∵AD是高线,
∴AD⊥CB,
∴ME⊥CB.
连接BM,在△CBM中ME是中线也是高线,
∴△MBE是等腰三角形,
∴BM=CM,∠C=∠CBM,
又∵∠B=2∠C,
∴∠MBA=∠C,
又∵∠CAB=∠CAB,
∴△MAB∽△BAC,
∴
| AB |
| MA |
| CB |
| MB |
| CB |
| MC |
∵ME∥AD,
∴
| CE |
| ED |
| CM |
| MA |
| 1 |
| 2 |
∴
| CB |
| CM |
| 2ED |
| AM |
∴AB=2DE,
∵AB=10,
∴DE=5.
故答案为:5.
| AB |
| MA |
| CB |
| MB |
| CB |
| MC |
| CE |
| ED |
| CM |
| MA |
| 1 |
| 2 |
| CB |
| CM |
| 2ED |
| AM |