1. a)5 < m < 15; 5*1/5 < 1/5 m < 15*1/5; 1 < 1/5 < 3
b) 5 < -2m < 15; 5*(-2) < -2m < 15*(-2); -10 < -2m < -30; -30 < -2m < -10
c) 5 < m-6 < 15; -5+6 < m-6 < -15+6 ; 1 < m-6 < -9; -9< m-6 < 1
2. a) 2.6 <√7 <2.7; 2.6*2 < 2√7 < 2.7*2 ; 5.2 < √7 < 5.4
b)- 2.6 <-√7 < -2.7; -2,7 < -√7 < -2,6
c) 2.6 <√7 <2.7; 2+2.6 < 2+√7 < 2+2.7; 4.6 < √7 < 4.7
d)2.6 <√7 <2.7; 3-2.6 < 3-√7 <3-2.7; 0.4 <;3-√7 <0.3; 0.3 < 3-√7 < 0.4
1. a)5 < m < 15; 5*1/5 < 1/5 m < 15*1/5; 1 < 1/5 < 3
b) 5 < -2m < 15; 5*(-2) < -2m < 15*(-2); -10 < -2m < -30; -30 < -2m < -10
c) 5 < m-6 < 15; -5+6 < m-6 < -15+6 ; 1 < m-6 < -9; -9< m-6 < 1
2. a) 2.6 <√7 <2.7; 2.6*2 < 2√7 < 2.7*2 ; 5.2 < √7 < 5.4
b)- 2.6 <-√7 < -2.7; -2,7 < -√7 < -2,6
c) 2.6 <√7 <2.7; 2+2.6 < 2+√7 < 2+2.7; 4.6 < √7 < 4.7
d)2.6 <√7 <2.7; 3-2.6 < 3-√7 <3-2.7; 0.4 <;3-√7 <0.3; 0.3 < 3-√7 < 0.4
16(x^2 - 4x + 4) - 64 - 9(y^2 + 6y + 9) + 81 = 161
16(x - 2)^2 - 9(y + 3)^2 = 16
(x - 2)^2 - (y + 3)^2 / (16/9) = 1
Это гипербола с центром A(2; -3) и полуосями a = 1; b = √(16/9) = 4/3
2) y = cos(x + y)
y' = -sin(x + y)*(1 + y') = -sin(x + y) - y'*sin(x + y)
y' + y'*sin(x + y) = -sin(x + y)
y' = - sin(x+y) / (1 + sin(x+y))
3) (1+x^2) dy - 2xy dx = 0
(1+x^2) dy = 2xy dx
dy/y = 2x dx / (1+x^2)
Интегрируем обе части
ln |y| = ln |1+x^2| + ln C
y = C(1 + x^2)
Решаем задачу Коши.
y(-1) = C(1 + (-1)^2) = 2C = 4
C = 2
y = 2(1 + x^2)