a) Ta có: ΔABC cân tại A(gt)

nên \(\widehat{ABC}=\widehat{ACB}\)(hai góc ở đáy)

mà \(\widehat{ACB}=\widehat{ECK}\)(hai góc đối đỉnh)

nên \(\widehat{ABC}=\widehat{ECK}\)

hay \(\widehat{DBH}=\widehat{ECK}\)

Xét ΔDBH vuông tại H và ΔECK vuông tại K có

BD=CE(gt)

\(\widehat{DBH}=\widehat{ECK}\)(cmt)

Do đó: ΔDBH=ΔECK(Cạnh huyền-góc nhọn)

Suy ra: BH=CK(Hai cạnh tương ứng)

Còn câu b thì sao bn

Ta có: \(\widehat{ABK}+\widehat{ABC}=180^0\)(hai góc kề bù)

\(\widehat{ECB}+\widehat{ACB}=180^0\)(hai góc kề bù)

mà \(\widehat{ABC}=\widehat{ACB}\)(hai góc ở đáy của ΔABC cân tại A)

nên \(\widehat{ABK}=\widehat{ECB}\)

hay \(\widehat{DBK}=\widehat{ECI}\)(đpcm)

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xin lỗi mk ko bt giải vì chưa ok 

ai như vậy thì k mk nha

1:

a: Xét ΔABC có AD là phân giác

nên BD/AB=CD/AC

mà AB<AC

nên BD<CD

b: AB<AC
=>góc B>góc C

góc ADB=góc C+góc CAD

góc ADC=góc B+góc BAD

mà góc C<góc B và góc CAD=góc BAD

nên góc ADB<góc ADC

Từ D kẻ DI // AE

Vì ΔΔABC cân tại A nên BˆB^ = ACBˆACB^ (1)

Vì DI // AE => ACBˆACB^ = DIBˆDIB^ (đồng vị ) (2)

Từ (1) và (2) => BˆB^ = DIBˆDIB^

Trong ΔΔDIB có : BˆB^ = DIBˆDIB^ => ΔΔDIB cân tại D

=> DB = DI mà DB = CE (gt)

=> DI = CE

Vì DI // AE => MDIˆMDI^ = MECˆMEC^(so le trong )

và DIMˆDIM^ = MCEˆMCE^ ( so le trong )

Xét ΔΔDIM và ΔΔECM có :

MDIˆMDI^ = MECˆMEC^ (chứng minh trên )

đăng từ năm ngoái năm nay moi trả lời