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get rich compounded interest
1. Get rich!Play with P, r and n to get rich! When we deposit money into a savings account, we lend money to the bank. This bank pays interest on our deposit. If we deposit an amount P at an interest rate r per period (year for example), after n periods (years), how much our investment will be worth ? We deposit P now . At the end of the: -- First period, we will have: P + rP = P(1 + r) -- Second period, we will have: (P + rP) + r(P + Pr) = (P + rP)(1 + r) = P (1 + r)2 -- Third period, we will have: P (1 + r)2 + rP (1 + r)2 = P (1 + r)3 .... -- Last (nth) period, we will have: P (1 + r)n After n periods (years), our investment will be worth W = P (1 + r)n Examples: 1. How much do we have to invest at the interest rate of 10% yearly to become millionaire in 10 years? W = P (1 + r)- n = 106 (1 + 10%)- 10 = 106 (1.10)- 10 = 385543.29 $ 2. How many periods (frequencies to compound the interest) do we need to get the double of an investment at an interest rate of r? We have: W = 2P = P (1 + 1r)n or (1 + 10%)n = 2 n ln(1 + r) = ln 2 n = ln 2 /ln (1 + r) The Maclaurin series of ln(1 + r) is: ln (1 + r) = r - r2/2 + r3/3 - r4/4 + ... "r" is small, the terms, after the first, of the Maclaurin expansion may be neglected, then ln (1 + r) = r , therefore: n = ln 2 /r = 0.7/r if r = 10%, then n = 7 periods. 2. What's about a continuously compounded interest?If the interest is compounded n times a period p (for example a year) at an interest rate of r, after t periods, an investment P grows to : G (t) = P(1 + r/n)nt. If G(t) is the value of the investment at t periods, the earned interest will be G(t) x r δt. After a short time of periods, δt, G(t) becomes: G(t + δt) = G(t) + G(t) x r δt This formula can be written as: G(t + δt) - G(t) = G(t) x r δt, or δ G(t) = G(t) x r δt, or δ G(t) / G(t) = r δt. The integration gives: Log G(t) = r t + cst, or G(t) = Const x exp {rt} At t = 0, G(t) = G(0) = Const Therefore: G(t) = G(0) exp {rt} G(t) = G(0) exp {rt} G(t): the investment at the time t G(0) = P: the principal or initial investment r: the interest rate t: the number of periods Example: G(0) = 1000 $ r = 10% per year t = 5 (5 years) Then: G(t) = 1000 x exp{10% x 5} = 1000 exp{0.5} = 1000 x 1.65 = 1650 $ The application of the formula: P(t) = P(1 + r)n gives: P(t) = 1000 x (1 + 10%)5 = 1000 x 1.610 = 1610 $ Remark: To double an investment, we get directly the time of period we need: G(t) = 2G(0) = G(0) exp {rt} gives: rt = ln 2 and then t = ln 2/r = 0.7/r . Other example: The banker knows the formula: lim (1 + 1/n)n = e = 2.718 n → ∞ We make a deposit of $1.00 with an interest of 100% per year. If the interest is credited once a year, at the end of the year, the value of the account will be: $1.00 + (100/100)$1.00 = $1.00[1 + (100%)] = $2.00. If the interest is credited two times a year, at the end of the year, the value of the account will be: $1.00[1 + (100%/2)]2 = $1.00[1 + (50%)]2 = $1.00 (1.5)2 = $2.25 If the interest is credited three times a year, at the end of the year, the value of the account will be: $1.00[1 + (100%/3)]3 = $1.00[1 + 1/3]3 = $1.00 (4/3)3 = $2.37 If the interest is credited monthly during a year, at the end of the year, the value of the account will be: $1.00[1 + (100%/12)]12 = $1.00[1 + 1/12]12 = $1.00 (13/12)12 = $2.61 If the interest is credited daily during a year, at the end of the year, the value of the account will be: $1.00[1 + (100%/365)]365 = $1.00[1 + 1/365]365 = $1.00 (366/365)365 = $2.71 If the interest is credited indefinitely (continuous compound) during a year, at the end of the year, the value of the account will be: $1.00[1 + (100%/∞)]∞ = $1.00[1 + 1/∞]∞ = $1.00 x lim (1 + 1/n)n = $e = $2.718 n → ∞ That is: even though the interest, at the rate of 100%, is credited indefinitely during a year, the deposit, at the end of the year, won't be even tripled. |
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