Show that if x t + l = A x t , then ρ ( l ) = 1 if A &gt; 0, and ρ ( l ) = − 1 if A &lt; 0.

Step 1 By definition we know that ρ ( l ) = γ ( l ) γ ( 0 ) So for x t + l = A x t we have γ ( l ) = c o v ( x t , x t + l ) = c o v ( x t , A x t ) = A γ ( 0 )and it follows that ρ ( l ) = A γ ( 0 ) γ ( 0 ) = ABecause of stationarity V a r ( x t ) = V a r ( x t + l ) = V a r ( A x t ) = A 2 V a r ( x t )which implies that A 2 = 1 , and thus ρ ( l ) = 1 = ± 1

Expert Answer to "Show that if x t + l =..."

Kayley Dickson

Answered question

2022-11-10

Show that if

x_{t + l} = A x_{t}

, then

ρ (l) = 1

A > 0

, and

ρ (l) = - 1

A < 0

Answer & Explanation

grizintimbp

Beginner2022-11-11Added 16 answers

Step 1

By definition we know that ρ (l) = \frac{γ (l)}{γ (0)}

So for

x_{t + l} = A x_{t}

we have

γ (l) = c o v (x_{t}, x_{t + l}) = c o v (x_{t}, A x_{t}) = A γ (0)

and it follows that

ρ (l) = A \frac{γ (0)}{γ (0)} = A

Because of stationarity

V a r (x_{t}) = V a r (x_{t + l}) = V a r (A x_{t}) = A^{2} V a r (x_{t})

which implies that

A^{2} = 1

, and thus

ρ (l) = \sqrt{1} = \pm 1

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