is there an index maneuver if index is 0?

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Martin el 28 de Sept. de 2019

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Comentada: Martin el 30 de Sept. de 2019

Respuesta aceptada: the cyclist

Hello,

I am running a ismember:

[logical idx] = ismember(hund(:,1),dogs(:,2))

('hund' is often around 3,000 rows, and 'dogs' is often around 100,000 rows).

This give me an output that could be something like this

logical =        idx =
           1              355
           1              536
           1              746
           0                0
           1             1042
           0                0     

Then I need to find the second column in the 'dogs' variable for the index and inset this in the 'hund' variable as the 2. column like this:

hund(:,2) = dogs(idx,2)

The problem is, the above does not account for if the idx is zero. I get this error:

'Index in position 1 is invalid. Array indices must be positive integers or logical values.'

Does anyone know a solution to get arround of this?

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Walter Roberson el 29 de Sept. de 2019

Using logical as the name of a variable can interfere with using logical as the name of a class, and will confuse people.

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the cyclist el 28 de Sept. de 2019

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Editada: the cyclist el 28 de Sept. de 2019

hund(logical,2) = dogs(idx(logical),2)

If hund does not already have a second column, you'll need to do something like

hund = [hund, zeros(numel(hund),1)];

beforehand.

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the cyclist el 30 de Sept. de 2019

Yeah, although I hope the camel case is a strong hint that this is a variable.

I guess hundIsInDog would do the trick here.

Martin el 30 de Sept. de 2019

Yeah I agree with you guys, the output names however was just to be as descriptive as possible. However, thanks for the follow up and solution. Take care

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