Switch/case in cell array of strings

1 Jun. 2013
3 Respuestas
4 Visualizaciones (30 días)

0 votos

I have cell array of stings which I call it choice. The variable choice can take the following values:
choice={'Yes','Yes'};
choice={'Yes','No'};
choice={'No','Yes'};
choice={'No','No'};
I am using the switch/case to do other certain calculations. So..
switch choice
case {'Yes','Yes'}
...
case {'Yes','No'}
...
case {'No','Yes'}
...
case {'No','No'}
...
end
But switch/case gives an error:
SWITCH expression must be a scalar or string constant.
In the documentation I find:
case {'pie','pie3'}
Why then I get an error?

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Respuestas (3)

Azzi Abdelmalek
Azzi Abdelmalek el 1 de Jun. de 2013
Editada: Azzi Abdelmalek el 1 de Jun. de 2013

0 votos

choice='Yes'
switch choice
case {'Yes','Yes'}
y=1
case {'Yes','No'}
y=2
case {'No','Yes'}
y=3
case {'No','No'}
y=4
otherwise
y=100
end
%Where is the problem?
Note that case {'Yes','No'} and case{'No','Yes') are the same.And case {'Yes','Yes'} is equivalent to case 'Yes'

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Azzi Abdelmalek
Azzi Abdelmalek el 1 de Jun. de 2013
Editada: Azzi Abdelmalek el 1 de Jun. de 2013
Maybe you want this:
choice=['Yes' 'No']
%What you can do is
switch choice
case 'YesYes'
y=1
case 'YesNo'
y=2
case 'NoYes'
y=3
case 'NoNo'
y=4
otherwise
y=100
end
Giorgos Papakonstantinou
Giorgos Papakonstantinou el 1 de Jun. de 2013
i didn't know that {'Yes','No'} and case{'No','Yes') were the same
Walter Roberson
Walter Roberson el 1 de Jun. de 2013
in a case label, the order of appearance of the values does not matter. Think of it as doing an ismember(expression, labels) and executing the case if it is true.

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Walter Roberson
Walter Roberson el 1 de Jun. de 2013

0 votos

http://www.mathworks.com/help/matlab/ref/switch.html
An evaluated switch_expression is a scalar or string. An evaluated case_expression is a scalar, a string, or a cell array of scalars or strings.
Your switch expression is a cell array, not a scalar or string, so you get the error.
You may wish to use isequal() such as
isequal(choice, {'Yes', 'Yes'})
or you might want to
switch [choice{1} '/' choice{2}]
case 'Yes/Yes'
case 'Yes/No'
end
There are computational alternatives for the case of a fixed finite number of entries in the cell, each with a fixed finite set of possibilities, but once you get into that, you are probably better off going table-driven instead of using switch()

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Giorgos Papakonstantinou
Giorgos Papakonstantinou el 1 de Jun. de 2013
What do you mean by "going table driven"? Can you give an example of a computational alternative?
Walter Roberson
Walter Roberson el 1 de Jun. de 2013
Computational:
[tf, idx] = ismember(choice, {'Yes', 'No'});
switch (idx(1)-1) * 2 + (idx(2)-1)
case 0 %yes yes
case 1 %yes no
case 2 %no yes
case 3 %no no
end
Table driven:
choice_routines = {@() disp('Yes/Yes'), @() disp('Yes/No'), @() disp('No/Yes'), @() disp('No/No') };
[tf, idx] = ismember(choice, {'Yes', 'No'});
offset = (idx(1)-1) * 2 + (idx(2)-1) + 1;
choice_routines{offset}(); %table lookup and call it

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Giorgos Papakonstantinou
Giorgos Papakonstantinou el 1 de Jun. de 2013

0 votos

Thank you. I wasn't using it properly. I thought that it evaluated the whole cell array strings.

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Giorgos Papakonstantinou
Giorgos Papakonstantinou
el 1 de Jun. de 2013

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