Tìm x :

a) 35 + 3. |x| = 50

3.|x|=50-35

3.|x|=15

|x|=15:3

|x|=5

x=5 hoặc x=-5

b)72 - [41 - (2x - 5) ]- 2³.5

41-(2x-5)=72-40

41-(2x-5)=32

2x-5=41-32

2x-5=9

2x=9+5

2x=14

x=14:2

x=7

c) 70 - 5 (x - 3) = 45

5(x-3)=70-45

5(x-3)=25

x-3=25:5

x-3=5

x-5+3

x=8

cái dấu [] là dấu đối

a)\(x+12=-23+5\)

\(< =>x+12+23-5=0\)

\(< =>x+30=0\)

\(< =>x=-30\)

i) \(2345-1000\div\left[19-2\left(21-18\right)^2\right]\)

\(=\)\(2345-1000\div\left[19-2.3^2\right]\)

\(=\)\(2345-1000\div\left[19-2.9\right]\)

\(=\)\(2345-1000\div\left[19-18\right]\)

\(=\)\(2345-1000\div1\)

\(=\)\(2345-1000\)

\(=\)\(1345\)

j) \(128-\left[68+8\left(37-35\right)^2\right]\div4\)

\(=\)\(128-\left[68+8.2^2\right]\div4\)

\(=\)\(128-\left[68+8.4\right]\div4\)

\(=\)\(128-\left[68+32\right]\div4\)

\(=\)\(128-100\div4\)

\(=\)\(128-25\)

\(=\)\(3\)

k) \(568-\left\{5\left[143-\left(4-1\right)^2\right]+10\right\}\div10\)

\(=\)\(568-\left\{5\left[143-3^2\right]+10\right\}\div10\)

\(=\)\(568-\left\{5\left[143-9\right]+10\right\}\div10\)

\(=\)\(568-\left\{5.134+10\right\}\div10\)

\(=\)\(568-\left\{670+10\right\}\div10\)

\(=\)\(568-680\div10\)

\(=\)\(568-68\)

\(=\)\(500\)

a) \(107-\left\{38+\left[7.3^2-24\div6+\left(9-7\right)^3\right]\right\}\div15\)

\(=\)\(107-\left\{38+\left[7.3^2-24\div6+2^3\right]\right\}\div15\)

\(=\)\(107-\left\{38+\left[7.9-4+8\right]\right\}\div15\)

\(=\)\(107-\left\{38+\left[63-4+8\right]\right\}\div15\)

\(=\)\(107-\left\{38+67\right\}\div15\)

\(=\)\(107-105\div15\)

\(=\)\(107-7\)

\(=\)\(7\)

b) \(307-\left[\left(180-160\right)\div2^2+9\right]\div2\)

\(=\)\(307-\left[20\div4+9\right]\div2\)

\(=\)\(307-\left[5+9\right]\div2\)

\(=\)\(307-14\div2\)

\(=\)\(307-7\)

\(=\)\(300\)

c) \(205-\left[1200-\left(4^2-2.3\right)^3\right]\div40\)

\(=\)\(205-\left[1200-\left(16-6\right)^3\right]\div40\)

\(=\)\(205-\left[1200-10^3\right]\div40\)

\(=\)\(205-\left[1200-1000\right]\div40\)

\(=\)\(205-200\div40\)

\(=\)\(205-5\)

\(=\)\(200\)

a) Ta có : \(\frac{-2}{x}=\frac{y}{3}\Leftrightarrow xy=-6\) 

Vì x < 0 < y nên

b) Ta có : \(\frac{x-3}{y-2}=\frac{3}{2}\)

\(\Leftrightarrow2\left(x-3\right)=3\left(y-2\right)\)

\(\Leftrightarrow2x-6=3y-6\)

\(\Leftrightarrow2x=3y\)

Mà x - y = 4 => x = 4 + y,do đó \(2\left(4+y\right)=3y\)

=> 8 + 2y = 3y

=> 3y - 2y = 8

=> y = 8

Thay y = 8 vào x - y = 4 ta có :

x - 8 = 4 => x = 4 + 8 = 12

Vậy x = 12,y = 8

a. 5² + (x+3) = 5²

=> x + 3    = 5² - 5²

=>  x + 3   =  0

=>  x  = -3

b. 2³ + (x-3²) = 5³ - 4³

=> 8 + (x-9) =  125 - 64

=> x - 9 = 125 - 64 - 8

=> x - 9 =  53

=> x    =  53 + 9

=> x    =   62

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