(1)∠1+∠2=180°-2∠CDE+180°-2∠CED=360°-2(∠CDE+∠CED)
=360°-2(180°-∠C)
=2∠C
=60°;
(2)连接DG,
∠1+∠2=180°-∠C′-(∠ADG+∠AGD)
=180°-30°-(180°-80°)
=50°;
(3)∠2-∠1=180°-2∠CED-(2∠CDE-180°)
=360°-2(∠CDE+∠CED)
=360°-2(180°-∠C)
=2∠C
所以:∠2-∠1=2∠C.
(1)∠1+∠2=180°-2∠CDE+180°-2∠CED