解:∵∠A=80∴∠B+∠C=180-∠A=100∵BD=BE∴∠BDE=(180-∠B)/2=90-∠B/2∵CD=CF∴∠CDF=(180-∠C)/2=90-∠C/2∴∠EDF=180-(∠BDE+∠CDF)=180-(90-∠B/2+90-∠C/2)=(∠B+∠C)/2=50°
