dc.identifier.citation |
Dharmasiri, K.G.E.U., Dahanayaka, S.D. and Piyadasa, R.A.D., 2012. On the Integer Roots of Polynomial Equations, Proceedings of the Annual Research Symposium 2012, Faculty of Graduate Studies, University of Kelaniya, pp 39-40. |
en_US |
dc.description.abstract |
Integer solutions of polynomial equations are very important in number theory. However, solutions of
general polynomial equations of degree five or higher than five cannot be solved in radicals due to
Abel-Ruffini theorem. Even in case of a quadratic equation, it is not easy at all to discard all integer
solutions without knowing the coefficients of the independent variable. For example, the simple
cubic 5 12 0 3 2 q bx x x , where 1) , 2( q , has no integer roots. But, even in this case, it is not
easy to justify this fact right away. The simple theorem is given in this paper which is capable of
discarding integer roots of this equation at once. This theorem and the lemma [1] which was used in a
previous paper are capable of discarding all integer roots of a special class of polynomial equations of
any degree.
Solution of polynomial equations
First of all we consider simple statements with respect to the quadratic equation
0 2 ax bx c (1)
The equation (1) has no integer roots if c ba, , all are odd or c is odd and ba, are of the same parity.
In general, the polynomial equation
... 0, 1
1
0 1
n n
n n a x a x a x a
has no integer roots if na is odd and 0 1 1 , ,..., n a a a are even. Let us call this simple theorem, the
theorem of odd parity. This follows at once since zero is even and integer roots of the equation are
odd factor of n a .
From (1) and the theorem of odd parity, we can deduce that b 4ac 2 cannot be an integer when
a,b,c all are odd.
Now consider the polynomial equation of the form
0 p p x pbx c (2)
It can be shown that this polynomial equation (2) has no integer roots for any odd prime p ,
where (p,b) (p,c) 1. By the theorem of odd parity, the equation has no integer roots when c and
b are odd. If a is an integer root of the equation, then we must have
a c pba 0
It is clear that 0(mod ) 2 a c p p p . This condition can’t be satisfied since (ba, p) 1 and hence
the equation (2) cannot have integer roots.
The equation of the type
0, p m p p pm x p bx c d p (3)
where 1m , 1) , ( pcd , has no integer roots.
If x is an integer root, ) (mod 0 p p m x c p and therefore 0(mod ) 1 m x c p and we can write
j pc x m1 , where j is an integer co-prime to .p
Now, we can write
m p m m p p pm c p j p b c p j c d p [( ) ]( ) 1 1 1
and hence we must have
0 pm p p p pm p j d p
which implies p divides j . This is a contradiction and we deduce that the equation (3) has no integer
roots. |
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