- #1
good_phy
- 45
- 0
Hi, 5.27 problem in liboff says that if g(A)f(\varphi) = g(a)f(\varphi),where A\varphi = a\varphi
I tried to solve this problem with tylar expansion.
f(\varphi) = f(0) + f^{'}(0)\varphi + \frac{f^{''}(0)}{2!}\varphi^2 + \frac{f^{(3)}(0)}{3!}\varphi^3 + ...
g(A) = g(0) + g^{'}(0)A + \frac{g^{''}(0)}{2!}A^2 + \frac{g^{(3)}(0)}{3!}A^3 + ...
But when i applied g(A) to f(\varphi) i can not get right hand side of equality
written above because i don't know how can i deal with unseen term such as
A\varphi^2or A^2\varphi or etc
please assist to me.
I tried to solve this problem with tylar expansion.
f(\varphi) = f(0) + f^{'}(0)\varphi + \frac{f^{''}(0)}{2!}\varphi^2 + \frac{f^{(3)}(0)}{3!}\varphi^3 + ...
g(A) = g(0) + g^{'}(0)A + \frac{g^{''}(0)}{2!}A^2 + \frac{g^{(3)}(0)}{3!}A^3 + ...
But when i applied g(A) to f(\varphi) i can not get right hand side of equality
written above because i don't know how can i deal with unseen term such as
A\varphi^2or A^2\varphi or etc
please assist to me.
