trygonometria
Julek: TRYGONOMETRIA 2 ! Proszę to sprawdzić :
2cos
2x − sin2x = 0
2cos
2x − 2sinxcosx = 0
2cosx (cosx − sinx) = 0
| | π | |
cosx = 0, dla x = |
| + kπ, k∊C
|
| | 2 | |
| | π | |
cosx = sinx dla x = |
| + 2kπ, k∊C
|
| | 4 | |
| | π | | π | |
x = |
| + kπ, k∊C lub x = |
| + 2kπ, k∊C |
| | 2 | | 4 | |
23 lut 22:00
miki:
cosx = sinx => x = π4 + k*π , k€C
23 lut 22:23