symbolic cubic polynomial solver
Show older comments
Cubic polynomial always has a zero point on the real line, so I run something like
syms x a
solve(x^3+x^2-x+a,'real',true)
ans =
sin(atan((2*(1/27 - a^2/4)^(1/2))/a)/3) -...
1/(3*((a^2/4 - 1/27)^(1/2) - a/2)^(1/3)) + ...
sin(atan((2*(1/27 - a^2/4)^(1/2))/a)/3 - pi/3)...
- 1/(3*(a/2 - (a^2/4 - 1/27)^(1/2))^(1/3))...
- sin(atan((2*(1/27 - a^2/4)^(1/2))/a)/3)...
- sin(atan((2*(1/27 - a^2/4)^(1/2))/a)/3 - pi/3) -...
(2*3^(1/2)*cos(atan((2*(1/27 - a^2/4)...
(2*3^(1/2)*cos(atan((2*(1/27 - a^2/4)^(1/2))...
I cut the ... part b/c it's too long, but my point is that Matlab gave me 8 solutions. Can somebody tell me what is going on? Where is the fundamental theorem of algebra?
Accepted Answer
John D'Errico
on 15 Mar 2015
Hmm. Did you tell it what to solve for? Should MATLAB magically know that x was your unknown, and a only a symbolic constant, for which you have chosen not to supply a value?
solve(x^3+x^2-x+a,x)
This returns 3 solutions. A problem is that 1 or 3 of them MAY be real, depending on the value of a. Since you won't tell MATLAB what is a, it can't know yet which one(s) are real.
6 Comments
Sakai
on 15 Mar 2015
John D'Errico
on 15 Mar 2015
Edited: John D'Errico
on 15 Mar 2015
Did you try what I showed? (Yes, it gives a warning, because it has no idea what is a. I've cut out the warning, because it is long.)
solve(x^3+x^2-x+a,x)
ans =
4/(9*(((a/2 + 11/54)^2 - 64/729)^(1/2) - a/2 - 11/54)^(1/3)) + (((a/2 + 11/54)^2 - 64/729)^(1/2) - a/2 - 11/54)^(1/3) - 1/3
- (3^(1/2)*(4/(9*(((a/2 + 11/54)^2 - 64/729)^(1/2) - a/2 - 11/54)^(1/3)) - (((a/2 + 11/54)^2 - 64/729)^(1/2) - a/2 - 11/54)^(1/3))*i)/2 - 2/(9*(((a/2 + 11/54)^2 - 64/729)^(1/2) - a/2 - 11/54)^(1/3)) - (((a/2 + 11/54)^2 - 64/729)^(1/2) - a/2 - 11/54)^(1/3)/2 - 1/3
(3^(1/2)*(4/(9*(((a/2 + 11/54)^2 - 64/729)^(1/2) - a/2 - 11/54)^(1/3)) - (((a/2 + 11/54)^2 - 64/729)^(1/2) - a/2 - 11/54)^(1/3))*i)/2 - 2/(9*(((a/2 + 11/54)^2 - 64/729)^(1/2) - a/2 - 11/54)^(1/3)) - (((a/2 + 11/54)^2 - 64/729)^(1/2) - a/2 - 11/54)^(1/3)/2 - 1/3
There are THREE solutions there, as you would expect. As I pointed out, even though you WANT to insist on the solution being real, how does MATLAB know which one is real? See that if I substitute some actual value for a, I can get various numbers of real solutions. Until a is known, there is no way to resolve the problem.
vpasolve(x^3+x^2-x+0,x)
ans =
-1.6180339887498948482045868343656
0
0.61803398874989484820458683436564
vpasolve(x^3+x^2-x+2,x)
ans =
-2.0
0.5 + 0.86602540378443864676372317075294*i
0.5 - 0.86602540378443864676372317075294*i
As I pointed out, depending on the value of a, there may be 3 solutions, OR 1 of them. And that one real solution, IF there is only one of them, will vary depending on a.
Trying to tell MATLAB that the solution must be real when it has no idea what a is, this is just a waste of time.
Sakai
on 15 Mar 2015
John D'Errico
on 15 Mar 2015
Edited: John D'Errico
on 15 Mar 2015
You are not listening to me.
