A=\(75.\left(4^{2004}+4^{2003}+4^2+4+1\right)+25\)

A=\(75.\left(4^{2005}-1\right):3+25\)

A=\(25.\left(4^{2005}-1+1\right)\)

A=\(25.4^{2005}⋮100\)

Nhớ tick cho mình nhé!

\(M=75.4\left(4^{2020}+4^{2019}+...+4+1\right)+75+25=\)

\(=300.\left(4^{2020}+4^{2019}+...+4+1\right)+100=\)

\(=100\left[3.\left(4^{2020}+4^{2019}+...+4+1\right)+1\right]⋮100\)

đề thiếu rồi nek bạn

Đặt \(D=1+4+...+4^{2019}\)

\(\Leftrightarrow4D=4+4^2+...+4^{2020}\)

\(\Leftrightarrow D=\dfrac{4^{2020}-1}{3}\)

\(C=75\cdot D+25\)

\(=25\left(4^{2020}-1\right)+25=25\cdot4\cdot4^{2019}⋮100\)

tui lớp 8 ko bt làm :)

hảo hán

Đặt \(A=75\left(4^{2023}+4^{2022}+...+4^2+4+1\right)+25\)

Đặt \(B=4^{2023}+4^{2022}+...+4^2+4+1\)

=>\(4B=4^{2024}+4^{2023}+...+4^3+4^2+4\)

=>\(4B-B=4^{2024}+4^{2023}+...+4^3+4^2+4-4^{2023}-4^{2022}-...-4^2-4-1\)

=>\(3B=4^{2024}-1\)

=>\(B=\dfrac{4^{2024}-1}{3}\)

\(A=75\left(4^{2023}+4^{2022}+...+4^2+4+1\right)+25\)

\(=75\cdot\dfrac{4^{2024}-1}{3}+25\)

\(=25\cdot\left(4^{2024}-1\right)+25\)

\(=25\cdot4^{2024}\)

\(=25\cdot4\cdot4^{2023}=100\cdot4^{2023}⋮100\)

B=4^2004+4^2003+...+4^2+4+1

4B = 4^2005+4^2004+...+4^2+4
=> 4B-B = (4^2005+4^2004+...4^3+4^2+4) - (4^2004+4^2003+...+4^2+4+1)
=> 3B = 4^2005 - 1 => B = (4^2005 - 1)/3
=> A = 75 (4^2005 - 1)/3 +25
= 25 (4^2005 -1) +25
= 25 x 4 ^ 2005
= 25 x 4 x 4 ^ 2004 = 100 x4 ^ 2004 chia hết cho 100 ( Vì 100 chia hết cho 100 )

 

Lời giải:

Xét $A=4^{2021}+4^{2020}+...+4^2+4+1$

$4A=4^{2022}+4^{2021}+...+4^3+4^2+4$
$\Rightarrow 4A-A=4^{2022}-1$

$\Rightarrow 3A=4^{2022}-1$

$\Rightarrow M=75A+25=25(4^{2022}-1)+25=25.4^{2022}=100.4^{2021}\vdots 100$

Ta có đpcm.