解:分别过E,F做AB的平行线,使AB∥GH∥MN∥CD∵AB∥GH∥MN∥CD∴∠B=∠BEH,∠HEF=∠EFM,∠D+∠MFD=180°∵∠BEH+∠HEF=∠E=50°,∠EFM+∠MFD=∠F∴∠B+∠F+∠D=∠BEF+∠HEF+∠MFD+∠D=(∠BEF+∠HEF)+(∠MFD+∠D)=50°+180°=230°故答案为:230°
