How to use if statement for than one variables?

11 Ansichten (letzte 30 Tage)
Ivan Mich
Ivan Mich am 4 Jul. 2021
Bearbeitet: Sulaymon Eshkabilov am 4 Jul. 2021
I would like to set one if statement. I am using the following code:
filename2= 'OutputFile1L.xlsx';
[d2,tex]= xlsread(filename2);
a=d2(:,1);
for ii=1:numel(a)
if a(ii)==0
b(ii)==1 & c(ii)==0
elseif a(ii)==1
b(ii)==0 & c(ii)==0
elseif a==2
b(ii)==0 & c(ii)==0
else
b(ii)==nan & c(ii)==nan
end
but command window shows me
Undefined function or variable b
What is the wrong? could you please help me?

Melden Sie sich an, um diese Frage zu beantworten.

Akzeptierte Antwort

Sulaymon Eshkabilov
Sulaymon Eshkabilov am 4 Jul. 2021
Bearbeitet: Sulaymon Eshkabilov am 4 Jul. 2021
Note that for loop and "if" based calcs are very slow and inefficient.
Anyhow if indeed you wish to fix your code, then check these corrected errs with ==, & |, , e.g:
for ii=1:numel(a)
if a(ii)==0
b(ii)=1; c(ii)=0;
elseif a(ii)==1 | a(ii)==2
b(ii)=0; c(ii)=0;
else
b(ii)=nan; c(ii)=nan;
end
end
  2 Kommentare
Image Analyst
Image Analyst am 4 Jul. 2021
Bearbeitet: Image Analyst am 4 Jul. 2021
For loops are not always slower than vectorized code - that's a myth from long ago. I ran your code both ways:
d2 = rand(1000, 2);
a=d2(:,1);
% Vectorized method:
tic
Idx=find(a(:)==0 | a(:)==1 | a(:)==2);
Idx2=find(a~=0 & a~=1 & a~=2);
b(Idx)=0;
b(Idx2)=nan;
c=b;
elapsedTime1 = toc
% For loop method.
tic
for ii=1:numel(a)
if a(ii)==0 | a(ii)==1 | a(ii)==2
b(ii)=0;
else
b(ii)=nan;
end
end
c=b;
elapsedTime2 = toc
I find:
elapsedTime1 =
4.8e-05
elapsedTime2 =
1.5e-05
so your for loop code takes less than a third of the time of your vectorized code.
Of course the two codes don't do exactly the same thing. If I make them more efficient and do the comparison 1000 times, with this code:
clc; % Clear the command window.
close all; % Close all figures (except those of imtool.)
clear; % Erase all existing variables. Or clearvars if you want.
workspace; % Make sure the workspace panel is showing.
format long g;
format compact;
% Initialize variables:
a = rand(1000, 1);
b = nan(size(a));
numTrials = 1000;
vecWon = 0;
for t = 1 : numTrials
% Find where a is 0, 1, or 2 and set it = 0 there.
% Try it vectorized first.
vectorizedStartTime = tic;
linearIndexes = find(a(:)==0 | a(:)==1 | a(:)==2);
b(linearIndexes)=0;
elapsedTimeVectorized = toc(vectorizedStartTime);
% Now try it with a for loop
b = nan(size(a)); % Reset
forStartTime = tic;
for k = 1 : numel(a)
if a(k)==0 || a(k)==1 || a(k)==2
b(k)=0;
else
b(k)=nan;
end
end
elapsedTimeFor = toc(forStartTime);
fprintf('At iteration %d\n Vectorized took %.7f seconds.\n For loop took %.7f seconds.\n', ...
k, elapsedTimeVectorized, elapsedTimeFor);
% See who was faster.
if elapsedTimeVectorized < elapsedTimeFor
vecWon = vecWon + 1;
end
end
vecPercentage = 100 * vecWon / numTrials;
forPercentage = 100 * (numTrials - vecWon) / numTrials;
fprintf('--------------------------------------------------\n');
fprintf('Vectorized won %3d times out of %d = %.1f%%.\nFor loop won %3d times out of %d = %.1f%%.\n', ...
vecWon, numTrials, vecPercentage, (numTrials - vecWon), numTrials, forPercentage);
We see
--------------------------------------------------
Vectorized won 182 times out of 1000 = 18.2%.
For loop won 818 times out of 1000 = 81.8%.
Now if we improve it even further for the vectorized code by using logical indexes rather than linear indexes:
logicalIndexes = a==0 | a==1 | a==2;
b(logicalIndexes) = 0;
we see that vectorized wins the majority of the time, but not always:
--------------------------------------------------
Vectorized won 903 times out of 1000 = 90.3%.
For loop won 97 times out of 1000 = 9.7%.
Sulaymon Eshkabilov
Sulaymon Eshkabilov am 4 Jul. 2021
@Image Analyst Very Good point and discussion! "Not Always" cases are small size simulation problems which require insignifcantly small amount of sim time.

Melden Sie sich an, um zu kommentieren.

Weitere Antworten (2)

Yongjian Feng
Yongjian Feng am 4 Jul. 2021
You meant this?
if a(ii)==0
b(ii)=1;
c(ii)=0;
elseif a(ii)==1
b(ii)=0;
c(ii)=0;
elseif a==2
b(ii)=0;
c(ii)=0;
else
b(ii)=nan;
c(ii)=nan;
end
  1 Kommentar
Sulaymon Eshkabilov
Sulaymon Eshkabilov am 4 Jul. 2021
Bearbeitet: Sulaymon Eshkabilov am 4 Jul. 2021
There are a couple of ERRs in Feng's proposed code:
for ... % is missing
...
if ..
elseif a==2 % MUST be a(ii)==2
...
end
end

Melden Sie sich an, um zu kommentieren.

Sulaymon Eshkabilov
Sulaymon Eshkabilov am 4 Jul. 2021
Bearbeitet: Sulaymon Eshkabilov am 4 Jul. 2021
There are several errs in your loop code that is not advised. Just because it is slow and inefficient.
Here is an easy sol isntead of loop based code:
...
a=d2(:,1);
Idx0=find(a(:)==0);
Idx1=find(a(:)==1 | a(:)==2);
Idx2=find(a~=0 & a~=1 & a~=2);
b(Idx0)=1; c(Idx0)=0;
b(Idx1)=0; c(Idx1)=1;
b(Idx2)=nan; c(Idx2)=nan;

Kategorien

Mehr zu Matrix Indexing 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