Symbolic solver yields wrong solution

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Friedrich Tuttas
Friedrich Tuttas on 31 May 2019
Edited: Friedrich Tuttas on 31 Jul 2019
Hello,
I am not sure if I am overlooking something very obvious or whether the MATLAB symbolic solver is giving me a wrong solution.
I have the following code:
syms p t
formula = 84*p^2*t^4 - 112*p^4*t^2 - 64*p^6 + 27*t^6 + (4*p^2 + t^2)^(1/2)*(4*p^2 + 9*t^2)^(1/2)*(16*p^4 - 88*p^2*t^2 + 9*t^4)
solutions = solve(formula == 0, t)
vpasolutions = vpa(solutions)
Now MATLAB 2019a gives me the following result:
formula =
84*p^2*t^4 - 112*p^4*t^2 - 64*p^6 + 27*t^6 + (4*p^2 + t^2)^(1/2)*(4*p^2 + 9*t^2)^(1/2)*(16*p^4 - 88*p^2*t^2 + 9*t^4)
solutions =
0
-p*2i
p*2i
-(p*2i)/3
(p*2i)/3
-(p*(272/27 - (64*13^(1/2))/27)^(1/2))/2
(p*(272/27 - (64*13^(1/2))/27)^(1/2))/2
-(p*((64*13^(1/2))/27 + 272/27)^(1/2))/2
(p*((64*13^(1/2))/27 + 272/27)^(1/2))/2
vpasolutions =
0
-p*2.0i
p*2.0i
-p*0.66666666666666666666666666666667i
p*0.66666666666666666666666666666667i
-0.61797697405792080417600009731734*p
0.61797697405792080417600009731734*p
-2.1575776918969228428670635119892*p
2.1575776918969228428670635119892*p
So altogether there seem to be 5 real and 4 complex solutions for any given 'p'. I am only interested in the real ones. Now I plot the graph for p = 1 using the following code:
t_values = linspace(-2.2,2.2,1000);
formula_values = subs(formula,{p,t},{1,t_values});
plot(t_values,formula_values)
grid on
I get the attached figure. Here one can see that my function should not be zero around -0.618 and +0.618, which seems to contradict the answers from the symbolic solver. Now I know that one cannot always trust a graph with discrete values but even if you decrease the step size, this does not seem to change, and wolfram alpha gives me all results except for those two ominous ones.
Furthermore, if I add the assumption that p must be positive, these ominous results also vanish:
syms p t
assume(p>0)
formula = 84*p^2*t^4 - 112*p^4*t^2 - 64*p^6 + 27*t^6 + (4*p^2 + t^2)^(1/2)*(4*p^2 + 9*t^2)^(1/2)*(16*p^4 - 88*p^2*t^2 + 9*t^4)
solutions = solve(formula == 0, t)
vpasolutions = vpa(solutions)
yields
formula =
84*p^2*t^4 - 112*p^4*t^2 - 64*p^6 + 27*t^6 + (4*p^2 + t^2)^(1/2)*(4*p^2 + 9*t^2)^(1/2)*(16*p^4 - 88*p^2*t^2 + 9*t^4)
solutions =
0
-p*2i
p*2i
-(p*2i)/3
(p*2i)/3
-(p*((64*13^(1/2))/27 + 272/27)^(1/2))/2
(p*((64*13^(1/2))/27 + 272/27)^(1/2))/2
vpasolutions =
0
-p*2.0i
p*2.0i
-p*0.66666666666666666666666666666667i
p*0.66666666666666666666666666666667i
-2.1575776918969228428670635119892*p
2.1575776918969228428670635119892*p
In my understanding, this should not happen since before I made an assumption about p, MATLAB should give me the general solution that is valid for all p (even the positive ones). Now that I made an assumption, the number of solutions should not change.
Can you spot a mistake? Did I not understand the behavior of 'solve' correctly? Or is the symbolic solver really faulty?
