Отметь как лутшее!!! СПасибо огромное!
х^2*(3-x)/х^2-8x+16≤0, x≠4
x^2*(3-x)/(х-4)^2≤0
[tex]\left \{ {{x^{2} \leq 0} \atop {3-x\geq 0}} \right.[/tex][tex]\left \{ {{x^{2} \geq 0} \atop {3-x\leq 0}} \right.[/tex][tex]\left \{ {{x=0} \atop {x\leq 3}} \right.[/tex]
x=0
x ∈ (3, +∞)
Copyright © 2025 SCHOLAR.TIPS - All rights reserved.
Answers & Comments
Отметь как лутшее!!! СПасибо огромное!
х^2*(3-x)/х^2-8x+16≤0, x≠4
x^2*(3-x)/(х-4)^2≤0
[tex]\left \{ {{x^{2} \leq 0} \atop {3-x\geq 0}} \right.[/tex][tex]\left \{ {{x^{2} \geq 0} \atop {3-x\leq 0}} \right.[/tex][tex]\left \{ {{x=0} \atop {x\leq 3}} \right.[/tex]
x=0
x ∈ (3, +∞)