\(\left(20^2+18^2+16^2+......+4^2+2^2\right)-\left(19^2+17^2+.....+3^2+1^2\right)\)

\(=20^2-19^2+18^2-17^2+......+2^2-1^2\)

\(=\left(20-19\right)\left(20+19\right)+\left(18-17\right)\left(18+17\right)+.......+\left(2-1\right)\left(2+1\right)\)

\(=39+35+....+7+3\)

\(=\left(39+3\right)\left[\left(39-3\right):4+1\right]:2=210\)

2A = 2^18 - 2^17 - 2^15 - 2^14 - 2^13 - ... - 2^2 - 2

2A - A = A = ( 2^18 - 2^17 - 2^16 - 2^15 - 2^14 - 2^13 - ... - 2^2 - 2 ) - ( 2^17 - 2^16 - 2^15 - 2^14 - 2^13 - ... -2 - 1 )

A = 2^18 - 2^17 - 2^16 - 2^15 - 2^14 - 2^13 - ... - 2^2 - 2 - 2^17 + 2^16 + 2^15 +  2^14 + 2^13 + ... + 2 + 1

A = 2^18 - 2^17 - 2^17 + 1 

A = 2^18 - 2 . 2^17 + 1 

A =2^17- 2^16-...-2-2^0

Ax2= 2^18-2^17-.....-2^2-2^1

Ax2-A=2^18-2^17-...-2^2-2^1-2^17+2^16+....+2^1+1

A=2^18-2^17-2^17+1

A=2^18-2^17X2+1

A=2^18-2^18+1

A=0+1

A=1

Bài 1: 

Ta có: 

\(A=9x^4-15x^3-6x^2+5=3x^2\left(3x^2-5x\right)-6x^2+5=3x^2.2-6x^2+5=6x^2-6x^2+5=5\)

Vậy,  \(A=5\)

Bài 2: Ta có:

\(3^{15}+3^{16}+3^{17}=3^{15}+3^{15}.3+3^{15}.3^2=3^{15}.\left(1+3+3^2\right)=3^{15}.13\)

\(\Rightarrow3^{15}.13\)  chia hết cho  \(13\)

Do đó:  \(3^{15}+3^{16}+3^{17}\)  chia hết cho  \(13\)

`B17:`

`a)` Với `x \ne +-3` có:

`A=[x+15]/[x^2-9]+2/[x+3]`

`A=[x+15+2(x-3)]/[(x-3)(x+3)]`

`A=[x+15+2x-6]/[(x-3)(x+3)]`

`A=[3x+9]/[(x-3)(x+3)]=3/[x-3]`

`b)A=[-1]/2<=>3/[x-3]=-1/2<=>-x+3=6<=>x=-3` (ko t/m)

   `=>` Ko có gtr nào của `x` t/m

`c)A in ZZ<=>3/[x-3] in ZZ`

   `=>x-3 in Ư_3`

 Mà `Ư_3={+-1;+-3}`

`@x-3=1=>x=4`

`@x-3=-1=>x=2`

`@x-3=3=>x=6`

`@x-3=-3=>x=0`

________________________________

`B18:`

`a)M=1/3`             `ĐK: x  \ne +-4`

`<=>(4/[x-4]-4/[x+4]).[x^2+8x+16]/32=1/3`

`<=>[4(x+4)-4(x-4)]/[(x-4)(x+4)].[(x+4)^2]/32=1/3`

`<=>32/[x-4].[x+4]/32=1/3`

`<=>3x+12=x-4`

`<=>x=-8` (t/m)

x=11 suy ra 12=x+1 thay vào A ta có:

A=x^17- (x+1)x^16 + (x+1)x^15 - (x+1)x^14 + .....- (x+1)x^2+(x+1)x -1

= x^17 - x^17 -x^16 + x^16 + x^15 - x^15 - x^14 +.....- x^3 -x^2 + x^2 +x -1

= x-1= 11-1=10

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