a) Ta có:

\(q.{S_n} = q.\left( {{u_1} + {u_2} + ... + {u_n}} \right) = {u_1}.q + {u_2}.q + ... + {u_n}.q = \left( {{u_2} + {u_3} + ... + {u_n}} \right) + q.{u_n}\)

b) Ta có:

\({u_1} + q.{S_n} = {u_1} + \left( {{u_2} + {u_3} + ... + {u_n}} \right) + q.{u_n} = \left( {{u_1} + {u_2} + {u_3} + ... + {u_n}} \right) + q.{u_n} = {S_n} + {u_1}.{q^n}\)

a)    Ta có:

\({S_n}.q = \left( {{u_1} + {u_1}q + {u_1}{q^2} + ... + {u_1}{q^{n - 1}}} \right).q = {u_1}\left( {1 + q + {q^2} + ... + {q^{n - 1}}} \right).q = {u_1}\left( {q + {q^2} + {q^3} + ... + {q^n}} \right)\)

\(\begin{array}{l}{S_n} - {S_n}.q = {u_1} + {u_1}q + {u_1}{q^2} + ... + {u_1}{q^{n - 1}} - {u_1}\left( {q + {q^2} + {q^3} + ... + {q^n}} \right)\\ = {u_1}\left( {1 + q + {q^2} + ... + {q^{n - 1}}} \right) - {u_1}\left( {q + {q^2} + {q^3} + ... + {q^n}} \right)\\ = {u_1}\left( {1 + q + {q^2} + ... + {q^{n - 1}} - \left( {q + {q^2} + {q^3} + ... + {q^n}} \right)} \right)\\ = {u_1}\left( {1 - {q^n}} \right)\end{array}\)

b)    Ta có: \({S_n} - {S_n}.q = {u_1}\left( {1 - {q^n}} \right) \Leftrightarrow {S_n}\left( {1 - q} \right) = {u_1}\left( {1 - {q^n}} \right) \Leftrightarrow {S_n} = \frac{{{u_1}\left( {1 - {q^n}} \right)}}{{\left( {1 - q} \right)}}\)

a)    Ta có:

\(\left. \begin{array}{l}{u_1} + {u_n} = {u_1} + {u_1} + \left( {n - 1} \right)d = 2{u_1} + \left( {n - 1} \right)d\\{u_2} + {u_{n - 1}} = {u_1} + d + \left( {n - 2} \right)d = {u_1} + \left( {n - 1} \right)d\\{u_n} + {u_1} = {u_1} + {u_1} + \left( {n - 1} \right)d = 2{u_1} + \left( {n - 1} \right)d\end{array} \right\} \Rightarrow {u_1} + {u_n} = {u_2} + {u_{n - 1}} = ... = {u_n} + {u_1}\)

b)    Dựa vào công thức vừa chứng minh ta có: \(n\left( {{u_1} + {u_n}} \right)\) = \(2{S_n}\)

a) \({u_2} = {u_1}.q\)

\({u_3} = {u_1}.{q^2}\)

…

\({u_{n - 1}} = {u_1}.{q^{n - 2}}\)

\({u_n} = {u_1}.{q^{n - 1}}\)

\({S_n} = {u_1} + {u_1}q +  \ldots  + {u_1}{q^{n - 2}} + {u_1}{q^{n - 1}}\)

b) \(q{S_n} = q{u_1} + {u_1}{q^2} +  \ldots  + {u_1}{q^{n - 1}} + {u_1}{q^n}\)

c) \({S_n} - q{S_n} = \left( {{u_1} + {u_1}q +  \ldots  + {u_1}{q^{n - 2}} + {u_1}{q^{n - 1}}} \right) - (q{u_1} + {u_1}{q^2} +  \ldots  + {u_1}{q^{n - 1}} + {u_1}{q^n})\).

\(\begin{array}{l} \Leftrightarrow \left( {1 - q} \right){S_n} = {u_1} - {u_1}{q^n} = {u_1}\left( {1 - {q^n}} \right)\\ \Rightarrow {S_n} = \frac{{{u_1}\left( {1 - {q^n}} \right)}}{{1 - q}}\end{array}\)

a) \({u_2} = {u_1} + d\)

\({u_3} = {u_1} + 2d\)

…

\({u_{n - 1}} = {u_1} + \left( {n - 2} \right)d\)

\({u_n} = {u_1} + \left( {n - 1} \right)d\)

\({S_n} = {u_1} + {u_1} + 2d +  \ldots  + {u_1} + \left( {n - 2} \right)d + {u_1} + \left( {n - 1} \right)d\)

b) \({S_n} = {u_n} + {u_{n - 1}} +  \ldots  + {u_2} + {u_1} = {u_1} + \left( {n - 1} \right)d + {u_1} + \left( {n - 2} \right)d +  \ldots  + {u_1} + d + {u_1}\)

c) \(2{S_n} = \left( {{u_1} + {u_1} + d +  \ldots  + {u_1} + \left( {n - 1} \right)d} \right) + \left( {{u_1} + \left( {n - 1} \right)d + {u_1} + \left( {n - 2} \right)d +  \ldots  + {u_1}} \right)\).

\( \Rightarrow 2{S_n} = n.\left( {2{u_1} + \left( {n - 1} \right)d} \right)\)

\( \Rightarrow {S_n} = \frac{n}{2}\left( {2{u_1} + \left( {n - 1} \right)d} \right)\)

Câu 1:

\(S_8=u_1+u_2+u_3+...+u_8\)

\(=\dfrac{u_1\left(1-q^8\right)}{1-q}=\dfrac{2048\cdot\left(1-\left(\dfrac{5}{4}\right)^8\right)}{1-\dfrac{5}{4}}\)

\(=\dfrac{325089}{8}\)

2: \(S_{10}=u_1+u_2+...+u_9+u_{10}\)

=>\(S_{10}=\dfrac{u_1\left(1-q^{10}\right)}{1-q}=\dfrac{-3\cdot\left(1-\left(\dfrac{1}{2}\right)^{10}\right)}{1-\dfrac{1}{2}}\)

\(=-6\cdot\left(1-\dfrac{1}{2^{10}}\right)=-6+\dfrac{6}{2^{10}}=-\dfrac{3069}{512}\)

a) \({u_2} = {u_1}.q\)

\({u_3} = {u_2}.q = {u_1}.{q^2}\)

\({u_4} = {u_3}.q = {u_1}.{q^3}\)

\({u_5} = {u_4}.q = {u_1}.{q^4}\)

b) Từ a suy ra: \({u_n} = {u_1} \times {q^{n - 1}}\).

1:

\(S_8=\dfrac{u_1\cdot\left(1-q^8\right)}{1-q}=\dfrac{2048\cdot\left(1-\left(\dfrac{5}{4}\right)^8\right)}{1-\dfrac{5}{4}}\)

\(=-8192\left(1-\left(\dfrac{5}{4}\right)^8\right)\)

2:

\(u2=u1\cdot q\)

=>\(q=\dfrac{3}{-1}=-3\)

\(S_{10}=\dfrac{u1\left(1-q^{10}\right)}{1-q}=\dfrac{-1\cdot\left(1-\left(-3\right)^{10}\right)}{1-\left(-3\right)}\)

\(=\dfrac{-1}{4}\left(1-3^{10}\right)\)