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- let s sub k for k is equal to one all the eay to one hundred denote the sum for the infinite geometric series
- whose first term is k minus one over k factorial and the common ratio is 1 over k. Then the value of
- 100 squared over 100 factorial plus the sum from k equals one to one hundred of this thing over here
- the absolute value of this thing over here k2 minus 3k + 1 times s sub k is. So this looks like a pretty
- daunting thing but I guess a good place to start would just to be find a simple way to express s sub
- k. So if we were to write s sub k. s sub k is equal to the first term is k-1 over k factorial and then t
- he common ratio is one over k. So it's going to be one over k to the 0 plus one over k to the 1 plus
- 1 over k squared. It is just going to keep going on forever, it is an infinite geometric series. Now t
- there is a very well known formula for the sum of an infinite geometric series. I enjoy the proof of i
- t so much that we're going to do it again. and I've done it multiple times already but its such a simple
- proof that it is good to do again, if you're under time pressure then you could just use the formula.
- but if we say, lets just say some other sum, lets call this thing just s. s is equal to 1/k^0 + 1/k^1
- + 1/k^2 all the way to infinite. Now lets multiply 1/k * s, which is going to be 1/k times all of these t
- terms. So I multiply 1/k times this term I'm going to get (1/k)^1. When I multiply 1/k times this term
- I'm going to get 1/k to the second power all of the way on to infinite. So if I were to subtract this f
- rom that so it's coefficient is one 1 - 1/k * s would be equal to all of this stuff minus all of this
- stuff. That is going to cancel with that and that is going to cancel with that and we're just going t
- to have the 0 term here which is to the first power. 1/k ^ 0 is going to be equal to 1, or this whole s
- sum is going to be equal to 1 over / 1-1/k. So we can re-write s sub k s sub k is equal to k - 1 over
- k! times before I write it up here lets see if we can simplify this. If I want to simplify this I can
- multiple the numerator and the denominator by k. If do this I am going to have k in the denominator a
- nd the denominator becomes k -1. So this right here is k over k - 1 and these will cancel out so this
- we have to be careful when we cancel out as this kind of precluded, while I will talk about that in a
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