解:已知x²=1+4x,
有 x²-4x-1=0
a=1,b=-4,c=-1
b²-4ac=(-4)²-4×1×(-1)=20
当b²-4ac>0时,方程式有两个不相等的实数根x1,x2=-b±√b²-4ac/2a
x1=(-(-4)+2√5)/2=2+√5, x2=(-(-4)-2√5)/2=2-√5
则2x^4+8x³-4x²-8x+1
x1代入上式有:2×(2+√5)^4+8×(2+√5)³-4×(2+√5)²-8×(2+√5)+1
=322+144√5+184+136√5-36-16√5-16-8√5+1
=455+256√5
x2代入上式有:2×(2-√5)^4+8×(2-√5)³-4×(2-√5)²-8×(2-√5)+1
=322-144√5+184-136√5-36+16√5-16+8√5+1
=455-256√5
拿你这点真不容易啊......
x²=1+4x, x²-1=4x, x=2±√5
2x^4+8x³-4x²-8x+1
=2x²(x²-2)+8x(x²-1)+1
=2(4x+1)(4x-1)+8x*4x+1
=2(16x²-1)+32x+1
=32x²-2+32x+1
=32(1+4x)+32x-1
=32+128x+32x-1
=160x+31
=160(2±√5)+31
=320±160√5+31
=351±160√5
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