If-expression only runs the first expression?

1 Ansicht (letzte 30 Tage)
Sam
Sam am 20 Dez. 2014
Bearbeitet: Jan am 21 Dez. 2014
I created a for loop for a 5x5 matrix (it is a struct with data in it). But there are some values of the matrix I don't want to calculate. For example, I don't want to calculate cell (1,4). I also don't want to calculate the cell (3,4), (4,4),...
if ~((i_testen == 4) & (welke_pp == 1)) | ((i_testen == 4) & (welke_pp == 3)) | ((i_testen == 4) & (welke_pp == 4)) | ((i_testen == 4) & (welke_pp == 5)) %i_testen stands for the measurementnumber. welke_pp stand for the subjectnumber.
RASI = data_sts(welke_pp,i_testen).VideoSignals(:, strcmp('RASI', data_sts(welke_pp,i_testen).VideoSignals_headers)); %extract data
XY(2,1) = max(RASI) %maximum of RASI
XY(1,1) = 0; %mimimum is set to zero
Begin_Eind_sts.Begin(i_testen) = abs(XY(2,1)); %store data
Begin_Eind_sts.Eind(i_testen) = abs(XY(1,1));
close all %close all opened figures
else
continue %continue with the previous for-loop
end
The problem is that the program runs perfectly, and even when the values for i_testen = 4 and welke_pp = 1, the program goes to 'else' and continues the for loop. But when the next values for the if-expression comes up (being i_testen = 4 and welke_pp = 3), the program doens't jump to 'else'.
  2 Kommentare
John D'Errico
John D'Errico am 20 Dez. 2014
Please use the code formatting button to make your code readable.
Jan
Jan am 21 Dez. 2014
You have a "matrix", which is a "struct" and the elements are "cells"? These are contradictions and inconsquence confusing.

Melden Sie sich an, um zu kommentieren.

Melden Sie sich an, um diese Frage zu beantworten.

Akzeptierte Antwort

Jan
Jan am 21 Dez. 2014
Bearbeitet: Jan am 21 Dez. 2014
Of course your code does not enter the else part, when i_testen = 4 and welke_pp = 3.
if ~((i_testen == 4) & (welke_pp == 1)) | ...
((i_testen == 4) & (welke_pp == 3)) % shortend
The ~ operator matters the first condition only. So for i_testen = 4 and welke_pp = 3, the condition is true. Perhaps you want additional paranetheses?
if ~( ((i_testen == 4) && (welke_pp == 1)) || ...
((i_testen == 4) && (welke_pp == 3)) || ...
((i_testen == 4) && (welke_pp == 4)) || ...
((i_testen == 4) && (welke_pp == 5)) )
I'm used the && and operators, because the expressions are scalars, but the vector operators & and | are correct also.
Or shorter:
if i_testen ~= 4 || any(welke_pp ~= [1,3,4,5])

Weitere Antworten (1)

Star Strider
Star Strider am 20 Dez. 2014
The ‘else’ condition may not be necessary.
See if:
if ~((i_testen == 4) & (welke_pp == 1)) | ((i_testen == 4) & (welke_pp == 3)) | ((i_testen == 4) & (welke_pp == 4)) | ((i_testen == 4) & (welke_pp == 5))
. . . CODE . . .
close all %close all opened figures
end
works. The ‘else’ condition is likely implied.
  6 Kommentare
4 ältere Kommentare anzeigen
Sam
Sam am 21 Dez. 2014
I've ran your code, if I enter the values behind the if-expression, only the first one (i_testen = 4 and welke_pp = 1) works. The other ones doesn't work.
Star Strider
Star Strider am 21 Dez. 2014
Bearbeitet: Star Strider am 21 Dez. 2014
I have no idea what you want to do, so I’m not sure what to suggest. The code I wrote is designed to help you troubleshoot your code. You’ll have to experiment with your if logic to get the result you want. That’s the best I can do just now.
I would start with several large sheets of paper, then diagram on them what I want to do in various situations. (In the days when I did this for my FORTRAN programs on the back of 132-column fanfold line-printer paper, it was called a ‘flow chart’.) Write short programs to test your logic so you’re certain it will work as you want it to. Then write your program.
I’ll help as much as I can, but I can only do so much.

Melden Sie sich an, um zu kommentieren.

Kategorien

Mehr zu Loops and Conditional Statements finden Sie in Help Center und File Exchange

Tags

Community Treasure Hunt

Find the treasures in MATLAB Central and discover how the community can help you!

Start Hunting!

Translated by