1。因式分解9m2次方-25 2.因式分解5x2次方y-20y3次方
3.求恒等式中A及B的值:a. (5b+1)+(3b-2)=Ab+B
b.3x2次方+2x=Ax2次方+Bx c.9x+5(x+3x2次方)=Ax2次方+Bx
4.求恒等式中A.B.C的值;a.9k2次方-6k+4=AK2次方+BK+C
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中二數學題,急!!~~
2008-08-28 11:31 pm
回答 (1)
2008-08-29 2:26 am
✔ 最佳答案
1. 9m2 - 25 = (3m)2 - (5)2 = (3m - 5)(3m + 5)2. 5x2 - 20y3 = 5(x2 - 4y3)
3.a. (5b + 1) + (3b - 2) = Ab + B
8b - 1 = Ab + B
所以,A = 8 , B = -1
b. 3x2 + 2x = Ax2 + Bx
所以,A = 3 , B = 2
c. 9x + 5(x + 3x2) = Ax2 + Bx
15x2 + 14x = Ax2 + Bx
所以,A = 15 , B = 14
4. 9k2 - 6k + 4 = Ak2 + Bk + C
所以,A = 9 , B = -6 , C = 4
參考: Myself~~~
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