PVS: pf:gcd_def - proof from gcd

FDL > PVS > Number Theory > gcd > gcd def > pf:gcd def > 1 > 1 > 1 (6 nodes)

Conclusion

-1. gcd(i!1, j!1) = nn!1
-2. (i!1 /= 0) OR (j!1 /= 0)

1. (divides(nn!1, i!1) AND divides(nn!1, j!1)) AND (FORALL mm : (divides(mm, i!1) AND divides(mm, j!1)) IMPLIES (mm < = nn!1))

Tactic
ASSERT

Premise 1. (has proof of 5 steps)

-1. gcd(i!1, j!1) = nn!1
-2. (i!1 /= 0) OR (j!1 /= 0)

1. FORALL mm : (divides(mm, i!1) AND divides(mm, j!1)) IMPLIES (mm < = nn!1)