Question #a67d3

1 Answer
sente
May 19, 2016

lim_(x->oo)1/(n!) = 1/(n!)

sum_(n=0)^oo1/(n!) = e = 2.71828...

Explanation:

There are a couple of issues to address, here. First to answer the exact question asked:

lim_(x->oo)1/(n!) = 1/(n!)

As there is no x term in 1/(n!), a limit involving x does not change the value.

From the additional information, however, the intended question seems to be:
"What is the limit as n approaches infinity of sum_(k=0)^n1/(k!)?"

This is actually one way of calculating the well-known irrational constant e=2.71828...
In fact, the power series representation of the function e^x is given by

e^x = sum_(k=0)^oox^k/(k!)

Substituting x=1 into the above sum gives us

e = e^1 = sum_(k=0)^oo1^k/(k!) = sum_(k=0)^oo1/(k!)

matching the above claim.

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