  2 Comments
Alex Mcaulley
Alex Mcaulley on 18 Jun 2019
Edited: Alex Mcaulley on 18 Jun 2019
Really interesting!
syms p t
formula = 84*p^2*t^4 - 112*p^4*t^2 - 64*p^6 + 27*t^6 + (4*p^2 + t^2)^(1/2)*(4*p^2 + 9*t^2)^(1/2)*(16*p^4 - 88*p^2*t^2 + 9*t^4)
solutions = solve(formula == 0, t)
solutions =
0
-p*2i
p*2i
-(p*2i)/3
(p*2i)/3
-(p*(272/27 - (64*13^(1/2))/27)^(1/2))/2
(p*(272/27 - (64*13^(1/2))/27)^(1/2))/2
-(p*((64*13^(1/2))/27 + 272/27)^(1/2))/2
(p*((64*13^(1/2))/27 + 272/27)^(1/2))/2
solutions 6 and 7 are not solutions in fact:
simplify(subs(formula,t,solutions(7)))
ans =
-(32768*p^6*(25*13^(1/2) - 86))/729 %This is only solution for p == 0
And then, when you assume that p can not be 0, this solution disappears (because for p ~= 0 is not a solution)
John D'Errico
John D'Errico on 18 Jun 2019
Well, they are technically solutions, if you recognize that terms like
(4*p^2 + t^2)^(1/2)
have TWO branches.
There is probably a way to tell MATLAB to follow only the positive branch.

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Answers (1)

John D'Errico
John D'Errico on 18 Jun 2019
Edited: John D'Errico on 18 Jun 2019
It seems a subtle thing. We need to "branch" out from our preconceptions. ;-)
pretty(solutions)
/ 0 \
| |
| -p 2i |
| |
| p 2i |
| |
| p 2i |
| - ---- |
| 3 |
| |
| p 2i |
| ---- |
| 3 |
| |
| -#1 |
| |
| #1 |
| |
| -#2 |
| |
\ #2 /
where
/ 272 64 sqrt(13) \
p sqrt| --- - ----------- |
\ 27 27 /
#1 == ---------------------------
2
/ 64 sqrt(13) 272 \
p sqrt| ----------- + --- |
\ 27 27 /
#2 == ---------------------------
2
So #1 contains the questionable solutions. Are they? Are they spurious? It looks like case #1 converts to case #2, if we take the negative branch of the sqrt for sqrt(13).
It looks like solutions [1 2 3 4 5 8 9] all trivially satisfy the original problem, with 6 and 7 a problem.
simplify(subs(formula,t,solutions))
ans =
0
0
0
0
0
-(32768*p^6*(25*13^(1/2) - 86))/729
-(32768*p^6*(25*13^(1/2) - 86))/729
0
0
But suppose we look carefully at formula?
formula
formula =
84*p^2*t^4 - 112*p^4*t^2 - 64*p^6 + 27*t^6 + (4*p^2 + t^2)^(1/2)*(4*p^2 + 9*t^2)^(1/2)*(16*p^4 - 88*p^2*t^2 + 9*t^4)
In there, I see two square roots. When you take a square root, you can take the positive or the negative branch. Either is equally valid. So for any values of p and t, if I write Q as
Q = (4*p^2 + t^2)^(1/2)
then we might have intended -Q also, and that expression raised to the 1/2 power becomes ambiguous.
Let me now change formula, swapping the sign in front of the square rooted terms. This allows either of those 1/2 powers to act as if we took the negative branch.
>> formulamod = 84*p^2*t^4 - 112*p^4*t^2 - 64*p^6 + 27*t^6 - (4*p^2 + t^2)^(1/2)*(4*p^2 + 9*t^2)^(1/2)*(16*p^4 - 88*p^2*t^2 + 9*t^4)
formulamod =
84*p^2*t^4 - 112*p^4*t^2 - 64*p^6 + 27*t^6 - (4*p^2 + t^2)^(1/2)*(4*p^2 + 9*t^2)^(1/2)*(16*p^4 - 88*p^2*t^2 + 9*t^4)
Now subs in the solutions.
