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计算.例如:求点P(﹣2,1)到直线y=x+1的距离.
解:因为直线y=x+1可变形为x﹣y+1=0,其中k=1,b=1.
所以点P(﹣2,1)到直线y=x+1的距离为
.根据以上材料,求:
(1)点P(1,1)到直线y=3x﹣2的距离,并说明点P与直线的位置关系;
(2)点P(2,﹣1)到直线y=2x﹣1的距离;
(3)已知直线y=﹣x+1与y=﹣x+3平行,求这两条直线的距离.
同类型试题
y = sin x, x∈R, y∈[–1,1],周期为2π,函数图像以 x = (π/2) + kπ 为对称轴
y = arcsin x, x∈[–1,1], y∈[–π/2,π/2]
sin x = 0 ←→ arcsin x = 0
sin x = 1/2 ←→ arcsin x = π/6
sin x = √2/2 ←→ arcsin x = π/4
sin x = 1 ←→ arcsin x = π/2
y = sin x, x∈R, y∈[–1,1],周期为2π,函数图像以 x = (π/2) + kπ 为对称轴
y = arcsin x, x∈[–1,1], y∈[–π/2,π/2]
sin x = 0 ←→ arcsin x = 0
sin x = 1/2 ←→ arcsin x = π/6
sin x = √2/2 ←→ arcsin x = π/4
sin x = 1 ←→ arcsin x = π/2
