初一数学题解答 已知(x+y-3)²+(x-y+4)²=0,求x²-y²的值?
1个回答
展开全部
x+y-3=0 x-y+4=0
x+y=3 x-y=-4
xx-yy=(x+y)(x-y)=3*(-4)=-12,2,x+y-3=0 x-y+4=0 2x=-1 x=-1/2 y=7/2
x²-y²=(x+y)(x-y)=3×-4=-12,2,因为(x+y-3)²≥0
(x-y+4)²≥0
要使(x+y-3)²+(x-y+4)²=0,只有:
x+y-3=0
x-y+4=0
即x+y=3
x-y=-4
上面的两个式子相乘:
x²-y²=-12,1,x+y-3=0
x-y+4=0得
x=-1/2
y=7/2,0,由题意可知:(x+y-3)²=0,x+y-3=0;(x-y+4)²=0,x-y+4=0。设x+y-3=0为(1),x-y+4=0为(2)。(1)+(2)得:2x+1=0,x=-0.5 把x=-0.5带入(1):y=3.5
因为x=-0.5,y=3.5 。所以x²=0.25,y²=12.25
x²-y²=0.25-12.25=-12,0,
x+y=3 x-y=-4
xx-yy=(x+y)(x-y)=3*(-4)=-12,2,x+y-3=0 x-y+4=0 2x=-1 x=-1/2 y=7/2
x²-y²=(x+y)(x-y)=3×-4=-12,2,因为(x+y-3)²≥0
(x-y+4)²≥0
要使(x+y-3)²+(x-y+4)²=0,只有:
x+y-3=0
x-y+4=0
即x+y=3
x-y=-4
上面的两个式子相乘:
x²-y²=-12,1,x+y-3=0
x-y+4=0得
x=-1/2
y=7/2,0,由题意可知:(x+y-3)²=0,x+y-3=0;(x-y+4)²=0,x-y+4=0。设x+y-3=0为(1),x-y+4=0为(2)。(1)+(2)得:2x+1=0,x=-0.5 把x=-0.5带入(1):y=3.5
因为x=-0.5,y=3.5 。所以x²=0.25,y²=12.25
x²-y²=0.25-12.25=-12,0,
已赞过
已踩过<
评论
收起
你对这个回答的评价是?
推荐律师服务:
若未解决您的问题,请您详细描述您的问题,通过百度律临进行免费专业咨询
