Displaying 11 results from an estimated 11 matches for "0.0560".
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0.0160
2009 Mar 01
1
Understanding Anova (car) output
Dear professor Fox and R helpers,
I have a quick question about the Anova function in the car package.
When using the default "type II" SS I get results that I don't
understand (see below).
library(car)
Data <- data.frame(y=rnorm(10), x1=factor(c(rep("a",4), rep("b",6))),
x2 = factor(c(rep("j", 2), rep("k", 3), rep("j", 2),
2007 Sep 18
0
[LLVMdev] 2.1 Pre-Release Available (testers needed)
Hi,
LLVM 2.1-pre1 test results:
Linux (SUSE) on x86 (P4)
Release mode, but with assertions enabled
LLVM srcdir == objdir
# of expected passes 2250
# of expected failures 5
I ran the llvm-test suite on my desktop while I was also working on that PC,
so don't put too much trust in the timing info. Especially during the "spiff"
test the machine was swapping
2001 Nov 26
1
Sorting Posix Data
I have a fairly large set of data with the following attributes:
>str(raw.data)
`data.frame': 1429 obs. of 16 variables:
$ TStamp :`POSIXlt', format: chr "2001-11-25 02:00:00" "2001-11-25
01:55:00" "2001-11-25 01:50:00" "2001-11-25 01:45:00" ...
$ iPDT.AHU14.14: num 0.0122 0.0125 0.0120 0.0120 0.0122 ...
$ iPDT.AHU14.15: num 0.0121
2012 Mar 27
4
Help on predict.lm
Hello,
I'm new here, but will try to be as specific and complete as possible. I'm
trying to use “lm“ to first estimate parameter values from a set of
calibration measurements, and then later to use those estimates to calculate
another set of values with “predict.lm”.
First I have a calibration dataset of absorbance values measured from
standard solutions with known concentration of
2001 Jun 07
3
Diag "Hat" matrix
Hi R users:
What is the difference between in the computation of the diag of the
"hat" matrix in:
"lm.influence" and the matrix operations with "solve()" and "t()"?
I mean, this is my X matrix
x1 x2 x3 x4 x5
[1,] 0.297 0.310 0.290 0.220 0.1560
[2,] 0.360 0.390 0.369 0.297 0.2050
[3,] 0.075 0.058 0.047 0.034 0.0230
[4,] 0.114 0.100
2010 Feb 17
1
Ordered Logit in R
I'm trying to run an ordered logistic regression model. I've run the following code, but the output does not provide the p-values. Is there some command to include the p-values in the output.
reg2 <- polr(trade1 ~ age2 + education2 + personal2 + economy2 + partisan2 + employment2 + union2 + home2 + market2 + race2 + income2)
summary(reg2)
Re-fitting to get Hessian#
Call:
2007 Sep 15
22
[LLVMdev] 2.1 Pre-Release Available (testers needed)
LLVMers,
The 2.1 pre-release (version 1) is available for testing:
http://llvm.org/prereleases/2.1/version1/
I'm looking for members of the LLVM community to test the 2.1
release. There are 2 ways you can help:
1) Download llvm-2.1, llvm-test-2.1, and the appropriate llvm-gcc4.0
binary. Run "make check" and the full llvm-test suite (make
TEST=nightly report).
2) Download
2009 Feb 07
11
[LLVMdev] 2.5 Pre-release1 available for testing
LLVMers,
The 2.5 pre-release is available for testing:
http://llvm.org/prereleases/2.5/
If you have time, I'd appreciate anyone who can help test the release.
Please do the following:
1) Download/compile llvm source, and either compile llvm-gcc source or
use llvm-gcc binary (please compile llvm-gcc with fortran if you can).
2) Run make check, send me the testrun.log
3) Run "make
2011 Aug 08
0
Odp: Fw: R function for Gage R&R
Hi Elaine
I do not use it very often. I programmed it to mimic Minitab functions
(partly) with some adons from czech statistics textbook written by
M.Meloun (meloun militky statistics - first hit in google)
Basically you can have your data in some data frame or they can be as
separated vectors. The function itself expects input of 3 vectors, but you
can easily to modify it for imput as
2005 Jan 25
3
multi-class classification using rpart
Hi,
I am trying to make a multi-class classification tree by using rpart.
I used MASS package'd data: fgl to test and it works well.
However, when I used my small-sampled data as below, the program seems
to take forever. I am not sure if it is due to slowness or there is
something wrong with my codes or data manipulation.
Please be advised !
The data is described as the output from str()
2013 Feb 01
29
cumulative sum by group and under some criteria
Thank you very much for your reply. Your code work well with this example.
I modified a little to fit my real data, I got an error massage.
Error in split.default(x = seq_len(nrow(x)), f = f, drop = drop, ...) :
Group length is 0 but data length > 0
On Thu, Jan 31, 2013 at 12:21 PM, arun kirshna [via R] <
ml-node+s789695n4657196h87@n4.nabble.com> wrote:
> Hi,
> Try this:
>