Answer to Question #219864 in Abstract Algebra for Rehema

Solution:

Proof;

Let g"\\epsilon" G have an order n="\\#" (G).

For each i with 1"\\leq" i"<" n we have gⁱ"\\ne" e,the identity of G.

The claim herein is that G="\\lang g\\rang"

For this ,there are n elements of {gⁱ:0"\\le" i<n}

If gⁱ=g^j for some j<i, multiply both sides of the equation by g^-i=g^i(-1)

We have, e=g^j-i even though 1"\\leq" j-i"<" n

Contrary to the above observations.

Hence G="\\lang g\\rang" is cyclic.