Finding real roots of a cubic equation
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I have the equation:
eqn = ((d^3*pi*((4251*d + 5951400)/(25*d))^(1/2))/(2*(d + 1400)))*(pi*(d^2)/4)-180 == 0
and want to find the real root/roots.
when i attempt to solve it with
x = vpasolve(eqn,d)
Matlab only return the imaginary part of the solution:
- 3.593452147062167996782934136112 - 1.3074862631155484137468498544529i
How do i find the real solution?
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Answers (3)
Roger Stafford
on 20 Dec 2016
This is an equation that can be manipulated so that d is one of the roots of a ninth degree polynomial equation of which only one of its nine roots is real.
The original equation is:
((d^3*pi*((4251*d+5951400)/(25*d))^(1/2))/(2*(d+1400)))*(pi*(d^2)/4)==180
Since 4251*d+5951400 = 4251*(d+1400), the d+1400 partially cancels with the same quantity in the denominator and we get the equation
pi^2/40*d^5*(4251/(d*(d+1400)))^(1/2)==180
or
pi^2/40*d^5*4251^(1/2) == 180*(d*(d+1400))^(1/2)
Squaring both sides and transposing gives
4251/1600*pi^4*d^10-32400*d^2-45360000*d == 0
One factor d can be factored out since d = 0 is clearly not a solution of the original equation and that finally leaves the polynomial equation
4251/1600*pi^4*d^9-32400*d-45360000 == 0
The ‘roots’ function can be used for this and it shows that there is only one real root, namely
d = 3.82617917662798
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Massimo Zanetti
on 19 Dec 2016
Edited: Massimo Zanetti
on 19 Dec 2016
To force the vpasolve finding only real solutions you cannot use assume. If you know the real solution is only one a workaround is to set search range to [-Inf,Inf]:
x = vpasolve(eqn,d,[-Inf,Inf])
x =
3.8261791766279723703687735908663
2 Comments
Massimo Zanetti
on 20 Dec 2016
For non polynomial equations there is no general rule to find all solutions. Consider using solve function. The documentation is rich of useful examples that cover many potential applications.
Walter Roberson
on 19 Dec 2016
One approach for polynomials is to use solve instead of vpasolve, to get all of the solutions, and then to use logical indexing to select the results whose imag()==0
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Walter Roberson
on 20 Dec 2016
sols = solve(eqn, x);
sols(imag(sols)~=0) = []; %remove the ones that have a non-zero imaginary component.
However, in R2016b (and perhaps some other releases), this code can fail due to a bug in the Symbolic Toolbox (I notified them of the bug a few weeks ago.) The work-around for the moment is
sols(imag(vpa(sols))~=0) = [];
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