31

I'm tring to use neuralnet for prediction.

Create some X:

x <- cbind(seq(1, 50, 1), seq(51, 100, 1))

Create Y:

y <- x[,1]*x[,2]

Give them a names

colnames(x) <- c('x1', 'x2')
names(y) <- 'y'

Make data.frame:

dt <- data.frame(x, y)

And now, I got error

model <- neuralnet(y~., dt, hidden=10, threshold=0.01)

error in terms.formula(formula) : '.' in formula and no 'data' argument

For example, in lm(linear model) this is worked.

1
  • 5
    neuralnet is doing a lot os messing with the formula via non-exported function neuralnet:::generate.initial.variables. There is a bug in that function. I suggest you contact the maintainer and send them this example or a link to the question. Commented Jul 22, 2013 at 18:28

3 Answers 3

50

As my comment states, this looks like a bug in the non-exported function neuralnet:::generate.initial.variables. As a work around, just build a long formula from the names of dt, excluding y, e.g.

n <- names(dt)
f <- as.formula(paste("y ~", paste(n[!n %in% "y"], collapse = " + ")))
f

## gives
> f
y ~ x1 + x2

## fit model using `f`
model <- neuralnet(f, data = dt, hidden=10, threshold=0.01)

> model
Call: neuralnet(formula = f, data = dt, hidden = 10, threshold = 0.01)

1 repetition was calculated.

        Error Reached Threshold Steps
1 53975276.25     0.00857558698  1967
5
  • sorry, but I can't understand. Why error value is so big? So I did, but got constant predicted value. Can you help me?
    – luckyi
    Commented Jul 23, 2013 at 17:37
  • @luckyi That is likely a statistics question and is not suited to Stack Overflow Try asking on Cross Validated. Commented Jul 23, 2013 at 17:39
  • 1
    This also happens in package RMS for ols(). The same fix works there too
    – Chris
    Commented Dec 12, 2014 at 22:49
  • 1
    @GavinSimpson - Thanks for the solution, Gavin! I've encountered the same formula error in the new mpath package.
    – RobertF
    Commented Jun 23, 2015 at 14:19
  • it doesn't remove the y values from the left hand side of formula. It comes in the end. Commented May 14, 2018 at 8:00
15

Offering a simpler alternative to the previous answer, you can create a formula from names of dt using reformulate():

f <- reformulate(setdiff(colnames(dt), "y"), response="y")

reformulate() doesn't require the use of paste() and automatically adds the terms together.

1
  • I've been searching for this,,,,,
    – kurtkim
    Commented Sep 28, 2022 at 13:38
-1

To expand a formula

f <- formula(terms(f, data= dt))

or even shorter

f <- formula(dt, f)

where f is the formula and dt is the data.


For instance, the original formula could be:

f <- as.formula("y ~ .")
1
  • Really confusing answer
    – Julien
    Commented Oct 16, 2022 at 7:10

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