MATLAB CANNOT know if a solution is real, IF you do not tell it the value of a. It has no idea how many solutions there will be to be found.
When I call it as you have done...
syms x a
xsols = solve(x^3+x^2-x+a,'real',true);
(LONG set of conditions deleted.)
numel(xsols)
ans =
8
There are indeed 8 solutions returned, BUT my guess is they are not independent solutions. Read the warning message:
"Warning: The solutions are valid under the following conditions: ..."
Depending upon the value of a, some of those conditions will be true or not. But MATLAB does not know which solution is real, since it does not know what is a.
So let us see what we get...
vpa(subs(xsols,a,-23),10)
ans =
2.650704467
1.158685567 - 2.31193163*i
2.650704467
- 1.825352233 - 2.31193163*i
- 1.825352233 + 2.31193163*i
- 1.825352233 - 2.31193163*i
1.158685567 + 2.31193163*i
-3.317371133
vpa(subs(xsols,a,0),10)
ans =
0.9513673221
0.6180339887
0.6180339887
-1.618033989
-1.284700655
-0.6666666667
8.67361738e-19
-1.618033989
vpa(subs(xsols,a,100),10)
ans =
4.410160108
2.038413387 + 3.942361499*i
2.038413387 - 3.942361499*i
-5.076826775
- 2.705080054 - 3.942361499*i
- 2.705080054 + 3.942361499*i
2.038413387 - 3.942361499*i
-5.076826775
As you can see, when I try different values of a, I get different real solutions. In fact, when a was zero, as you can see, many of those solutions reduce to the same solution.
Are they all truly roots though?
xsols_0 = vpa(subs(xsols,a,0))
xsols_0 =
0.95136732208322818153792016769897
0.61803398874989484820458683436564
0.61803398874989484820458683436564
-1.6180339887498948482045868343656
-1.2847006554165615148712535010323
-0.66666666666666666666666666666667
2.7550648847397363468017262591146e-40
-1.6180339887498948482045868343656
subs(x^3 + x^2 - x + 0,x,xsols_0)
ans =
0.81481481481481481481481481481481
-2.7550648847397363468017262591146e-40
2.2958874039497802890014385492622e-40
0
0.81481481481481481481481481481481
0.81481481481481481481481481481481
-2.7550648847397363468017262591146e-40
0
So when I substituted those values back into the equation, in fact not all solutions were roots! This is true because the corresponding condition that MATLAB gave you were in fact false when a was zero.
So, yes, it gave you 8 solutions, DEPENDING on the value of a. It was not wired. Simply, as I have said many times now, it does not know what is a.
Sakai
on 15 Mar 2015
John D'Errico
on 15 Mar 2015
Good. I do admit that until I decided to do those last few things, I think there was some confusion as to why MATLAB was returning 8 solutions, or what appeared to be 8 of them.
More Answers (1)
Andrew Newell
on 15 Mar 2015
Edited: Andrew Newell
on 15 Mar 2015
I ran the same code and got 3 solutions:
syms x a
xsols = solve(x^3+x^2-x+a,'real',true);
size(xsols)
ans =
3 1
I think you're interpreting those eight lines as one solution per line, but the triple dots at the end of the line mean that the solution continues on the next line. You are really just displaying one of the three solutions.
4 Comments
Sakai
on 15 Mar 2015
Sakai
on 15 Mar 2015
Andrew Newell
on 15 Mar 2015
It appears that in 2014a, the option 'real',true didn't have any effect; but in 2014b, the engine is trying to figure out what parts of the solution are real.
Consider: in complex space, for each value of a (which, as far as solve knows might be complex) you have three complex solutions. Without 'real',true, solve is returning the equations for (real(x), imag(x)) as a function of (real(a), imag(a)) - not a line, but a surface. With 'real',true, it is trying to determine where this surface intersects imag(x) = 0. That could be any number of line segments.
Sakai
on 15 Mar 2015
Categories
Find more on Common Operations in Help Center and File Exchange
Products
Community Treasure Hunt
Find the treasures in MATLAB Central and discover how the community can help you!
Start Hunting!
