abced這幅畫是誰畫的啊??
請問abced這幅<愛尬聊_百科詞條>畫是誰畫的啊?在線等。。
958188 2022-04-01 22:56 過D點做DH//CF交AB于點H所以 AE/ED = AF/FH (平行線分線段成比例定理) 因為 BD=DC,DH//CF所以 BH=FH (平行線分線段成比例定理)所以 AE/ED = AF/FH = AF/(BF/2) =2AF/BF得證。
〥WaI〤 2022-04-01 23:01 過A點作AF垂直BD、AG垂直BC求證:△ABF與△AGE相似得到:AB:AE=AF:AG在△AGC中 AG =√3/2 AC=√3/2 AB在△AFD中 AD=5 AF=5/2√3答案:AB=√20
堅果123#p#popo242 2022-04-01 23:05 過D點作BF的平行線DG交AC與G, 設S(△AEF)=x,則由EF∥DG,且AE=ED可知,S(△ADG)=4x,即S(DEFG)=3x, 設S(△CDG)=y,則由DG∥BF,且BD:DC=2:1可知,S(△BCF)=9y,即S(BDGF)=8y, 同時,由于BD:DC=2:1,AE=ED,可知S(△ABE)=S(△BDE)=S(△ACD)=1/3*S=35平方厘米, 所以35+3x=8y, 4x+y=35, 所以可求得,x=7,y=7, 所以陰影部分面積為:S(△BDE)+S(△AEF)=35+7=42。麻煩采納,謝謝!
overo0o#p#40459 2022-04-01 23:06 30 由題, 把Rt△ABC折疊,使A、B兩點重合,則∠A=∠EBA, 再沿BE折疊,C點恰好與D點重合,則∠EBA=∠CBE,即∠A=∠EBA=∠CBE,而在Rt△ABC中, ∠A+∠ABC=90°=3∠A,所以∠A=30°.
u_108645488 2022-04-01 23:11
掩飾不了的愛#p#花素了年華 2022-04-01 23:19 分析:由已知根據等腰三角形的性質可得到幾組相等的角,再根據三角形外角的性質可得到∠C與∠A之間的關系,從而再利用三角形內角和定理求解即可.解答:解:∵AE=ED,∴∠ADE=∠A,∴∠DEB=∠A+∠ADE=2∠A,∵BD=ED,∴∠ABD=∠DEB=2∠A,∴∠BDC=∠A+∠ABD=3∠A,∵BD=BC,∴∠C=∠BDC=3∠A,∵AB=AC,∴∠ABC=∠C=3∠A,∵∠ABC+∠C+∠A=180°,∴7∠A=180°,∴∠A=( 180/7)°.
958188 2022-04-01 22:56 過D點做DH//CF交AB于點H所以 AE/ED = AF/FH (平行線分線段成比例定理) 因為 BD=DC,DH//CF所以 BH=FH (平行線分線段成比例定理)所以 AE/ED = AF/FH = AF/(BF/2) =2AF/BF得證。
〥WaI〤 2022-04-01 23:01 過A點作AF垂直BD、AG垂直BC求證:△ABF與△AGE相似得到:AB:AE=AF:AG在△AGC中 AG =√3/2 AC=√3/2 AB在△AFD中 AD=5 AF=5/2√3答案:AB=√20
堅果123#p#popo242 2022-04-01 23:05 過D點作BF的平行線DG交AC與G, 設S(△AEF)=x,則由EF∥DG,且AE=ED可知,S(△ADG)=4x,即S(DEFG)=3x, 設S(△CDG)=y,則由DG∥BF,且BD:DC=2:1可知,S(△BCF)=9y,即S(BDGF)=8y, 同時,由于BD:DC=2:1,AE=ED,可知S(△ABE)=S(△BDE)=S(△ACD)=1/3*S=35平方厘米, 所以35+3x=8y, 4x+y=35, 所以可求得,x=7,y=7, 所以陰影部分面積為:S(△BDE)+S(△AEF)=35+7=42。麻煩采納,謝謝!
overo0o#p#40459 2022-04-01 23:06 30 由題, 把Rt△ABC折疊,使A、B兩點重合,則∠A=∠EBA, 再沿BE折疊,C點恰好與D點重合,則∠EBA=∠CBE,即∠A=∠EBA=∠CBE,而在Rt△ABC中, ∠A+∠ABC=90°=3∠A,所以∠A=30°.
u_108645488 2022-04-01 23:11
剛好前端時間弄過個類似的,會VBA的話參考一下我下面的VBA代碼,不會的話,直接下載附加我弄好的數據!
12345678910111213141516171819202122232425262728293031Option ExplicitDim r() As Variant, k As LongSub main() Dim a(1 To 5) As Variant, i As Long, p As Long a(1) = "A": a(2) = "B": a(3) = "C": a(4) = "D": a(5) = "E" Erase r: k = 0 perm a(), 1, 5 ActiveSheet.Cells.Clear For i = 1 To k p = p + 1 ActiveSheet.Range("a" & p) = r(i) Next i MsgBox pEnd SubPrivate Sub perm(ByRef arr() As Variant, ByVal s As Long, ByVal e As Long) Dim i As Integer, res As String, tmp As Variant If s > e Then For i = LBound(arr) To UBound(arr) res = res & arr(i) Next i k = k + 1 ReDim Preserve r(1 To k) r(k) = res Else For i = s To e tmp = arr(s): arr(s) = arr(i): arr(i) = tmp perm arr(), s + 1, e tmp = arr(s): arr(s) = arr(i): arr(i) = tmp Next i End IfEnd Sub很抱歉,回答者上傳的附件已失效掩飾不了的愛#p#花素了年華 2022-04-01 23:19 分析:由已知根據等腰三角形的性質可得到幾組相等的角,再根據三角形外角的性質可得到∠C與∠A之間的關系,從而再利用三角形內角和定理求解即可.解答:解:∵AE=ED,∴∠ADE=∠A,∴∠DEB=∠A+∠ADE=2∠A,∵BD=ED,∴∠ABD=∠DEB=2∠A,∴∠BDC=∠A+∠ABD=3∠A,∵BD=BC,∴∠C=∠BDC=3∠A,∵AB=AC,∴∠ABC=∠C=3∠A,∵∠ABC+∠C+∠A=180°,∴7∠A=180°,∴∠A=( 180/7)°.
