Chứng minh nếu $z_1,z_2\in\mathbb{C},|z_1|=|z_2|=1,z_1z_2\ne-1$ thì $A=\frac{z_1+z_2}{1+z_1z_2}$ là số thực.
Ta có: $z_1\overline{z_1}=|z_1|^2=1 \Rightarrow \overline{z_1}=\frac{1}{z_1}$
Tương tự: $\overline{z_2}=\frac{1}{z_2}$
Ta có: $\overline{A}=\frac{\overline{z_1}+\overline{z_2}}{1+\overline{z_1.z_2}}=\frac{\displaystyle \frac{1}{z_1}+\frac{1}{z_2}}{\displaystyle 1+\frac{1}{z_1}.\frac{1}{z_2}}=\frac{z_1+z_2}{1+z_1.z_2}=A$
Vậy $A$ là số thực.
Siêu vừa thôi nhé. Siêu quá k ai đuổi kịp đc ak :)) bạn Khang nhỉ –  toansocap 05-10-12 12:08 AM
Mấy anh ad trang nay anh nào cung siêu bạn ạ –  nguyenphuc423 04-10-12 02:41 PM
Anh Khang siêu thật –  hatcattrongdoi 04-10-12 02:39 PM

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