题目内容
计算:
(1)|-1|-2+(π-3)0-2-2;
(2)[(x-y)2-(x-y)2]÷(-2xy)
(1)|-1|-2+(π-3)0-2-2;
(2)[(x-y)2-(x-y)2]÷(-2xy)
(1)原式=1-2+1-
=-
;
(2)原式=(x2-2xy+y2-x2+2xy-y2)÷(-2xy)=0.
| 1 |
| 4 |
| 1 |
| 4 |
(2)原式=(x2-2xy+y2-x2+2xy-y2)÷(-2xy)=0.
练习册系列答案
相关题目
