Câu 2 : \(f\left(x\right)=x^3-ax^2+bx-a\)

Áp dụng định lý Bezout ta có:

\(f\left(x\right)⋮\left(x-1\right)\)\(\Rightarrow f\left(1\right)=0\)

\(\Rightarrow1^3-a.1^2+b.1-a=1-a+b-a=0\)

\(\Leftrightarrow1-2a+b=0\)\(\Leftrightarrow2a-b=1\)(1)

\(\Rightarrow3\left(2a-b\right)=3\)\(\Rightarrow6a-3b=3\)(2)

\(f\left(x\right)⋮\left(x-3\right)\)\(\Rightarrow f\left(3\right)=0\)

\(\Rightarrow3^3-a.3^2+3b-a=27-9a+3b-a=0\)

\(\Leftrightarrow27-10a+3b=0\)\(\Leftrightarrow10a-3b=27\)(3)

Từ (2) và (3)

\(\Rightarrow\left(10a-3b\right)-\left(6a-3b\right)=27-3\)

\(\Leftrightarrow10a-3b-6a+3b=24\)

\(\Leftrightarrow4a=24\)\(\Leftrightarrow a=6\)

Thay \(a=6\)vào (1) ta có:

\(2.6-b=1\)\(\Leftrightarrow12-b=1\)\(\Leftrightarrow b=11\)

Vậy \(a=6\)và \(b=11\)

f(x) = ax\(^2\)+bx + 2019

=> \(f\left(1+\sqrt{2}\right)=a\left(1+\sqrt{2}\right)^2+b\left(1+\sqrt{2}\right)+2019=2020\)

<=> \(a+2\sqrt{2}a+2a+b+\sqrt{2}b-1=0\)

<=> \(\left(3a+b-1\right)+\sqrt{2}\left(2a+b\right)=0\)(1)

Vì a, b là số hữu tỉ => 3a + b -1 ; 2a + b là số hữu tỉ khi đó:

(1) <=> \(\hept{\begin{cases}3a+b-1=0\\2a+b=0\end{cases}\Leftrightarrow}\hept{\begin{cases}a=1\\b=-2\end{cases}}\)

=> \(f\left(1-\sqrt{2}\right)=2020\)

Ta có: 

\(P\left(1\right)=a+b+c+d+1\)

\(P\left(2\right)=8a+4b+2c+d+16\)

\(P\left(3\right)=27a+9b+3c+d+81\)

\(\Rightarrow100P\left(1\right)-198P\left(2\right)+100P\left(3\right)\)

\(=100\left(a+b+c+d+1\right)-198\left(8a+4b+2c+d+16\right)+100\left(27a+9b+3c+d+81\right)\)

\(=1216a+208b+4c+2d+5032=100.10-198.20+100.30=40\)

Ta lại có: 

\(f\left(12\right)+f\left(-8\right)=12^4+12^3a+12^2b+12c+d+8^4-8^3a+8^2b-8c+d\)

\(=\left(1216a+208b+4c+2d+5032\right)+19800\)

\(=40+19800=19840\)

\(\Rightarrow P=\frac{19840}{10}+25=2009\)

Đặt \(G\left(x\right)=f\left(x\right)-10x\)\(\Leftrightarrow\hept{f\left(x\right)=G\left(x\right)+10x}\)và \(G\left(x\right)\)có bậc 4 có hệ số cao nhất là 1

Từ đề bài ta có: \(\hept{\begin{cases}G\left(1\right)=f\left(1\right)-10=0\\G\left(2\right)=f\left(2\right)-20=0\\G\left(3\right)=f\left(3\right)-30=0\end{cases}}\)\(\Rightarrow x=1;2;3\)là 3 nghiệm của\(G\left(x\right)\)

\(\Rightarrow G\left(x\right)\)có dạng \(G\left(x\right)=\left(x-1\right)\left(x-2\right)\left(x-3\right)\left(x-k\right)\)

\(\Rightarrow\hept{\begin{cases}G\left(12\right)=\left(12-1\right)\left(12-2\right)\left(12-3\right)\left(12-k\right)=11880-990k\\G\left(-8\right)=\left(-8-1\right)\left(-8-2\right)\left(-8-3\right)\left(-8-k\right)=7920+990k\end{cases}}\)

\(\Rightarrow\hept{\begin{cases}f\left(12\right)=G\left(12\right)+12\times10=12000-990k\\f\left(-8\right)=G\left(-8\right)+10\times\left(-8\right)=7840+990k\end{cases}}\)

\(\Rightarrow f\left(12\right)+f\left(-8\right)=12000-990k+7840+990k=19840\)

\(\Rightarrow P=\frac{19840}{10}+25=2009\)