cell array expansion

21 Jul. 2011
3 Respuestas
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23 Visualizaciones (30 días)

1 voto

I have just been bitten by some careless coding, but I am surprised that MATLAB lets me do it and that mlint didn't provide a warning. Why does MATLAB let you do this:
x = {1,2};
y = x{:};
what I wanted to do (and I am sure there are a number of other ways of doing it) was
y = [x{:}];
I can see the advantage of cell array expansion for referencing and parameter passing. For example,
z = magic(5);
z(x{:})
xy = {1:10, 0:9};
plot(xy{:});
Is there any reason for
y = x{:};
to be valid. I feel like it should return an error about the RHS returning more arguments than the LHS.

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Jan
Jan el 21 de Jul. de 2011

1 voto

This is the standard behaviour of Matlab:
x = {1, 2};
y = x{:}; % y is x{1}
You see the same method for:
a = rand(1, 10);
b = max(a);
Why is this equivalent? Because MAX replies 2 outputs as "x{:}" and if just the 1st is caught, the 2nd is ignored. Therefore these methods are equivalent also:
x = {1, 2};
[y1, y2] = x{:}
a = rand(1, 10);
[b1, b2] = max(a)
So I would not expect an MLint-warning for a standard behaviour.

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Daniel Shub
Daniel Shub el 6 de Ag. de 2011
I think you explanation is the best, even if I don't fully agree. I see a difference if you consider max(a) and x{:} without semicolons (max returns one answer and x returns two).

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Más respuestas (2)

Sean de Wolski
Sean de Wolski el 21 de Jul. de 2011

1 voto

One reason: For a function that takes varargin you can feed it all contents of a cell as a separate input.
x = {1,2,3,4}
cat(3,x{:})
Yes, it frustrates me some times too!

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Daniel Shub
Daniel Shub el 21 de Jul. de 2011
Yes, I agree and this is basically what I pointed out in my plot(xy{:}) example. What I want to know is if y = x{:} is useful. If the only reason it is valid is so that f(x{:}) can work then I think mlint should provide a warning (and even better MATLAB should throw an error).
Sean de Wolski
Sean de Wolski el 21 de Jul. de 2011
I disagree; that functionality is quite useful. What if the cell contains different sized elements? Concatenating them as you have done will fail.
Daniel Shub
Daniel Shub el 21 de Jul. de 2011
I don't understand. Yes, x = {1, [1, 2]}; y = [x{:}]; will fail and y = x{:} won't fail, but why would you want y = x{:}?

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Fangjun Jiang
Fangjun Jiang el 21 de Jul. de 2011

1 voto

Maybe one way to explain it is to treat it as the variable output argument. Like,
MaxValue=max(1:10);
[MaxValue,Index]=max(1:10);
You can do:
x={1,2};
y=x{:}
[a b]=x{:}

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Daniel Shub
Daniel Shub
el 21 de Jul. de 2011

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