Следующая версия | Предыдущая версия |
math-public:metod_intervalov_chetnaya-tochka [2016/06/22 17:31] – создано labreslav | math-public:metod_intervalov_chetnaya-tochka [2020/03/18 21:04] (текущий) – labreslav |
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| =====Четная точка===== |
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| ^ Номер ^ Условие ^ Ответ ^ |
| | \\ 1. | \\ $ 5x^2>x^4 $\\ | \\ $ (-\sqrt{5}; 0)\cup(0, \sqrt{5}) $ | |
| | \\ 2. | \\ $ \dfrac{5x^2-4x}{(11-2x)^2}\leqslant0 $\\ | \\ $ \left[0; \dfrac{4}{5}\right] $ | |
| | \\ 3. | \\ $ (5-x)(x^2-11x+30)^2\leqslant0 $\\ | \\ $ [5; +\infty) $ | |
| | \\ 4. | \\ $ (x^2-12x+32)(x^2-24x+144)>0 $\\ | \\ $ (-\infty; 4)\cup(8; 12)\cup(12; +\infty) $ | |
| | \\ 5. | \\ $ \dfrac{(x^2-17x+66)^2(6-x)}{(3x+2)^2(9x^2-4)}<0 $\\ | \\ $ \left(-\dfrac{2}{3}; \dfrac{2}{3}\right)\cup(6; 11)\cup(11; +\infty) $ | |
| | \\ 6. | \\ $ \dfrac{x+14}{x-2}+\dfrac{x-4}{x}<0 $\\ | \\ $ (0; 2) $ | |
| | \\ 7. | \\ $ \dfrac{x+6}{x+3}-\dfrac{x+5}{3-x}\leqslant\dfrac{x^2+9x-4}{x^2-9} $\\ | \\ $ (-3; 3) $ | |
| | \\ 8. | \\ $ \dfrac{12}{(x^2-7x+10)(x-1)}>\dfrac{2x-8}{x-1}-\dfrac{x-1}{x-2}-\dfrac{x-3}{x-5} $\\ | \\ $ (1; 2)\cup(5; +\infty) $ | |
| | \\ 9. | \\ $ \dfrac{1}{x+4}\leqslant\dfrac{2}{4x+15}+\dfrac{1}{x+6} $\\ | \\ $ (-6; -4)\cup\left(-\dfrac{15}{4}; +\infty\right) $ | |
| | \\ 10. | \\ $ \dfrac{43 x+74}{x^2-4}+\dfrac{17-4 x}{x-2}<\dfrac{52-4x}{x-1} $\\ | \\ $ (-\infty; -5)\cup(-5; -2)\cup(1; 2) $ | |
| | \\ 11. | \\ $ \dfrac{5}{x-3}-\dfrac{x^2+18}{x^3-27}<\dfrac{x}{x^2+3x+9} $\\ | \\ $ (-\infty; -3)\cup(-3; 3) $ | |
| | \\ 12. | \\ $ \dfrac{(x^2+4x)^2-(4x^2-x)^2}{(25x^2+30x+9)^2}>0 $\\ | \\ $ \left(-\dfrac{3}{5}; 0\right)\cup\left(0; \dfrac{5}{3}\right) $ | |
| | \\ 13. | \\ $ \left(\dfrac{x-5}{x+3}\right)^2>\left(\dfrac{x-5}{x-8}\right)^2 $\\ | \\ $ (-\infty; -3)\cup\left(-3; \dfrac{5}{2}\right) $ | |
| | \\ 14. | \\ $ \dfrac{(x^2-16x+48)(x^2-14x+24)}{(x+5)^3(x^2-25)}<0 $\\ | \\ $ (-\infty; -5)\cup(-5; 2)\cup(4; 5) $ | |
| | \\ 15. | \\ $ \dfrac{19 x+44}{(x^2+4)}-\dfrac{25}{2 (x-2)}+\dfrac{3}{2 (x+2)}>0 $\\ | \\ $ (-2; 2)\cup(4; +\infty) $ | |
| | \\ 16. | \\ $ \dfrac{x+3}{x}\cdot\left(\dfrac{10 (2 x-1)}{x^2+1}+x-\dfrac{12}{x}+6\right)\leqslant0 $\\ | \\ $ (-\infty; 0)\cup(0; 1] $ | |
| | \\ 17. | \\ $ \dfrac{2(7x-52)}{x^2+4}+16\leqslant\dfrac{7}{2-x}-\dfrac{27}{x+2} $\\ | \\ $ [-5; -2)\cup[0; 2) $ | |
| | \\ 18. | \\ $ \dfrac{x+4}{x-3}-\dfrac{1}{x^2+3x+9}>\dfrac{x^2+11x+39}{x^3-27} $\\ | \\ $ (-\infty; -3)\cup(-3; 0)\cup(3; +\infty) $ | |
| | \\ 19. | \\ $ 4x^2+24x+\dfrac{625}{x-5}\geqslant\dfrac{1}{x-1}-124 $\\ | \\ $ (-\infty; 1)\cup(5; +\infty) $ | |
| | \\ 20. | \\ $ \dfrac{2}{2x^2+x-3}-\dfrac{1}{9x^2+6x+1}\geqslant\dfrac{3}{(3x+1)(1-x)} $\\ | \\ $ \left(-\infty; -\dfrac{3}{2}\right)\cup\left[\dfrac{-11-\sqrt{2}}{17}; \dfrac{\sqrt{2}-11}{17}\right]\cup(1; +\infty) $ | |
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