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I've watched the khan academy pre-calculus playlist about compound interest and constant e on youtube Khan Academy. First he said that you can compute the final payment like this:

Let P = Principal, let r = interest rate in decimal, let t = time period, let F = final payment, then the equation would be like this:

$P(1 + r)^t = F$

For example if I borrowed \$50 for 1 year for 15%, then after 20 years I would need to repay \$818.

But then he says that this equations equals to this:

$Pe^{rt}=F$

But this is not completely equal to the other equation. Can you explain me what did he mean by this last equation, is this equation even right?

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    Do you know what would be awesome. For banks to give your continuos compound interest on your savings.2013-02-16

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If you were to compound the interest only once per year, you would have the equation $ P(1 + r)^t = F. $ If you compound twice per year, you would accrue half of your annual interest every six months (half a year). This gives a slightly higher final payment and follows the formula $ P\left(1 + \frac{r}{2} \right)^{2t} = F. $ Following this pattern, if you compounded $n$ times every year, the equation is $ P\left(1 + \frac{r}{n} \right)^{nt} = F. $ It turns out that the bigger the value of $n$ you choose, the higher your final payment. However, the increase in final payment from, say, $n = 1$ to $n = 2$ is much more significant than the increase from $n = 100$ to $n = 101$. This phenomenon allows the final payment to have a limiting value. That is, if you let $n$ "equal" infinity (in other words, let $n$ grow as large as you like), the term $ \left(1 + \frac{r}{n} \right)^{n} $ doesn't approach infinity itself, but rather approaches the constant $e^r$. This is called continuous compounding. It is as though you are compounding every moment of every day; an "infinite number" of compoundings each year. Continuous compounding gives the highest possible final payment.

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    corrected the exponents2015-05-20