a: =(-1)+(-1)+...+(-1)=-1011

b: =(-5)+(-5)+...+(-5)=-175

B/A

\(=\dfrac{1+\dfrac{2020}{2}+1+\dfrac{2019}{3}+...+1+\dfrac{1}{2021}+1}{\dfrac{1}{2}+\dfrac{1}{3}+...+\dfrac{1}{2021}+\dfrac{1}{2022}}\)

\(=\dfrac{2022\left(\dfrac{1}{2}+\dfrac{1}{3}+...+\dfrac{1}{2021}+\dfrac{1}{2022}\right)}{\dfrac{1}{2}+\dfrac{1}{3}+...+\dfrac{1}{2021}+\dfrac{1}{2022}}=2022\)

Bạn kiểm tra đề giúp mình! Bạn yêu cầu gì về giả thiết trên?

a) \(S=1+2+3+...+2021\)

\(=\left(2021+1\right).2021:2\)

\(=2043231\)

b) \(P=1+3+5+...+2021\)

\(=\left(2021+1\right).[\left(2021-1\right):2+1]:2\)

\(=2022.1011:2\)

\(=1022121\)

a: M=-2021+2021-68-68+17

=-119

b: B=(-1)+(-1)+...+(-1)

=-1x500

=-500

c: C=(1-2-3+4)+(5-6-7+8)+...+(997-998-999+1000)

=0

Cảm ơn bạn nhé

\(A=2^2+2^2+2^3+...+2^{2021}\\ 2A=2^3+2^3+2^4+...+2^{2022}\\ A=2^{2022}+2^3-2^2-2^2\)

\(2A=8+2^3+...+2^{2022}\)

\(\Leftrightarrow A=2^{2022}+8-4-2^2=2^{2022}\)

Ta có: \(\frac{2022}{2021^2+k}\le\frac{2022}{2021^2}\) (với \(k\)là số tự nhiên bất kì) 

Ta có: 

\(A=\frac{2022}{2021^2+1}+\frac{2022}{2021^2+2}+...+\frac{2022}{2021^2+2021}\)

\(\le\frac{2022}{2021^2}+\frac{2022}{2021^2}+...+\frac{2022}{2021^2}=\frac{2022}{2021^2}.2021=\frac{2022}{2021}\)

Ta có: \(\frac{2022}{2021^2+k}>\frac{2022}{2021^2+2021}=\frac{2022}{2021.2022}=\frac{1}{2021}\)với \(k\)tự nhiên, \(k< 2021\)) 

Suy ra \(A=\frac{2022}{2021^2+1}+\frac{2022}{2021^2+2}+...+\frac{2022}{2021^2+2021}\)

\(>\frac{1}{2021}+\frac{1}{2021}+...+\frac{1}{2021}=\frac{2021}{2021}=1\)

Suy ra \(1< A\le\frac{2022}{2021}\)do đó \(A\)không phải là số tự nhiên. 

Ta có: $\frac{2022}{{2021}^2+k}\le \frac{2022}{{2021}^2}$ (với $k$là số tự nhiên bất kì) 

Ta có: 

$A=\frac{2022}{{2021}^2+1}+\frac{2022}{{2021}^2+2}+...+\frac{2022}{{2021}^2+2021}$

$\le \frac{2022}{{2021}^2}+\frac{2022}{{2021}^2}+...+\frac{2022}{{2021}^2}=\frac{2022}{{2021}^2}.2021=\frac{2022}{2021}$

Ta có: $\frac{2022}{{2021}^2+k}>\frac{2022}{{2021}^2+2021}=\frac{2022}{2021.2022}=\frac{1}{2021}$với $k$tự nhiên, $k<2021$) 

Suy ra $A=\frac{2022}{{2021}^2+1}+\frac{2022}{{2021}^2+2}+...+\frac{2022}{{2021}^2+2021}$

$>\frac{1}{2021}+\frac{1}{2021}+...+\frac{1}{2021}=\frac{2021}{2021}=1$

Suy ra $1<A\le \frac{2022}{2021}$do đó $A$không phải là số tự nhiên. 

Ta có: \(\frac{2022}{2021^2+k}\le\frac{2022}{2021^2}\) (với \(k\)là số tự nhiên bất kì) 

Ta có: 

\(A=\frac{2022}{2021^2+1}+\frac{2022}{2021^2+2}+...+\frac{2022}{2021^2+2021}\)

\(\le\frac{2022}{2021^2}+\frac{2022}{2021^2}+...+\frac{2022}{2021^2}=\frac{2022}{2021^2}.2021=\frac{2022}{2021}\)

Ta có: \(\frac{2022}{2021^2+k}>\frac{2022}{2021^2+2021}=\frac{2022}{2021.2022}=\frac{1}{2021}\)với \(k\)tự nhiên, \(k< 2021\)) 

Suy ra \(A=\frac{2022}{2021^2+1}+\frac{2022}{2021^2+2}+...+\frac{2022}{2021^2+2021}\)

\(>\frac{1}{2021}+\frac{1}{2021}+...+\frac{1}{2021}=\frac{2021}{2021}=1\)

Suy ra \(1< A\le\frac{2022}{2021}\)do đó \(A\)không phải là số tự nhiên.