How to solve system equation { <mtable rowspacing="4pt" columnspacing="1em">

Dayanara Terry

Dayanara Terry

Answered question

2022-07-03

How to solve system equation
{ x 3 + y 3 + z 3 = x + y + z x 2 + y 2 + z 2 = x y z
x , y , z R

Answer & Explanation

trantegisis

trantegisis

Beginner2022-07-04Added 20 answers

We'll using the following notation:
s 1 = x + y + z
s 2 = x 2 + y 2 + z 2
s 3 = x 3 + y 3 + z 3
And we'll express x , y , z as root of the cubic equation
f ( x ) = a x 3 + b x 2 + c x + d
From the Vieta's formulas we know that d = x y z
From the condition we have d = s 2 and s 1 = s 3
Now use Newton's identitities and we have:
a s 1 + b = 0
b = a s 1
Now repeat the process:
a s 2 + b s 1 + 2 c = 0
a s 2 + a s 1 2 + 2 c = 0
a ( s 2 s 1 2 ) + 2 c = 0
2 c = a ( s 2 s 1 2 )
c = a ( s 2 s 1 2 ) 2
And one last time:
a s 3 + b s 2 + c s 1 + 3 d = 0
a s 1 a s 1 s 2 + a s 1 ( s 2 s 1 2 ) 2 3 s 2 = 0
a s 1 a s 1 s 2 + a s 1 ( s 2 s 1 2 ) 2 3 s 2 = 0
a s 1 ( 1 s 2 s 2 s 1 2 2 ) 3 s 2 = 0
a s 1 ( s 2 + s 1 2 + 2 2 s 2 2 ) = 3 s 2
a = 6 s 2 s 1 ( s 2 + s 1 2 + 2 2 s 2 )
Now for arbitrary s 1 and s 2 you should be able to obtain a cubic equation, which roots will satisfy the condition.
uri2e4g

uri2e4g

Beginner2022-07-05Added 1 answers

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