(3x-3)^2*(2y+2)^2=(3x+2y-1)(3x-2y-5)那行為什麼?怎麼算的~?
回答 (2)
2015-09-09 2:44 pm
✔ 最佳答案
題目中的「*」應是「-」之誤。公式:a² - b² = (a + b)(a - b)
設 a = 3x - 3 及 b = 2y + 2
(3x - 3)² - (2y + 2)²
= a² - b²
= (a + b)(a - b)
= [(3x - 3) + (2y + 2)] [(3x - 3) - (2y + 2)]
= (3x - 3 + 2y + 2)(3x - 3 - 2y - 2)
= (3x + 2y - 1)(3x - 2y - 5)
2015-11-22 1:48 am
(3x-3)^2 -(2y+2)^2
=[(3x-3)-(2y+2)][(3x-3)+(2y+2)]
=(3x-2y-5)(3x+2y-1)
=[(3x-3)-(2y+2)][(3x-3)+(2y+2)]
=(3x-2y-5)(3x+2y-1)
收錄日期: 2021-04-18 00:14:04
原文連結 [永久失效]:
https://hk.answers.yahoo.com/question/index?qid=20150909060805AAEPtQn