Check whether values of a certain column of a matrix is between two values

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Steven Shaaya
Steven Shaaya el 29 de Nov. de 2021
Comentada: Steven Shaaya el 30 de Nov. de 2021
%{
I have a BUS matrix with 6 rows, column 12 is the max value and column 13 is the minimum value.
I want to check if column 8 values are between column 12 and 13 values.
Now, I know that the answer of volmax are all greater than 0 but some values of volmin are less than 0.
For some reason, my code display Yes which means that volmax and volmin are greater than or equal to zero.
But I know this is not true. My guess is that my code is comparing only the first row and it ignore the rest of the rows
Can you help me to figure this out?
}%
volmax= BUS(:,12)- BUS(:,8) % we are good if volmax >=0
volmin= BUS(:,8)- BUS(:,13) % we are good if volmin >=0
if volmax<0 | volmin <0
disp('NO')
else
disp('YES')
end
end

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the cyclist
the cyclist el 30 de Nov. de 2021
OK, still trying to understand everything, but I think this does what you want:
% Sample input
BUS(:, 8) = [2;2;2];
BUS(:,12) = [3;3;3];
BUS(:,13) = [1;1;1];
volmax = BUS(:,12)- BUS(:,8); % we are good if volmax >=0
volmin = BUS(:,8)- BUS(:,13); % we are good if volmin >=0
if any((volmin<0)|(volmax<0))
disp('NO')
else
disp('YES')
end
Change the inputs around, and see if it is correct. If this is NOT correct, then please
  • give an example of inputs that give INCORRECT output, and explain why
  2 comentarios
Steven Shaaya
Steven Shaaya el 30 de Nov. de 2021
Thank you very much, yes it did work.
Can you help me with something else, it is related to this question
Now in my if statement im using a matrix with 6 rows, is there away that I can use | with another matrix that has only 3 rows.
for example
if any((volmin<0)|(volmax<0) |(H<0)) %where H is a matrix with 3 rows
%where volmin and/or volmax has 6 rows
disp('NO')
else
disp('YES')
end
% it gives the following error, "Matrix dimensions must agree."
Steven Shaaya
Steven Shaaya el 30 de Nov. de 2021
Thank you again. I figured out the answer to my question which is adding zeros to the matrix in order to make them of the same size.
If you have better method, I would like to hear from you.

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Más respuestas (1)

the cyclist
the cyclist el 30 de Nov. de 2021
I think you intended
volmax<0 & volmin <0
rather than
volmax<0 | volmin <0
because you want to meet both conditions ("AND"), not just either condition ("OR").
Also, be aware that for vector input V, you will only enter the if statement
if V
...
end
if all elements of the vector V are true. (It is not some kind of implicit loop that works down the vector.)
Note that the expression
volmax<0 | volmin <0
(not using the if structure at all) will be a logical vector, with TRUE/FALSE entries corresponding to each row.
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the cyclist
the cyclist el 30 de Nov. de 2021
Ran in:
I misunderstood your logic, and I see why you chose | now. Sorry for the confusion.
In your original code, it is not just checking the first element; it is checking whether ALL the elements of the vector meet the condition. Here is a simple example:
if [true true true]
disp('All elements are true')
else
disp('At least one element is false')
end
All elements are true
if [true false true]
disp('All elements are true')
else
disp('At least one element is false')
end
At least one element is false
The reason your second code example works is that you are using a for loop, checking one value at a time (not trying to check the entire vector at once).
Question: Suppose 2 rows do not meet the condition, and 3 rows do. What do you want for output? Should the output be 5 "YES" / "NO" values (one per row), or do you just want a single "YES" / "NO", based on whether all rows are ok?
Steven Shaaya
Steven Shaaya el 30 de Nov. de 2021
Editada: Steven Shaaya el 30 de Nov. de 2021
I want just a single "YES" / "NO", based on whether all rows are ok, all values of column 8 should be between the values of columns 12 & 13.
So based on your assumption, it should display 'no'.
For example, I can try
if volmax(1:6,:) <0 | volmax(2:6,:) <0 |volmax(3:6,:) ...........ect
but I do not see this efficient because I will need about 12 OR only for this example and my next example will have about 30 OR
that why I am trying to find another method
Thank you

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