lớp 6 có cm đẳng thức hử?

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

suy ra:a-b-c-a-c=-b

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

0-b=-b

1, Chứng minh đẳng thức :

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

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

=a-b+c-a-c

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

=0+0-b

=-b

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

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

=a+b-b+a+c

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

=2a+0+c

=2a+c

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

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

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

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

=0+0-(b+b)

=-2b

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

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

=ab+ac-(ab+ad)

=(ab-ab)+ac-ad

=0+ac-ad

=a(c-d)

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

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

=ab-ac+ad+ac

=(ac+(-ac))+ad+ab

=0+ad+ab

=a(d+b)

1

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

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

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

\(=0-b\)

\(=-b\)

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

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

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

\(=\left(a+a\right)-0+c\)

\(=a+a+c\)

\(=2a+c\)

2

\(P=a+ [( a - 3 ) - (-a - 2)]\)

\(P=a+a-3+a+2\)

\(P=a+a+a-3+2\)

\(P=3a-3+2\)

\(P=0+2\)

\(P=2\)

\(Q=[a + (a +3)] - [( a + 2) - ( a - 2)]\)

\(Q=a+a+3-a-2-a+2\)

\(Q=a+a+3-a+\left(-2-a+2\right)\)

\(Q=2a+3-a+a\)

\(Q=2a+3-2a\)

\(Q=3\)

Vì \(P=2;Q=3\Rightarrow P< Q\)

Bài 1 : 

Ta có : P =  a.{ ( a - 3 ) - [(a+3) - [ ( a + 2 ) - (a - 2 )]}

                = a . { ( a - 3 ) - [ ( a + 3 ) - ( -a - 2 )]}

                = a . ( a - 3 -a - 3 - a + 2 )

               = a . ( - a - 8 ) = -8a -a² 

        : Q = [a +( a + 3 ) ] - [ ( a + 2 ) - ( a - 2 ) ]

              = a + a + 3 - a - 2 - a - 2

             = -1 

Ta thấy -1> -8a - a² => Q > P

Bài 2 : 

Ta có : a - ( b - c ) = ( a - b ) + c = ( a + c ) - b 

<=> a - b + c = a - b + c = a + c - b 

do a = a ; b = b ; c = c => 3 vế bằng nhau (đpcm) 

Bài 3:

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

<=> a - b + c - d      = a + c - b - d 

<=> a - a + c - c      - b + b - d + d  = 0

<=> 0 = 0 => VP = VT ( đpcm) 

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

<=> a - b - c + d = a + d - b  -c 

<=> a - a - b + b - c + c + d -d = 0

<=> 0 =0 => VP = VT ( đpcm )

b) F=3.(b-c)-(a+c)+5.(a-b-c)

   F=3b-3c-a-c+5a-5b-5c

   F=(-a+5a)+(3b-5b)+(-3c-c-5c)

  F= 4a+(-2b)+(-9c)

  F=4a-2b-9c

a) E=2.(a+b)+3.(a-c)-4(b+c)

   E=2a+2b+3a-3c-4b-4c

   E=(2a+3a)+(2b-4b)+(-3c-4c)

   E=5a+(-2b)+(-7c)=5a-2b-7c

a)

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

b)

\(B=\left[a-\left(a-3\right)\right]-\left[\left(a-2\right)+\left(a-2\right)\right]\\ =\left(a-a+3\right)-\left(a-2+a-2\right)\\ =a-a+3-a+2-a+2\\ =\left(a-a-a-a\right)+3+2+2\\ =-2a+7\)