Answer: The minimum 
![[Ag^(+)]](https://img.qammunity.org/2021/formulas/chemistry/college/olsa8shvj9cd8zwjhfv1es86wljsrbwm1g.png) concentrations required to precipitate out the anions is
 concentrations required to precipitate out the anions is 
 M.
 M.
Step-by-step explanation:
We know that,
 
 for AgCl is
 for AgCl is 

and, 
 for
 for 
 is
 is 

Now, we will calculate the concentration of at which these ions precipitate out are as follows.
For AgCl :
 
![[Ag^(+)] = (K_(sp))/([Cl^(-)])](https://img.qammunity.org/2021/formulas/chemistry/college/z4uqdcmimy4kjes7b43xneadgr00esqr20.png)
 = 

 = 
 M
 M
For 
 :
 :
 
![[Ag^(+)]^(2) = (K_(sp))/(CrO^(2-)_(4))](https://img.qammunity.org/2021/formulas/chemistry/college/r9wmfh5a0mptgeouhqjwunezoruhpdgaxf.png)
 = 

 = 

 
![[Ag^(+)] = \sqrt{(9 * 10^(-9))}](https://img.qammunity.org/2021/formulas/chemistry/college/w4bbak7x8bz84fijn9lel07cyxbs2d09ql.png)
 = 
 M
 M
This shows that concentration of ions in AgCl is less than the concentration of AgCl will precipitate first.