Displaying 20 results from an estimated 5149 matches for "interceptible".
2009 Jun 04
2
wrong labels and colors of points in graph/plot
Hi there,
I trying to solve this problem for the whole day not going anywhere,
so I really hope maybe somebody can help
me in this community...
I've got an object coefficient2 which I want to plot in differerent
ways, with colors and labels added to the points,
but somehow there seems to be a problem if a value is NA within the
independent variable, resulting in false labels and false colors
2007 May 21
4
How to compare linear models with intercept and those without intercept using minimizing adjs R^2 strategy
Dear R-list,
I apologize for my many emails but I think I know how to desctribe my
problem differently and more clearly.
My question is how to compare linear models with intercept and those without
intercept using maximizing adjusted R^2 strategy.
Now I do it like the following:
> library(leaps)
> n=20
> x=matrix(rnorm(n*3),ncol=3)
> b=c(1,2,0)
> intercept=1
>
2007 Nov 28
2
fit linear regression with multiple predictor and constrained intercept
Hi group,
I have this type of data
x(predictor), y(response), factor (grouping x into many groups, with 6-20
obs/group)
I want to fit a linear regression with one common intercept. 'factor'
should only modify the slopes, not the intercept. The intercept is expected
to be >0.
If I use
y~ x + factor, I get a different intercept for each factor level, but one
slope only
if I use
y~ x *
2006 Mar 10
4
How to get the intercept from lm?
Hi
I am using R 2.2.0 under SuSE 10
I want to use lm() to get the slope and intercept for several daatasets
and store them in a database. So far so good - but how do I extract the
slope and the intercept from the result from lm()?
my code looks like this:
lmNNDens <- lm(log(DensNN$MeanNN) ~ log(DensNN$MeanDensity))
anovaLM <- anova(lmNNDens)
Results$slope[No] <- ???lmNNDens???
2011 Feb 01
4
Fitting ELISA measurements "unknowns" to 4 parameter logistic model
Hello,
I am trying to fit my Elisa results (absorbance readings) to a standard
curve. To create the standard curve model, I performed a 4-parameter
logistic fit using the 'drc' package (ExpectedConc~Absorbance). This gave me
the following:
> FourP
A 'drc' model.
Call:
drm(formula = Response ~ Expected, data = SC, fct = LL.4())
Coefficients:
b:(Intercept) c:(Intercept)
2007 Dec 05
2
Interpretation of 'Intercept' in a 2-way factorial lm
Hi all,
I hope this question is not too trivial. I can't find an explanation
anywhere (Stats and R books, R-archives) so now I have to turn to the R-list.
Question:
If you have a factorial design with two factors (say A and B with two
levels each). What does the intercept coefficient with
treatment.contrasts represent??
Here is an example without interaction where A has two levels A1 and
2011 Feb 18
3
lm without intercept
Hi,
I am not a statistics expert, so I have this question. A linear model
gives me the following summary:
Call:
lm(formula = N ~ N_alt)
Residuals:
Min 1Q Median 3Q Max
-110.30 -35.80 -22.77 38.07 122.76
Coefficients:
Estimate Std. Error t value Pr(>|t|)
(Intercept) 13.5177 229.0764 0.059 0.9535
N_alt 0.2832 0.1501 1.886 0.0739
2013 Apr 16
2
Understanding why a GAM can't have an intercept
Dear List,
I've just tried to specify a GAM without an intercept -- I've got one of
the (rare) cases where it is appropriate for E(y) -> 0 as X ->0.
Naively running a GAM with the "-1" appended to the formula and the
calling "predict.gam", I see that the model isn't behaving as expected.
I don't understand why this would be. Google turns up this old
2012 Sep 23
1
How to Write a Model in R that has the Log taken of the Intercept
Hi,
I know that +1 is used to specify an intercept in a R model. An example of
this would be: y~x+1
If I want to have a model where the log of the intercept is taken, the
equation y~x+log(1) will not take the log of the intercept.
Any suggestions on how to take the log of the intercept will be appreciated.
Thanks
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2011 Apr 19
1
How to Extract Information from SIMEX Output
Below is a SIMEX object that was generated with the "simex" function from the
"simex" package applied to a logistic regression fit. From this mountain of
information I would like to extract all of the values summarized in this
line:
.. ..$ variance.jackknife: num [1:5, 1:4] 1.684 1.144 0.85 0.624 0.519 ...
