(1)cd等于bf∵角BAF=角DACAB=ADAF=AD∴DC=BF(2)连接BD设DC,BF交点为H∵角ABF=角ADC角ADB+角ABD=90度∴角HDB+角HBD=90度三角形内角和为180度∴角BHD=90度∴CD垂直BF
解:(1)∵正方形ADEB、ACGF∴AD=AB、AC=AF且∠DAB=∠CAF=90°∴∠DAB+∠BAC=∠CAF+∠BAC即∠DAC=∠BAF易证
