[R] NLS plinear question
Katharine Mullen
kate at few.vu.nl
Tue May 6 23:18:35 CEST 2008
recall that 0 ^{-.2} = 1/0^{.2}, and that dividing by 0 gives Inf.
so when 0 is in trl, part of your model for RT is Inf:
> trl <- 0:14
> p <- -.2
> cbind(1,trl, trl^p)
trl
[1,] 1 0 Inf
[2,] 1 1 1.0000000
[3,] 1 2 0.8705506
[4,] 1 3 0.8027416
[5,] 1 4 0.7578583
[6,] 1 5 0.7247797
[7,] 1 6 0.6988271
[8,] 1 7 0.6776109
[9,] 1 8 0.6597540
[10,] 1 9 0.6443940
[11,] 1 10 0.6309573
[12,] 1 11 0.6190439
[13,] 1 12 0.6083643
[14,] 1 13 0.5987029
[15,] 1 14 0.5898946
On Tue, 6 May 2008, Rick DeShon wrote:
> Hi All.
>
> I've run into a problem with the plinear algorithm in nls that is confusing
> me.
>
> Assume the following reaction time data over 15 trials for a single unit.
> Trials are coded from 0-14 so that the intercept represents reaction time in
> the first trial.
>
> trl RT
> 0 1132.0
> 1 630.5
> 2 1371.5
> 3 704.0
> 4 488.5
> 5 575.5
> 6 613.0
> 7 824.5
> 8 509.0
> 9 791.0
> 10 492.5
> 11 515.5
> 12 467.0
> 13 556.5
> 14 456.0
>
> Now fit a power function to this data using nls with the plinear algorithm
> >fit.pw <-nls(RT ~ cbind(1,trl, trl^p), start = c(p = -.2), algorithm =
> "plinear", data=df.one)
>
> Yields the following error message....
> "Error in numericDeriv(form[[3]], names(ind), env) :
> Missing value or an infinity produced when evaluating the model"
>
> Now, recode trial from 1-15 and run the same model.
> >fit.pw <-nls(RT ~ cbind(1,trl, trl^p), start = c(p = -.2), algorithm =
> "plinear", data=df.one)
>
> Seems to work fine now...
> Nonlinear regression model
> model: RT ~ cbind(1, trl, trl^p)
> data: df.one
> p .lin1 .lin.trl .lin3
> -0.2845 200.3230 -8.9467 904.7582
> residual sum-of-squares: 555915
>
> Number of iterations to convergence: 11
>
> Any idea why having a zero for the first value of X causes this problem?
>
> Thanks in advance,
>
> Rick DeShon
>
> [[alternative HTML version deleted]]
>
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