证明:∵∠BAC=180-(∠B+∠C),AE平分∠BAC∴∠CAE=∠BAC/2=90-(∠B+∠C)/2∵AD⊥BC∴∠C+∠CAD=90∴∠CAD=90-∠C∴∠DAE=∠CAE-∠CAD=90-(∠B+∠C)/2-90+∠C=(∠C-∠B)/2
