Tìm nghiệm của bất phương trình với $x\in Z^+$:
$\frac{A^{4}_{x} }{A^{3}_{x+1}-C^{x-4}_{x}  }\geq  \frac{24}{23}  $ thỏa mãn $\left| {x} \right|\leq  4$
Điều kiện:    $x \geq  4$.

Ta có:
$$\dfrac{23}{24}\leq  \dfrac{A^{3}_{x+1} }{A^{4}_{x} }-\dfrac{C^{x-4}_{x} }{A^{4}_{x} }\Leftrightarrow \dfrac{23}{24} \leq  \dfrac{A^{3}_{x+1} }{A^{4}_{x} }-\dfrac{C^{4}_{x} }{A^{4}_{x} }\ \ \ \   ( \text{do}  C^{4}_{x}=C^{x-4}_{x})  $$
hay $\dfrac{23}{24}\leq  \dfrac{(x+1)}{(x-3)(x-2)}-\dfrac{1}{4!} \Leftrightarrow  1 \leq\dfrac{x+1}{(x-3)(x-2)} \Leftrightarrow (x-3)(x-2)\leq  x+1 $

hay $x^2-6x+5 \leq  0 \Rightarrow 1 \leq  x \leq  5$

Từ $\begin{cases}1 \leq  x \leq  5 \\-4 \leq  x \leq  4 \end{cases}\Leftrightarrow 1 \leq  x \leq  4.   $

Kết hợp với điều kiện ta được $x=4$.

Đáp số:
$x=4$

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