Can someone suggest how to go about doing this? I can extract the
2003 Aug 19
3
logistic regression without intercept
I want to do a logistic regression without an intercept term. This
option is absent from glm, though present in some of the inner functions
glm uses. I gather glm is the standard way to do logistic regression in
R.
Hoping it would be passed in, I said
> r <- glm(brain.cancer~epilepsy+other.cancer, c3,
> family=binomial(link="logit"), intercept=FALSE)
which produced
2003 Sep 26
3
Std. errors of intercept and slope
Dear all,
I have the following output generated by linear regression. Since there is
only one regression intercept and one slope for one set of data, what is the
meaning of std. error for intercept and that of slope? Thanks in advance.
Sincerely,
Minghua
> data(thuesen)
> attach(thuesen)
> lm(short.velocity~blood.glucose)
Call:
lm(formula = short.velocity ~ blood.glucose)
2012 Oct 10
2
GAM without intercept
Hi everybody,
I am trying to fit a GAM model without intercept using library mgcv.
However, the result has nothing to do with the observed data. In fact
the predicted points are far from the predicted points obtained from the
model with intercept. For example:
#First I generate some simulated data:
library(mgcv)
x<-seq(0,10,length=100)
y<-x^2+rnorm(100)
#then I fit a gam model with
2007 Aug 28
1
FW: How to fit an linear model withou intercept
Hi Mark,
I don't know wether you recived a sufficient reply or not, so here are
my comments to your problem.
Supressing the constant term in a regression model will probably lead to
a violation of the classical assumptions for this model.
From the OLS normal equations (in matrix notation)
(1) (X'X)b=X'y
and the definition of the OLS residuals
(2) e = y-Xb
you get - by
2007 Mar 07
1
Failure to run mcsamp() in package arm
Dear r-helpers,
I can run the examples on the mcsamp help page. For example:
****************************************
> M1 <- lmer (y1 ~ x + (1|group))
> (M1.sim <- mcsamp (M1))
fit using lmer,
3 chains, each with 1000 iterations (first 500 discarded)
n.sims = 1500 iterations saved
mean sd 2.5% 25% 50% 75% 97.5% Rhat n.eff
beta.(Intercept)
2010 Aug 23
3
extracting p-values from Anova objects (from the car library)
Dear all,
is there anyone who can help me extracting p-values from an Anova object
from the car library? I can't seem to locate the p-values using
str(result) or str(summary(result)) in the example below
> A <- factor( rep(1:2,each=3) )
> B <- factor( rep(1:3,times=2) )
> idata <- data.frame(A,B)
> fit <- lm( cbind(a1_b1,a1_b2,a1_b3,a2_b1,a2_b2,a2_b3) ? sex,
2012 Jul 27
1
Understanding the intercept value in a multiple linear regression with categorical values
Hi!
I'm failing to understand the value of the intercept value in a
multiple linear regression with categorical values. Taking the
"warpbreaks" data set as an example, when I do:
> lm(breaks ~ wool, data=warpbreaks)
Call:
lm(formula = breaks ~ wool, data = warpbreaks)
Coefficients:
(Intercept) woolB
31.037 -5.778
I'm able to understand that the value of
2004 Oct 22
3
Convert a list in a dataframe
Hi,
I've a list containing parameters (intercepts &
coefficients) of 12 regressions fitted
> coeff
[[1]]
(Intercept) anno
-427017.1740 217.0588
[[2]]
(Intercept) anno
-39625.82146 21.78025
.....
[[12]]
(Intercept) anno
257605.0343 -129.7646
I want create a data frame with two columns (intercept
and anno)using data in these list.
Any help
2006 Oct 25
3
simplification of code using stamp?
Hi
I have the following code which I would like to simplify. Id does linear
regressions and returns the r-squares, and the coefficients.
It runs slow, as it is doing the regressions for each - is it possible
to get the values in a dataframe which looks as follow:
expert | xx | seeds | r.squared | slope | intercept
Thanks in advance,
Rainer
library(reshape)
rsqs <- as.data.frame(
2011 Mar 31
2
ANCOVA for linear regressions without intercept
Hello R experts
I have two linear regressions for sexes (Male, Female, Unknown). All have a good correlation between body length (response variable) and head length (explanatory variable). I know it is not recommended, but for a good practical reason (the purpose of study is to find a single conversion factor from head length to body length), the regressions need to go through the origin (0