>> simplify(subs(formulamod,t,solutions))
ans =
-128*p^6
0
0
0
0
0
0
(32768*p^6*(25*13^(1/2) + 86))/729
(32768*p^6*(25*13^(1/2) + 86))/729
So solutions #6 and #7 trivially solve formulamod. Effectively, solutions #6 and #7 solve the problem where EXACTLY one of the terms in formula (where a 1/2 power was taken) follows the negative branch of the square root. So all 9 solutions are technically solutions to the problem, as long as either branch in those squre roots is acceptable.
Does this get to the "root" of the matter? Perhaps. Don't just "woodenly" think a square root is always a positive number. Should I just "leaf" things alone? ;-) (Sorry about that.)
  4 Comments
Friedrich Tuttas
Friedrich Tuttas on 20 Jun 2019
Edited: Friedrich Tuttas on 20 Jun 2019
I do not quite understand what you mean. You say "The function y = sqrt(x) is a single valued thing..." but also "... there is some ambiguity that can creep into an implicit function with those fractional powers."
To me those two statements disagree. Only an ambiguous function (which, according to the both of us, the square root is not) can lead to ambiguity.
Are you maybe trying to say the following? "While solving an equation, one might take steps that create solutions that are not actually solutions of the original problem." I completely agree with that. A simple example would be: (1)
The first idea could be to square the entire equation, which leads to: (2)
Now this equation has the two solutions: and
However, if we insert these in the original problem we get:
, which is correct, and
, which is false.
I say the latter is false since I used that the square root function "is a single valued thing" and always only yields the positive "branch". We get a false solution here because we squared the equation in the first step. Squaring an equation like (1) as well as multiplying it by a function of x add solutions that do solve the new equation (2) but not necessarily solve (1). This is still a valid way to solve an equation because oftentimes the new equation is easier to understand. One just has to check the results in the end and remove the ones that were artificially added.
If you are saying that MATLAB might have chosen a similar way to solve my equation, that still means that it forgot to check the solutions.
I want to sum this up:
I had an equation and asked MATLAB to find the solutions for t for which this equation is satisfied. Among others, it gave me the solutions and for which MATLAB itself agreed that and . If I ask MATLAB to show me a t that satisfies and it gives me , for which , there is something fishy going on. This, to me, ultimately shows that and are not solutions to my original problem. I have presented the following explanations:
1) MATLAB might use different definitions for the square root function. It might define it as the ambiguous two-branch function within the symbolic solver but defines it as the unambiguous principal branch function for all the arithmetic while trying to figure out what and yield. I have started to disagree with this explanation because, if that were the case, the symbolic solver would have to spit out two solutions every time one uses a square root (which it does not, as can be seen in the example of my last post).
2) and might be solutions to an equation that was created (by squaring or multiplying by a function of x or yet another non-equivalence-transformation) while trying to solve my problem. But MATLAB forgot to check whether they actually solve the original problem.
As for the other problem with the constraint on p. As I said in my starting post: Without any assumption, MATLAB should give me the general solution that is valid for any p. If I now constrain p to the positive (real) numbers, all solutions should still be valid.
EDIT:
I tried the following code
syms x
formula = x - sqrt(2*x + 3)
solve(formula==0,x)
and got the following result
formula =
x - (2*x + 3)^(1/2)
ans =
3
So MATLAB seems to agree that there is only one solution to the equation (1). Now, if I turn the 3 in the equation into a symbolic varbiable y, the following happens:
syms x y
formula = x - sqrt(2*x + y)
solve(formula==0,x)
yields
formula =
x - (2*x + y)^(1/2)
ans =
(y + 1)^(1/2) + 1
1 - (y + 1)^(1/2)
Two solutions! So for an undefined y there are apparently more solutions than for . This should not happen! I should be able to insert into the two solutions and get all solutions for this case. But instead of (as in the first code snippet) I get and ! Here, MATLAB contradicts itself.
Friedrich Tuttas
Friedrich Tuttas on 31 Jul 2019
Edited: Friedrich Tuttas on 31 Jul 2019
It has been a while but I just found this video which might clarify things for you:
The square root is not ambiguous!

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