\(f^3\left(2-x\right)-2f^2\left(2+3x\right)+x^2g\left(x\right)+36x=0\) (1)

Thay \(x=0\Rightarrow f^3\left(2\right)-2f^2\left(2\right)=0\Rightarrow\left[{}\begin{matrix}f\left(2\right)=0\\f\left(2\right)=2\end{matrix}\right.\)

Đạo hàm 2 vế của (1):

\(\Rightarrow-3f^2\left(2-x\right).f'\left(2-x\right)-12f\left(2+3x\right).f'\left(2+3x\right)+2x.g\left(x\right)+x^2.g'\left(x\right)+36=0\)

Thay \(x=0\)

\(\Rightarrow-3f^2\left(2\right).f'\left(2\right)-12f\left(2\right).f'\left(2\right)+36=0\)

TH1: \(f\left(2\right)=0\Rightarrow36=0\) (ktm)

TH2: \(f\left(2\right)=2\)

\(\Rightarrow-3.2^2.f'\left(2\right)-12.2.f'\left(2\right)+36=0\Rightarrow f'\left(2\right)=1\)

\(\Rightarrow A=3.2+4.1=10\)

Đặt \(g\left(x\right)=\left(1+x\right)\left(2+x\right)...\left(2017+x\right)\)

\(\Rightarrow g\left(0\right)=1.2.3...2017=2017!\)

\(f\left(x\right)=\dfrac{x}{g\left(x\right)}\Rightarrow f'\left(x\right)=\dfrac{g\left(x\right)-x.g'\left(x\right)}{g^2\left(x\right)}\)

\(\Rightarrow f'\left(0\right)=\dfrac{g\left(0\right)-0.g'\left(x\right)}{\left[g\left(0\right)\right]^2}=\dfrac{g\left(0\right)}{\left[g\left(0\right)\right]^2}=\dfrac{1}{g\left(0\right)}=\dfrac{1}{2017!}\)

Lời giải:

Thay $x=0$ vào điều kiện đề thì $f(1)=0$ hoặc $f(1)=-1$ 

Đạo hàm 2 vế:

$4f(2x+1)f'(2x+1)_{2x+1}=1+3f(1-x)^2f'(1-x)_{1-x}$

Thay $x=0$ vô thì:

$4f(1)f'(1)=1+3f(1)^2f'(1)$

Nếu $f(1)=0$ thì hiển nhiên vô lý

Nếu $f(1)=-1$ thì: $-4f'(1)=1+3f'(1)\Rightarrow f'(1)=\frac{-1}{7}$

PTTT tại $x=1$ có dạng:

$y=f'(1)(x-1)+f(1)=\frac{-1}{7}(x-1)-1=\frac{-x}{7}-\frac{6}{7}$

Bài 1:

Cho $y=0$ thì: $f(x^3)=xf(x^2)$

Tương tự khi cho $x=0$

$\Rightarrow f(x^3-y^3)=xf(x^2)-yf(y^2)=f(x^3)-f(y^3)$

$\Rightarrow f(x-y)=f(x)-f(y)$ với mọi $x,y\in\mathbb{R}$

Cho $x=0$ thì $f(-y)=0-f(y)=-f(y)$

Cho $y\to -y$ thì: $f(x+y)=f(x)-f(-y)=f(x)--f(y)=f(x)+f(y)$ với mọi $x,y\in\mathbb{R}$

Đến đây ta có:

$f[(x+1)^3+(x-1)^3]=f(2x^3+6x)=f(2x^3)+f(6x)$
$=2f(x^3)+6f(x)=2xf(x^2)+6f(x)$

$f[(x+1)^3+(x-1)^3]=f[(x+1)^3-(1-x)^3]$

$=(x+1)f((x+1)^2)-(1-x)f((1-x)^2)$

$=(x+1)f(x^2+2x+1)+(x-1)f(x^2-2x+1)$

$=(x+1)[f(x^2)+2f(x)+f(1)]+(x-1)[f(x^2)-2f(x)+f(1)]$

$=2xf(x^2)+4f(x)+2xf(1)$

Do đó:

$2xf(x^2)+6f(x)=2xf(x^2)+4f(x)+2xf(1)$

$2f(x)=2xf(1)$

$f(x)=xf(1)=ax$ với $a=f(1)$

\(f\left(x^5+y^5+y\right)=x^3f\left(x^2\right)+y^3f\left(y^2\right)+f\left(y\right)\)

Sửa lại đề câu 2 !!

\(f\left(-1\right)=\lim\limits_{x\rightarrow-1^-}f\left(x\right)=\lim\limits_{x\rightarrow-1^-}\left(2-ax\right)=2+a\)

\(\lim\limits_{x\rightarrow-1^+}f\left(x\right)=\lim\limits_{x\rightarrow-1^+}\left(x^2-bx+2\right)=3+b\)

\(f\left(1\right)=\lim\limits_{x\rightarrow1^+}f\left(x\right)=\lim\limits_{x\rightarrow1^+}\left(4x+a\right)=4+a\)

\(\lim\limits_{x\rightarrow1^-}f\left(x\right)=\lim\limits_{x\rightarrow1^-}\left(x^2-bx+2\right)=3-b\)

Hàm liên tục trên R khi và chỉ khi:

\(\left\{{}\begin{matrix}2+a=3+b\\4+a=3-b\end{matrix}\right.\) \(\Leftrightarrow\left\{{}\begin{matrix}a=0\\b=-1\end{matrix}\right.\)