b) x(x+1)(x+2)(x+3)=24
(x2+3x)(x2+3x+2)=24 (1)
Đặt x2+3x+1=a
Khi đó(1)<=>(a-1)(a+1)=24
a2-1=24 <=>a2=25<=>a=5;-5
a=5=>x2+3x+1=5=>x2+3x-4=0=>(x-1)(x+4)=0=>x=1,-4
a=-5=>x^2+3x+1=-5=>x2+3x+6=0=>(x+\(\frac{3}{2}\))2+\(\frac{15}{4}\)=0
=>pt vô nghiệm