy")),
setNames(c(3,30,75),
c("id","id1","bio"))
> On 06 Apr 2015, at 08:05 , Mohammad Tanvir Ahamed via R-help
> wrote:
>
> Hi ,�
>
> I have a example list like follow�
>
>
>
>
> lst<-list(setNames(c(1,10,50,60,70,80),c("id","id1","math","phy","che","bio")),setNames(c(2,20,45),c("id","id1","ph
Hi ,�
I have a example list like follow�
lst<-list(setNames(c(1,10,50,60,70,80),c("id","id1","math","phy","che","bio")),setNames(c(2,20,45),c("id","id1","phy")),setNames(c(3,30,75),c("id","id1","bio")))
My expected outcome :�
-
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