필터 지우기
필터 지우기

Combine multiple if statements for something more compact

조회 수: 4 (최근 30일)
DIP
DIP 2018년 2월 19일
댓글: Roger Stafford 2018년 2월 22일
Friends,
I'm trying to refine my code.It works fine but I have four if conditions which I want to make more efficient. Is there an alternative way to do it?
i=1;
while (VMPH<=60)
% Vehicle speed
t(i+1) = t(i)+delt;
Vmps(i+1) = Vmps(i)+((delt*(Facc(i)))/Vm);
VMPH(i+1) = Vmps(i+1)/0.44704;
% Vehicle forces
Fr(i+1) = Fr(1);
Fd(i+1) = 0.5*Af*Cd*(Vmps(i+1))^2;
% Speed conditions
ig(i+1) = 3.78;
N(i+1) = Vmps(i+1)*io*ig(i+1)*60/(pi*Dt);
if N(i+1) > 2150
ig(i+1) = 2.06;
N(i+1) = Vmps(i+1)*io*ig(i+1)*60/(pi*Dt);
end
if N(i+1) > 2150
ig(i+1) = 1.58;
N(i+1) = Vmps(i+1)*io*ig(i+1)*60/(pi*Dt);
end
if N(i+1) > 2150
ig(i+1) = 1.21;
N(i+1) = Vmps(i+1)*io*ig(i+1)*60/(pi*Dt);
end
if N(i+1) > 2150
ig(i+1) = 0.82;
N(i+1) = Vmps(i+1)*io*ig(i+1)*60/(pi*Dt);
end
% Power and performance
Tao_b(i+1) = interp1(Speed,Torque,N(i+1));
Tao_w(i+1)= Tao_b(i+1)*io*ig(i+1)*etadrive;
Ft(i+1) = Tao_w(i+1)/Dt*2;
Pb(i+1) = 2*pi*Tao_b(i+1)*N(i+1)/60;
% Acceleration force
Facc(i+1) = Ft(i+1)-Fd(i+1)-Fr(i+1);
i=i+1;
end
Thank You!
  댓글 수: 10
이전 댓글 8개 표시
DIP
DIP 2018년 2월 19일
So i define a while loop within a while loop?
M
M 2018년 2월 21일
Why not ?

댓글을 달려면 로그인하십시오.

이 질문에 답변하려면 로그인하십시오.

채택된 답변

Jeff Miller
Jeff Miller 2018년 2월 19일
Maybe something like this:
IGVals = [3.78 2.06 1.58 1.21 0.82];
CurrentIG = 1;
i=1;
while (VMPH<=60)
...
% Speed conditions
ig(i+1) = IGVals(CurrentIG);
N(i+1) = Vmps(i+1)*io*ig(i+1)*60/(pi*Dt);
if N(i+1) > 2150
CurrentIG = CurrentIG + 1;
ig(i+1) = IGVals(CurrentIG);
N(i+1) = Vmps(i+1)*io*ig(i+1)*60/(pi*Dt);
end
% Power and performance
...
  댓글 수: 1
DIP
DIP 2018년 2월 21일
편집: DIP 2018년 2월 21일
Jeff, wouldnt the line
ig(i+1) = IGVals(CurrentIG);
throw dimension mismatch error ? Edit : It does throw a index exceeds bounds error.

댓글을 달려면 로그인하십시오.

추가 답변 (1개)

Roger Stafford
Roger Stafford 2018년 2월 19일
편집: Roger Stafford 2018년 2월 19일
You can replace the part of the code after "%Speed Conditions" but before "% Power and performance" by these lines:
t = Vmps(i+1)*io*60/(pi*Dt);
x = [3.78,2.06,1.58,1.21,0.82];
ig(i+1) = x(sum(2150<(x(1:4)*t))+1);
N(i+1) = ig(i+1)*t;
They should produce an equivalent result.
  댓글 수: 2
DIP
DIP 2018년 2월 21일
편집: DIP 2018년 2월 21일
Roger, i get an error Matrix dimensions must agree for the third line of your suggestion.
Roger Stafford
Roger Stafford 2018년 2월 22일
@DIP: That line should work. The expression
sum(2150<(x(1:4)*t))+1
should provide an integer value ranging from 1 to 5. This in turn should be a valid index in the vector x. You can do some checking by writing
ix = sum(2150<(x(1:4)*t))+1;
disp(ix)
to display the values of ix. By the way, it is assumed that the variable t is a scalar. If not, you would probably get a similar error message at the ix calculation.

댓글을 달려면 로그인하십시오.

카테고리

Help CenterFile Exchange에서 Matrix Indexing에 대해 자세히 알아보기

태그

Community Treasure Hunt

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

Start Hunting!

Translated by