How does the MATLAB calculate the arctan?
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Hello all,
I have solved an initial value problem and I have gotten the following equation for that:
theta=(c_0/c_1)- (2/c_1)*atan( exp(-a*c_1*t)*tan((c_0-c_1*theta_0)/2) )
where
c_0=7*pi/6; c_1=0.3; a=0.055; theta_0=0;
and
t=[0:0.01:100];
I do expect the MATLAB returns theta=0 for t=0. In other words what I expect to see is:
theta(1)=0
because for t=0, the first equation can be simplified and as a result we have: theta=theta_0 : independent of c_0,c_1(~=0),and a.
but MATLAB returns something else:
theta(1)=20.9440
I would be grateful if somebody could explain me how I can get what I expect to get?
thanks a lot, Vahid
Réponse acceptée
Matt Tearle
le 9 Fév 2012
All inverse trigonometry functions return to a specific limited range, because trig functions are periodic. Hence, if x = 9*pi/2, then sin(x) will be 1, so asin(sin(x)) will be pi/2, not 9*pi/2. That's what's happening here -- atan returns values between -pi/2 and pi/2 (see doc atan):
(c_0-c_1*theta_0)/2 % ans = 1.8326 > pi/2
tan((c_0-c_1*theta_0)/2)
atan(tan((c_0-c_1*theta_0)/2))
atan(tan((c_0-c_1*theta_0)/2)) + pi
Plus de réponses (1)
Wayne King
le 9 Fév 2012
Why do you think it simplifies like that?
for t=0 and theta_0= 0, your expression evaluates to
(c_0/c_1)- (2/c_1)*atan(tan(c_0/2))
which is 20.9440
3 commentaires
Matt Tearle
le 9 Fév 2012
I think the point is that Vahid expects atan(tan(x)) to return x, in which case this simplifies to c0/c1 - (2/c1)*(c0/2) = c0/c1 - c0/c1 = 0.
Vahid
le 9 Fév 2012
Wayne King
le 9 Fév 2012
Oh, I see :), yes, then what Matt said.
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