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I'm trying to find the type of a struct field.

I tried to call prod on what I thought was an array, but I got this error:

??? Error using ==> prod
Dimension argument must be a positive integer scalar within indexing range.

So I printed the object in question and found this:

K>> F.val

ans =

   0.110000000000000   0.890000000000000


ans =

   0.590000000000000   0.410000000000000   0.220000000000000   0.780000000000000


ans =

   0.390000000000000   0.610000000000000   0.060000000000000   0.940000000000000

Which is different than the output of an array, which is this:

K>> [0.11 0.89 0.59 0.41 0.22 0.78 0.39 0.61 0.06 0.94]

ans =

  Columns 1 through 4

   0.110000000000000   0.890000000000000   0.590000000000000   0.410000000000000

  Columns 5 through 8

   0.220000000000000   0.780000000000000   0.390000000000000   0.610000000000000

  Columns 9 through 10

   0.060000000000000   0.940000000000000

and when I call class on the object, I get this error:

K>> class(F.val)
??? Error using ==> class
The CLASS function must be called from a class constructor.

How can I find the type of F.val?

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what is the output of >> which class in your command line? –  Shai Jan 12 at 17:52
    
I guess F.val is a cell array. You can >> iscell(F.val) to check this out. To convert it to an array you can simply >> [F.val{:}] –  Shai Jan 12 at 17:53
    
If you like, you can also drill down into the structure in the GUI - double-click in the workspace variables window or openvar('F') –  Notlikethat Jan 12 at 18:05
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1 Answer

up vote 2 down vote accepted

F is most likely an array of structures. Thus, calling class(F.val) is like calling class(F(1).val, F(2).val, F(3).val), which is different than the one-input-element syntax.

Use class(F(1).val) to obtain the class of val of the first element of F.

By the way, the error with prod is very likely of similar origin. prod(F(1).val) works fine, however, with two inputs, the second is assumed to be a dimension argument, and that needs to be an integer (which can be of class double, though).

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