E=(-a-b+c+d)-(d+c-b-2a)

E=-a-b+c+d-d-c+b+2a

E=-a+(-)b+c+d+(-d)+(-c)+b+2a

E=-a+(-b)+c+d+(-d)+(-c)+b+2a

E=(2a-a)+(-b+b)+(-d+d)+(-c+c)=a+0+0+0=a

thanks nhiều nha ĐỨC THỊNH

2, - ( a + b + c ) - ( b - c -a ) + ( 1 - a - b ) - ( c - 3b )

= -a - b -c - b + c + a + 1 - a - b - c + 3b

= (a-a) - (b+b+b) + (c-c) + (-a) + (-c) + 3b

= 0 - 3b + 0 + (-a) + (-c) + 3b

= (3b-3b) + (-a) + (-c)

= 0 + (-a) + (-c)

= (-a) + (-c)

3, ( b - c - 6 ) - ( 7 - a + b ) + c

= b - c - 6 - 7 + a - b + c

= (b-b) + (c-c) - (6+7) + a

= 0 + 0 + 13 + a

= 13 + a

6, 2a - { a - b [ a - b - ( a + b + c ) + 2b ] - c - b }

= 2a - { a - b [ a - b - a - b - c  + 2b ] - c - b }

= 2a - { a - b [ ( a - a ) - (b+b) - c + 2b ] - c - b }

= 2a - { a - b [ 0 - 0 - 2b - c + 2b ] - c - b }

= 2a - { a- b [ (2b - 2b) - c ] - c - b }

= 2a - { a - b [ 0 - c ] - c - b }

= 2a - { a - b.(-c) - c - b}

= 2a - a - b.(-c) - c - b

= 1a - (-b).c - c - b

= a - (-b).c - c.1 - b

= a - [(-b) - 1].c - b

ko chắc lắm

A =(a+b-2c) -(-a+b+c) -(2a-b-c)

   = a+b-2c+a-b-c-2a+b+c

   = b-2c

B=-(2a-b+c) + (b-2c-3a) -(-5a-3c+b)

  = -2a+b-c+b-2c-3a+5a+3c-b

  = b-c

C=(3a-b-2c)-( 2b+3c-a) +(2a-3b)

  = a-b-2c-2b-3c+a+2a-3b

  = -6b-5c

D=(5a-3b+c) +( 2a-3b+5) -( b-c+a)

   = 5a-3b+c+2a-3b+5-b+c-a

   = 6a-7b+2c

\(A=\left(a+b-2c\right)-\left(-a+b+c\right)-\left(2a-b-c\right)\)

\(=a+b-2c+a-b-c-2a+b+c=b-2c\)

\(B=-\left(2a-b+c\right)+\left(b-2c-3a\right)-\left(-5a-3c+b\right)\)

\(=-2a+b-c+b-2c-3a+5a+3c-b=b\)

\(C=\left(3a-b-2c\right)-\left(2b+3c-a\right)+\left(2a-3b\right)\)

\(=3a-b-2c-2b-3c+a+2a-3b=6a-6b-5c\)

\(D=\left(5a-3b+c\right)+\left(2a-3b+5\right)-\left(b-c+a\right)\)

\(=5a-3b+c+2a-3b+5-b+c-a=6a-7b+2c\)

a,A= -a-b+c+a+b+c=2c

b, khi a=1,b=-1,c=-2 thì 

A=2(-2)=-4

a)

\(A=\left(-a-b+c\right)-\left(-a-b-c\right)\)

\(A=-a-b+c-\left(-a\right)+b+c\)

\(A=-a+\left(-b\right)+c+a+b+c\)

\(A=\left[\left(-a\right)+a\right]+\left[\left(-b\right)+b\right]+\left(c+c\right)\)

\(A=0+0+2c\)

\(A=2c\)

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b)

Cách 1 :  \(A=\left(-1-\left(-1\right)+\left(-2\right)\right)-\left(1-\left(-1\right)-\left(-2\right)\right)\)

\(A=-1-\left(-1\right)+\left(-2\right)-\left(-1\right)+\left(-1\right)+\left(-2\right)\)

\(A=-1+1+\left(-2\right)+1+\left(-1\right)+\left(-2\right)\)

\(A=\left[\left(-1\right)+1+1+\left(-1\right)\right]+\left[\left(-2\right)+\left(-2\right)\right]\)

\(A=0+\left(-4\right)=\left(-4\right)\)

Cách 2 : Từ ý   a   suy ra :

\(A=\left(-2\right)\cdot2=\left(-4\right)\)

a) Ta có: -a - b - b = -a - b + c

Vậy: (-a-b+c) - (-a-b-c) = (-a-b+c) - (-a-b+c) = (-a-b+c) : 2

b) (-1-1+-2) : 2 = (-2+-2) : 2 = (-4) : 2 = -2

a)

A= (-m+n-p)-(-m-n-p)

A= -m+n-p+m+n+p

A= (-m+m) +(n+n) + (-p+p)

A= 0+2n+0

A = 2n

Bài 1: 

A = (-m + n - p) - (-m - n - p)

A = -m + n - p + m + n + p

A = (-m + m) + (n + n) - (p - p)

A = 2n

Với n = -1 => A = 2(-1) = -2

Bài 2: 

A = (-2a + 3b - 4c) - (-2a -3b - 4c)

A = -2a + 3b - 4c + 2a + 3b + 4c

A = (-2a + 2a) + (3b + 3b) - (4c - 4c)

A = 6b

Với b = -1 => A = 6(-1) = -6

Bài 3:

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

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

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

A = 2(b - c)

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

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

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

B = 2a

a) A = (a - 2b + c) - (a - 2b - c)

       = a - 2b + c - a + 2b + c

       = (a - a) - (2b - 2b) + (c + c)

       = 2c

b) tương tự trên

c) C = 2(3a + b - 1) - 3(2a + b - 2)

       = 6a + 2b - 2 - 6a - 3b + 3

      = (6a - 6a) + (2b - 3b) - (2 - 3)

      = 0  - b + 1

      = -b + 1

d) D = 4(x - 1) - (3x + 2)

        = 4x - 4 - 3x - 2

       = (4x - 3x) - (4 + 2)

       = x - 6