Напишите уравнение прямой проходящей через точки а(2; -2) и в (4; 2)

У=kx+b
А(2;-2)  В (4;2)

{2k + b = -2
{4k + b = 2

-2k = -4
2k = 4
k = 2

2k + b = -2
b = -2 - 2k = -2 - 2*2 = -2 - 4 = -6

уравнение: y = 2x - 6

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2)

sinA =5,25/14 (геом определение синуса)

x/sinA =2*8 (т синусов) => x =16*5,25/14 =6  

3)

x+3 =y+2 (описанный ч-к) => y-x=1

Диагональ по т косинусов; cos120= -0,5; cos60=0,5

x^2 +y^2 +xy =9 +4 -2*3*2*0,5 =7

(x-y)^2 =7 -3xy => 1 =7 -3xy => xy=2

(x+y)^2 =7 +xy =9 => x+y=3

4)

sinB =sin(45+30) =√2/2 *√3/2 + √2/2 *1/2 =(√6 +√2)/4

2/sin45 =AC/sinB (т синусов) => AC =2√2(√6 +√2)/4 =√3 +1

√k +1 =√3 +1 => k=3

 

5)

AB=a, AD=b

P =2(a+b) => a+b =9

S =ab sinA => ab =20

a^2 +b^2 =(a+b)^2 -2ab =81-40 =41

cosA = −√(1-sinA^2) = −3/5 (тупой угол)

BD^2 =a^2 +b^2 -2ab*cosA (т косинусов) =41 +40*3/5 =65