Answer:
[tex]A=-10\\B=-8\\C=-6\\D=-4[/tex]
Step-by-step explanation:
We can solve the problem in this way:
- The 1st information that we have is that the four numbers are even and consecutive integer. Let's call these numbers A, B, C and D. This means that:
[tex]D=C+2\\C=B+2\\B=A+2[/tex]
(since the distance between two even consecutive numbers is 2)
- The 2nd information that is given is that the sum of the first and third multiplied by 3 equals 28 less than 5 times the fourth, so:
[tex]3(A+C)=5D-28[/tex] (1)
Now we rewrite eq(1) by using:
[tex]D=C+2[/tex]
and
[tex]A=C-4[/tex] (obtained by combining the 3 first equations)
So we get:
[tex]3(C-4+C)=5(C+2)-28[/tex]
Solving this equation for C,
[tex]6C-12=5C+10-28\\C=-6[/tex]
So the other numbers are:
[tex]A=-10\\B=-8\\C=-6\\D=-4[/tex]
