$\text{ Let }{d}_1,d_2,d_3,\text{ be three mutually exclusive diseases. Let }S=\left\{S_1,S_2,S_3\dots \dots .S_6\right\}\text{ be }$the set of observable symptoms of these diseases. For example $S_1$ is the shortness of breath, $S_2$ is loss of weight, $S_3$ is fatigue etc. suppose a random sample of 10,000 patients contains 3200 patients with disease $d_1$. 3500 with disease $d_2$ and 3300 with disease $d_3$. Also, 3100 patients with disease $d_1$, 3300 with disease $d_2$ and 3000 with disease $d_3$, show the symptom S. knowing that the patient has symptom S, the doctor wishes to determine the patient’s illness.

$\text{ Let }{\mathrm{E}}_1\text{ denote the event that the patient has disease }{d}_j;i=1,2,3\text{ and }A\text{ be the }$

$\begin{array}{l}P\left(E_1\right)=\frac{3200}{10000}=\frac{32}{100},P\left(E_2\right)=\frac{3500}{10000}=\frac{35}{100}\\ P\left(E_3\right)=\frac{3300}{10000}=\frac{33}{100}\\ P\left(A\cap E_1\right)=\frac{3100}{10000}=\frac{31}{100},P\left(A\cap E_2\right)=\frac{3300}{10000}=\frac{33}{100}\text{ and }P\left(A\cap E_3\right)=\frac{3000}{10000}=\frac{3}{10}\end{array}$

$\begin{array}{r}\therefore P\left(\frac{A}{E_1}\right)=\frac{P\left(A\cap E_1\right)}{P\left(E_1\right)}\\ \Rightarrow P\left(\frac{A}{E_1}\right)=\frac{\frac{31}{100}}{\frac{32}{100}}=\frac{31}{32}\\ P\left(\frac{A}{E_2}\right)=\frac{P\left(A\cap E_2\right)}{P\left(E_2\right)}\\ \Rightarrow P\left(\frac{A}{E_2}\right)=\frac{\frac{33}{100}}{\frac{35}{100}}=\frac{33}{35}\\ P\left(\frac{A}{E_3}\right)=\frac{P\left(A\cap E_3\right)}{P\left(E_3\right)}\end{array}$

$\Rightarrow P\left(\frac{A}{E_3}\right)=\frac{\frac{3}{10}}{\frac{33}{100}}=\frac{30}{33}$

Using Bayes’ theorem, we have

$\begin{array}{l}P\left(\frac{E_1}{A}\right)=\frac{P\left(E_1\right)P\left(\frac{A}{E_1}\right)}{P\left(E_1\right)P\left(\frac{A}{E_1}\right)+P\left(E_2\right)P\left(\frac{A}{E_2}\right)+P\left(E_3\right)P\left(\frac{A}{E_3}\right)}\\ =\frac{\frac{32}{100}\times \frac{31}{32}}{\frac{32}{100}\times \frac{31}{32}+\frac{35}{100}\times \frac{33}{35}+\frac{33}{100\times \frac{30}{33}}=\frac{31}{94}}\\ P\left(\frac{E_2}{A}\right)=\frac{P\left(E_2\right)P\left(\frac{A}{E_2}\right)}{P\left(E_1\right)P\left(\frac{A}{E_1}\right)+P\left(E_2\right)P\left(\frac{A}{E_2}\right)+P\left(E_3\right)P\left(\frac{A}{E_3}\right)}\end{array}$

$\begin{array}{l}=\frac{\frac{35}{100}\times \frac{33}{35}}{\frac{32}{100}\times \frac{31}{32}+\frac{35}{100}\times \frac{33}{35}+\frac{33}{100}\times \frac{30}{33}}=\frac{33}{94}\text{ and }\\ P\left(\frac{E_3}{A}\right)=\frac{P\left(E_3\right)P\left(\frac{A}{E_3}\right)}{P\left(E_1\right)P\left(\frac{A}{E_1}\right)+P\left(E_2\right)P\left(\frac{A}{E_2}\right)+P\left(E_3\right)P\left(\frac{A}{E_3}\right)}\\ =\frac{\frac{33}{100}\times \frac{30}{33}}{\frac{32}{100}\times \frac{31}{32}+\frac{35}{100}\times \frac{33}{35}+\frac{33}{100}\times \frac{30}{33}}=\frac{30}{94}\end{array}$

$P\left(\frac{E_3}{A}\right)<P\left(\frac{E_1}{A}\right)<P\left(\frac{E_2}{A}\right)$

is largest. Thus the doctor should conclude that the patient is most likely to have disease $d_2$