A=a+42-70+18-42-18-a

A=(a-a) + (42-42) +( 18-18) - 70

A=   0    -     0      +        0     -  70

A =              -70

A= a+42 +18-70 - 42 -18 -a

A= (a-a) + (42-42)+(18-18) + 72

A= 0+0+0+72

A= 72

a, A = a + ( 42 - 70 + 18 ) - ( 42 + 18 + a )

    A = a + 42 - 70 + 18 - 42 - 18 - a

    A = ( a - a ) + ( 42 - 42 ) + ( 18 - 18 ) - 70

    A = 0 + 0 + 0 - 70 

    A = -70

b, B = a + 30 + 12 - ( -20 ) + ( -12 ) - ( 2 + a )

    B = a + 30 + 12 + 20  - 12 - 2 - a

    B = ( a - a ) + ( 30 + 20 ) + ( 12 - 12 ) - 2

    B = 50 - 2

    B = 48

Chúc bạn học tốt!  

A = a + 42 -70 +18 - 42 - 18 - a

A = a + (-70) - a

A = a - 70 - a

B = a + 30 + 12 + 20 - 12 - 2 - a

B = a + 48 - a

a, (a+b) -( b+c) +(a+c)

= a +b-b-c +a+c

= 2a

tính

a, bỏ ngoặc ta đc giá trị là 70

b giá trị là 50-2

=48

chúc bn học giỏi

a) (a +b) - (b+c) +(a+c)

= a+b-b-c+a+c

= (a+a)+(b-b)+(c-c)

= 2a+0+0

=2a

b) a+(42+70+18)-(42+18+a)

= a+42+70+18-42-18-a

=(a-a)+(42-42)+(18-18)+70

=0+0+0+70

=70

C) a+30+12-(-20)+(-12)-(2+a)

=a+30+12+20-12-2-a

=(a-a)+(12-12)+(30+20-2)

=0+0+48

=48

\(A=a+\left(42-70+18\right)-\left(42+18-a\right)\)

\(A=a+42-70+18-42-18-a\)

\(A=\left(a-a\right)+\left(42-42\right)+\left(18-18\right)-70\)

\(A=0+0+0-70=-70\)

mk cần câu c bạn nhé

Ta có: \(\left(x-18\right)-42=\left(23-43\right)-\left(70+x\right)\)

\(\Leftrightarrow x-18-42=23-43-70-x\)

\(\Leftrightarrow x-60=-90-x\)

\(\Leftrightarrow x+x=-90+60\)

\(\Leftrightarrow2x=-30\)

hay x=-15

Vậy: x=-15

\(\left(x-18\right)-42=\left(23-43\right)-\left(70+x\right)\)

\(\Leftrightarrow x-18-42=-20-70-x\)

\(\Leftrightarrow x-60=-90-x\)

\(\Leftrightarrow x+x=-90+60\)

\(\Leftrightarrow2x=-30\)

\(\Leftrightarrow x=-15\)

a) A = a + (42-70+18) - (42+18+a)

        = a + 42 - 70 + 18 - 42 - 18 - a

        = (a-a) + (42-42) + (18-18) - 70

        = 0 + 0 + 0 - 70 = -70.

Vậy A = -70.

b) B = a + 30 + 12 - (-20) + (-12) - (2+a)

        = a + 30 + 12 + 20 - 12 - 2 - a

        = (a-a) + (12-12) + (30+20-2)

        = 0 + 0 + (50-2)

        = 50 - 2 = 48.

Vậy B = 48.

c) C = (x-y+z) - (x-y-z) - (2x+y)

        = x - y + z - x + y + z - 2x - y

        = (x-x-2x) + (-y+y-y) + (z+z)

        = -2x + (-y) + 2z

        = -2x - y + 2z.

Vậy C = -2x - y + 2z.

Bài 1 : em chưa học 

Bài 2 : \(A=a+\left(42-70+18\right)-\left(42+18+a\right)\)

\(=a-10-60-a=-70\)

Phải trả lời đúng 2 câu mới được nha !

x - 18 - 42 = 23 - 43 - 70 - x

\(\rightarrow\) 2x = -30

\(\rightarrow\) x = -15

\(\left(-\left(x+15\right)\right)^2\) - 19 = \(3^2\) .5

\(\rightarrow\)\(x^2+30x+225\) - 19 = 45

\(\rightarrow x^2+30x+161=0\)

\(\rightarrow x^2+23x+7x+161=0\)

\(\rightarrow x\left(x+23\right)+7\left(x+23\right)=0\)

\(\rightarrow\left(x+7\right)\left(x+23\right)=0\)

\(\rightarrow\) x = -7 hoặc x = -23

câu d lấy  đâu ra 225 vậy bạn

a: \(42=2\cdot3\cdot7;70=2\cdot5\cdot7\)

=>\(BCNN\left(42;70\right)=2\cdot3\cdot5\cdot7=210\)

=>\(BC\left(42;70\right)=B\left(210\right)=\left\{0;210;420;...\right\}\)

b: \(70=2\cdot5\cdot7;180=3^2\cdot5\cdot2^2\)

=>\(BCNN\left(70;180\right)=2^2\cdot3^2\cdot5\cdot7=1260\)

=>\(BC\left(70;180\right)=\left\{1260;2520;...\right\}\)

c: \(5=5;7=7;8=2^3\)

=>\(BCNN\left(5;7;8\right)=5\cdot7\cdot8=280\)

=>\(BC\left(5;7;8\right)=\left\{280;560;...\right\}\)

d: \(12=2^2\cdot3;18=3^2\cdot2\)

=>\(BCNN\left(12;18\right)=2^2\cdot3^2=36\)

=>\(BC\left(12;18\right)=\left\{36;72;...\right\}\)

e: \(15=3\cdot5;18=3^2\cdot2\)

=>\(BCNN\left(15;18\right)=3^2\cdot2\cdot5=90\)

=>\(BC\left(15;18\right)=\left\{90;180;...\right\}\)

f: \(84=2^2\cdot3\cdot7;108=3^3\cdot2^2\)

=>\(BCNN\left(84;108\right)=2^2\cdot3^3\cdot7=756\)

=>\(BC\left(84;108\right)=\left\{756;1512;...\right\}\)

j: \(33=3\cdot11;44=2^2\cdot11;55=5\cdot11\)

=>\(BCNN\left(33;44;55\right)=3\cdot2^2\cdot5\cdot11=660\)

=>\(BC\left(33;44;55\right)=\left\{660;1320;...\right\}\)

g: \(1=1;12=2^2\cdot3;27=3^3\)

=>\(BCNN\left(1;12;27\right)=1\cdot2^2\cdot3^3=108\)

=>\(BC\left(1;12;27\right)=\left\{108;216;...\right\}\)

n: \(5=5;9=3^2;11=11\)

=>\(BCNN\left(5;9;11\right)=5\cdot3^2\cdot11=495\)

=>\(BC\left(5;9;11\right)=\left\{495;990;...\right\}\)