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英語 高校生

関係詞の分野です。至急解答をお願いします🙏

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未解決 回答数: 1
数学 高校生

数列です。計算したのですがbnで解答と変わってしまいました、どうしてもどこで間違えたか見つけられなくて、、どこで間違ったか教えてもらいたいです、 お願いします🤲🏻🙇‍♀️

8 ■る. (大) んですか 2項間漸化式 (4) 整式型~ 1=6, an+1=3an-6n+3(n=1, 2, 3, ...) で定められる数列 an | がある . (1) an+1-an=6m とするとき, bn+1 を bn を用いて表せ. (2) 数列{an}の一般項を求めよ. 149 ai 解答 (1)与えられた漸化式から, an+2=3an+1-6(n+1)+3 an+1=3an-6n+3 (2) まず,数列{bn}の一般項を求める. 数列{bn}の初項 by は, ①-②から, an+2an+1=3(an+1-an) - 6 ここで, an-1-am=b, とすると,左辺の an+2an+1=bn+1 であり,③から, bn+1=3b₂-6 b1=a2a1=(3a1-6・1+3) -a α2 は②n=1 にすればよい =2a1-3=2・6-3=9 bn+1=36-6を変形すると, よって, α=3α-6より α = 3 になるから, bn+1-3=3(bn-3) [+b+1=3bm - 6 これより,数列{bm-3}は公比3の等比数列であり,-) 3=3・3 - 6 (0) GLED). bn+1-3=306-3) 初項 b1-3=9-3=6 b-3=6.3”-1=2.3" = であるから、④より, an+1-am=2・3"+3 さらに, 左辺に②を用いて an+1 を消去すると, (3an-6n+3) -an=2.3"+3 2an=2.3"+6n nをn+1に取りかえた HOSHASHI+ . .bm=2・3"+3 ・・・④ 文系 数学の必勝ポイント・ BA ∴. an=3"+3n (東洋大) [解説講義 an+1=pan+f(n)(f(n)はnの1次式が多い)の形の漸化式は,文系の入試では,本問のよう な誘導がつけられることが一般的で、誘導に従って考えていくと「基本形の漸化式」に帰着 されることが多い 「n を n +1に変えた漸化式 an+2=pan+1+ f(n+1) を作って,与えられた 漸化式との差 (解答の①-②)を考えて,置きかえる」という解法の特徴を理解しておこう. an+1=pan+f(n) の形の漸化式 nan+1に変えた式を作って, その差を考える 185

解決済み 回答数: 1