Answer to Question #347568 in Statistics and Probability for John

"P(1,100<X<1,300)=P(z_1<z<z_2),"

where z₁ and z₂ are z-scores of 1,100 and 1,300.

Let's find them.

"z=\\frac{x-\\mu}{\\sigma};" "\\mu=1,214;" "\\sigma=122."

"z_1=\\frac{1,100-1,214}{122}\\approx-0.93,"

"z_2=\\frac{1,300-1,214}{122}\\approx0.70."

So we have to rewrite the probability ang use z-table:

"P(1,100<X<1,300)=P(-0.93<z<0.70)="

"=0.7580-0.1762=0.5818=58.18\\%."

Answer: 58.18%.