Answer:
No
Reasoning:
If something is a perfect cube, it is able to be put under a cube root (
![\sqrt[3]{..}](https://img.qammunity.org/2020/formulas/mathematics/middle-school/qgnfgb5fwpmgdrbw4tmlh0v1wuyyw92jw5.png)
) and will result in an integer (a non-decimal number > 0, basically).
So let's calculate
![\sqrt[3]{48}](https://img.qammunity.org/2020/formulas/mathematics/middle-school/apb9zxgfdrgj95557h5hy1siaf36yjv3jz.png)
, and see if the result is an integer.
= 3.634.......
As you can see, the result is not an integer, therefore 48 is not a perfect cube.