[tex]\displaystyle\bf\\3x^{2} -16x+9=0 \ |:3\\\\x^{2}-\frac{16}{3}x + \ \boxed{3}=0\\\\Teorema \ Vieta \ : \ x_{1}\cdot x_{2} =3[/tex]
Ответ : Б
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[tex]\displaystyle\bf\\3x^{2} -16x+9=0 \ |:3\\\\x^{2}-\frac{16}{3}x + \ \boxed{3}=0\\\\Teorema \ Vieta \ : \ x_{1}\cdot x_{2} =3[/tex]
Ответ : Б