如图,点E是矩形ABCD边BC延长线上一点,AE交CD于F,G为AF中点.若∠DEA=2∠AEB,且DG=4,CE=1,则AB的长为()A.3B.4C.17D.15
<p>问题:如图,点E是矩形ABCD边BC延长线上一点,AE交CD于F,G为AF中点.若∠DEA=2∠AEB,且DG=4,CE=1,则AB的长为()A.3B.4C.17D.15<p>答案:↓↓↓<p class="nav-title mt10" style="border-top:1px solid #ccc;padding-top: 10px;">李文荣的回答:<div class="content-b">网友采纳 ∵G为AF中点,∠ADC=90°,∴DG=AG=12AF,∴∠GAD=∠GDA,∴∠DGE=∠GAD+∠GDA=2∠GAD,∵矩形对边AD∥BC,∴∠GAD=∠AEB,∴∠DGE=2∠AEB,∵∠DEA=2∠AEB,∴∠DGE=∠DEG,∴DG=DE=4,由勾股定理得,CD=DE2−CE2=4...
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