gsl_nls()
via argument loss
weights
in gsl_nls()
accepts a matrix (in addition to a vector)
in which case the objective function is generalized least squaresgsl_nls_loss()
cooks.distance()
predict()
and hatvalues()
for weighted NLSpredict()
when using newdata
hatvalues()
gsl_nls()
lower
and upper
parameter constraints included in gsl_nls()
gsl_nls()
gsl_nls()
unit_tests
gsl_nls()
and gsl_nls_large()
when interruptedgsl_nls_large()
set to "lm"
gsl_nls_large()
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