Equivalent code to regress(), using fitglm()

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the cyclist
the cyclist 2014 年 9 月 3 日
コメント済み: the cyclist 2014 年 9 月 4 日
Given the same input data, I would expect
b = regress(log(Y),[ones(size(X,1),1) X]);
and
mdl = fitglm(X,Y,'Link','log');
B = mdl.Coefficients.Estimate;
to give the same coefficients.
Below is some sample code where they do not. Am I missing something simple?
NTRIALS = 31;
dateString = {'01-04-1993','01-07-1995','01-03-1996','01-03-1997', ...
'01-02-1998','01-07-1998','01-11-1998','01-08-1999', ...
'01-09-1999','01-09-2002','01-01-2006','01-03-2006', ...
'01-02-2008','01-05-2008','01-10-2008','01-01-2010', ...
'01-02-2010','01-03-2010','01-10-2011','01-11-2011', ...
'01-01-2012','01-04-2012','01-03-2012','01-04-2012', ...
'01-09-2012','01-09-2012','01-01-2012','01-01-2012', ...
'01-04-2013','01-06-2013','01-02-2014'...
}';
ARR = [1.27 0.84 0.90 1.26 ...
1.61 0.50 1.28 0.98 ...
1.08 1.24 0.61 0.67 ...
0.70 0.44 0.41 0.33 ...
0.40 0.90 0.54 0.80 ...
0.28 1.30 0.39 1.20 ...
0.40 0.36 0.501 0.40 ...
1.04 0.505 0.34 ]';
N = [372 251 301 150 ...
40 127 560 168 ...
293 49 1651 942 ...
104 267 257 1326 ...
1272 29 1088 218 ...
66 165 1106 120 ...
1417 1234 1169 1083 ...
80 1404 1331 ]';
dateNumber = datenum(dateString,'dd-mm-yyyy');
dateVector = datevec(dateNumber);
year = dateVector(:,1);
[b,bint,r,rint,stats] = regress(log(ARR),[ones(NTRIALS,1) year]);
mdl = fitglm(year,ARR,'Link','log');
B = mdl.Coefficients.Estimate;
figure
hold on
h = line(datenum({'1993-01-01','2014-01-01'}),exp(1).^[b(1)+b(2)*1994 b(1)+b(2)*2014]);
hg = line(datenum({'1993-01-01','2014-01-01'}),exp(1).^[B(1)+B(2)*1994 B(1)+B(2)*2014]);
set(h,'Color','r')
set(hg,'Color','g')
semilogy(dateNumber,ARR,'o')
axis tight
set(gca,'YLim',[0.1 2],'YTick',[0.2 0.4 0.6 0.8 1.0 1.5 2])
set(gca,'XTick',1994:2:2014)
datetick('x')

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Tom Lane
Tom Lane 2014 年 9 月 4 日
I believe these are not the same. For the fitglm model we are saying that Y has a normal distribution whose log(mean) has a linear relationship with the predictors. Y could take on negative values in that case. For the regress model we are saying that the log of Y has a normal distribution whose mean has a linear relationship with the predictors. Y would have to be positive in that case.
  1 件のコメント
the cyclist
the cyclist 2014 年 9 月 4 日
Proving once again that I am not a statistician, but just play one on TV. Thanks for the clear explanation.

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