How do you use the Maclaurin series sinx to find the maclaurin series for #xsin(x/2)#?

1 Answer
Steve M
Jul 20, 2017

# xsin(x/2) = x^2/2-x^4/(2^3 3!)+x^6/(2^5 5!)-x^8/(2^7 7!) + x^9/(2^9 9!) - ... #

Or in sigma notation:

# xsin(x/2) = sum_(k=0)^oo (-1)^k x^(2k+2)/(2^(2k+1)(2k+1)!) #

Explanation:

Starting with the Maclaurin Series for #sinx#,

# sinx = x-x^3/(3!)+x^5/(5!)-x^7/(7!) + x^9/(9!) -... \ \ x in RR #

Then the series for #sin(x/2)# is:

# sin(x/2) = (x/2)-(x/2)^3/(3!)+(x/2)^5/(5!)-(x/2)^7/(7!) + (x/2)^9/(9!) - ...#
# " " = x/2-x^3/(2^3 3!)+x^5/(2^5 5!)-x^7/(2^7 7!) + x^9/(2^9 9!) - ...#

And so:

# xsin(x/2) = x{x/2-x^3/(2^3 3!)+x^5/(2^5 5!)-x^7/(2^7 7!) + x^9/(2^9 9!) - ...}#
# " " = x^2/2-x^4/(2^3 3!)+x^6/(2^5 5!)-x^8/(2^7 7!) + x^9/(2^9 9!) - ... \ x in RR#

Or in sigma notation:

# xsin(x/2) = sum_(k=0)^oo (-1)^k x^(2k+2)/(2^(2k+1)(2k+1)!) #

Related questions
See all questions in Constructing a Maclaurin Series
Impact of this question
3040 views around the world
You can reuse this answer
Creative Commons License