The value of displaystyle ∑6k=1 ( sin (2kπ/7) - i cos (2k π/7)) is equal to

Question

The value of displaystyle ∑6k=1 ( sin (2kπ/7) - i cos (2k π/7)) is equal to (A) - 1 (B) 0 (C) - i (D) i

Tardigrade Admin · Accepted Answer

sin (2π k/7) - i cos (2π k/7) = - i( cos (2π/7) + i sin (2π/7))k = - izk where z = cos (2π/7) + i sin (2π/7) . ∴ : :: displaystyle∑6k=1 ( sin (2π k/7) - i cos (2π k/7) ) = - i(z + z2 +z3 +z4 +z5 +z6) = - i( (z(1 -z6)/1 -z) ) = - i ( (z -z7/1-z)) = i( (z7 - z/1 - z)) = i (∵ z7 = ( cos (2π /7) + i sin (2π /7) )7 = 1)

Q. The value of k=1∑6​(sin72kπ​−icos72kπ​) is equal to

- 1

0

- i

i

sin72πk​−icos72πk​ =−i(cos72π​+isin72π​)k =−izk where z=cos72π​+isin72π​. ∴k=1∑6​(sin72πk​−icos72πk​) =−i(z+z2+z3+z4+z5+z6) =−i(1−zz(1−z6)​)=−i(1−zz−z7​) =i(1−zz7−z​)=i (∵z7=(cos72π​+isin72π​)7=1)

Q. The value of $k = 1 \sum 6 (sin \frac{2 kπ}{7} - i cos \frac{2 kπ}{7})$ is equal to