Growth Rate

# Growth Rate
## Macroeconomics (2017Q2)
### Kenji Sato
### 2017-06-15

---

---

## Growth Rate

| Year  | GDP    | Symbol  |
|:-----:|:------:|:-------:|
| 2011  | 15,591 | `$Y_1$`   |
| 2012  | 15,978 | `$Y_2$`   |
| 2013  | 16,274 | `$Y_3$`   |
| 2014  | 16,705 | `$Y_4$`   |

Growth rate between years 2012 and 2013 is

`$$g_{2,3} = \frac{Y_2}{Y_1} - 1 \simeq 0.024822$$`

---

## Average growth rate

The average annual growth rate can be computed by 
geometric average

`$$\begin{aligned}
  \left(
    \frac{Y_4}{Y_1}
  \right)^{\frac{1}{4 - 1}} - 1
  \simeq
  0.0232714
\end{aligned}$$`

---

## mean log difference

`$$\begin{aligned}
  \frac{\ln Y_4 - \ln Y_1}{4 - 1}
  \simeq
  0.0230048
\end{aligned}$$`

Difference in log, devided by the length of the period, 
is close to the average growth rate.

Geometric average corresponds to **effective rate**, while 
the mean log difference corresponds to **nominal rate**.

---

## Compounding

Assume that a bank offers an annual, nominal interest rate of 6% compounded monthly and that you make a deposit of one thousand dollars ($1,000) at the bank today.

How much do you expect to have in the bank account in one year from now?

`$$1000 \times 
\left(
  1 + \frac{0.06}{12}
\right)^{12}
\simeq
1061.6778119$$`

The rate of return is about 6.17%, which is larger than 6%.

---

## Two annual interest rates

6% = Nominal annual interest rate  
6.17% = Effective annual interest rate

Be aware of the difference.

---

---

## More frequent compounding

Compounded `$N$` times in one year.

`$$\left(
  1 + \frac{0.06}{N}
\right)^{N} 
\to
e^{0.06} = \exp(0.06)$$`

* power 0.06 = nominal rate  
* `$e^{0.06}$` = effective rate

Of course, log effective rate is nominal rate.

`$$\ln e^{0.06} = 0.06$$`

---

## Growth rate

`$$\begin{aligned}
  \left(
    \frac{Y_T}{Y_0}
  \right)^\frac{1}{T}
  &=
  \exp \left(
    \ln \left(
    \frac{Y_T}{Y_0}
  \right)^\frac{1}{T}
  \right) \\
  &=
  \exp \left(
    \frac{\ln Y_T - \ln Y_0}{T}
  \right)
\end{aligned}$$`

`$\frac{\ln Y_T - \ln Y_0}{T}$` is the nominal rate.

---

## Constant nominal growth rate

The most important case is when the nominal growth rate is constant.

`$$\begin{aligned}
  \frac{\ln Y_t - \ln Y_0}{t}
  =
  g
\end{aligned}$$`

Rearranging,

`$$\ln Y_t = \ln Y_0 + gt$$`

By taking log of both sides:

`$$Y_t = Y_0 e^{gt}$$`

---

## Continuous-time modeling

Let `$t$` be any nonnegtive real number.

To clarify that `$Y$` is a function of time, we rewrite as `$Y(t) = Y(0) e^{gt}$`

---

## Differential equation

Differentiate

`$$Y(t) = Y(0) e^{gt}$$`

with respect to time to get

`$$\frac{dY}{dt} (t) = g Y(0) e^{gt} = gY(t).$$`

For notational simplicity, we write the time-derivative as

`$$\dot Y = \frac{dY}{dt}$$`

---

## Differential equation (cont'd)

The following equation is an example of differential equations, in which
a function is the unknown.

`$$\dot Y = gY \quad \text{or}\quad 
\frac{\dot Y}{Y} = g$$`

This is the most important differential equation we use.

How can we get `$Y(t) = Y(0)e^{gt}$` from this differential equation?

In other words, how can we solve this differential equation?

---

## Solving simple differential equation

Notice that

`$$\frac{d}{dt}\left[ 
  \ln Y(t)
\right]
=
\frac{\dot Y(t)}{Y(t)}$$`

We thus have

`$$\frac{d}{dt}\left[ 
  \ln Y(t)
\right] = g
\Longrightarrow
\int d\left[
  \ln Y(t)
\right] = \int gdt$$`

Then

`$$\ln Y(t) = gt + \text{const.}$$`

---

## Solving simple differential equation (cont'd)

At `$t = 0$`,

`$$\ln Y(0) = \text{const.}$$`

We therefore have

`$$\ln Y(t) = \ln Y(0) + gt
\Longrightarrow
Y(t) = Y(0) e^{gt}$$`

To sum up,

**
`$$\frac{\dot Y}{Y} = g
\Longleftrightarrow
Y(t) = Y(0) e^{gt}$$`
**

---

## Continuous-time modeling

We will use **differential equations** to model the evolution of 
the economy over time (i.e., dynamics of the model).

Why is this strategy helpful?

---

## Force driving the economy

`$K(t)$` is the amount of physical capital at time `$t$`

* machines
* buildings
* etc.

Capital is used for current and future production and is the fundamental 
source of wealth of the economy.

Consider an increase in `$K(t)$` as one form of economic growth.

---

## Force driving the economy (cont'd)

**Why does `$K(t)$` increase?**

**Why does `$K(t)$` decrease?**

---

## Force driving the economy (cont'd)

**Why does `$K(t)$` increase?** → Investment

* Let `$I(t)$` denote the speed of investment at time `$t$`.

**Why does `$K(t)$` decrease?** → Depreciation

* Let `$\delta$` denote the annual rate of depreciation. 
* `$\delta K(t)$` is the intensity of depreciation.

The balance between the two forces determines the path of capital
accumulation.

---

## Investment

Let `$K(t)$` be given. Let's observe how `$K(t + \Delta t)$` is determined.

The speed of investment is `$I(t)$`.

If the economy keeps that speed from `$t$` to `$t + \Delta t$`, then
the increment of capital would be

`$$I(t)\Delta t$$`

---

## Capital depreciation

The annual rate of depreciation is `$\delta$`.

In `$\Delta t$` years, capital is reduced by

`$$(\delta \Delta t) K(t)$$`

---

## Capital accumulation

Combining these forces,

`$$K(t + \Delta t) - K(t) = I(t)\Delta t - (\delta \Delta t) K(t)$$`

Deviding by `$\Delta t$`, we get

`$$\frac{K(t + \Delta t) - K(t)}{\Delta t}
=
I(t) - \delta K(t)$$`

By taking limit `$\Delta t \to 0$`,

`$$\dot K(t) = I(t) - \delta K(t)$$`

---

## Differential equation, too mathematical?

Instead of directly modeling the variable of interest `$K$`,  
we start by describing increment/decrement of `$K$`.

This modeling strategy gives a clear picture of how the economy
evolves over time.

* When `$I(t) > \delta K(t)$`, i.e., when investment exceeds depreciation, then 
  `$\dot K > 0$` and thus  `$K$` is growing.
* When `$I(t) < \delta K(t)$`, i.e., when depreciation exceeds investment, then
  `$\dot K < 0$` and thus `$K$` is decreasing.
* When `$I(t) = \delta K(t)$`, `$K(t)$` stays steadily.