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\(\frac{(b-c)(1+a)^2}{x+a^2}+\frac{(c-a)(1+b)^2}{x+b^2}+\frac{(a-b) (1+c)^2}{x+c^2}=0\)
\(\Leftrightarrow \sum (b-c)(1+a)^2(x+b^2)(x+c^2)=0\)
\(\Leftrightarrow (a-b)(b-c)(c-a)(x^2+(-2a-ca-ba-cb-2c-2b-1)x+ba+2acb+cb+ca)=0\)
\(\Leftrightarrow x^2+(-2a-ca-ba-cb-2c-2b-1)x+ba+2acb+cb+ca=0\)
Xét phương trình \(x^2+(-2a-ca-ba-cb-2c-2b-1)x+ba+2acb+cb+ca=0\)
Ta thấy \(\Delta=(2a+2b+2c+ab+bc+ca-1)^2+8(a+b+c-abc)\)
Nếu \(\Delta <0\) thì phương trình vô nghiệm
Nếu \(\Delta =0\) thì phương trình có nghiệm kép
Nếu \(\Delta >0\) thì phương trình có hai nghiệm
==" tách a^2 +ac-b^2 - bc = (a-b)(a+b+c)
tương tụ mấy sô kia mày sẽ thấy kết quả :))
\(a,4\left(x-3\right)^2-\left(2x-1\right)^2\ge12\)
\(\Leftrightarrow4x^2-24x+36-4x^2-4x+1\ge12\)
\(\Leftrightarrow-28x+37\ge12\)
\(\Leftrightarrow-28x\ge12-37\)
\(\Leftrightarrow-28x\ge-25\)
\(\Leftrightarrow x\le\dfrac{25}{28}\)
Vậy \(S=\left\{x\left|x\le\dfrac{25}{28}\right|\right\}\)
b, \(\left(x-4\right)\left(x+4\right)\ge\left(x+3\right)^2+5\)
\(\Leftrightarrow x^2-16\ge x^2+6x+9+5\)
\(\Leftrightarrow x^2-x^2-6x\ge9+5+16\)
\(\Leftrightarrow-6x\ge30\)
\(\Leftrightarrow x\le-5\)
Vậy \(S=\left\{x\left|x\le-5\right|\right\}\)
\(c,\left(3x-1\right)^2-9\left(x+2\right)\left(x-2\right)< 5x\)
\(\Leftrightarrow9x^2-6x-1-9x^2+36< 5x\)
\(\Leftrightarrow9x^2-9x^2-6x-5x+36+1< 0\)
\(\Leftrightarrow-11x+37< 0\)
\(\Leftrightarrow-11x< -37\)
\(\Leftrightarrow x>\dfrac{37}{11}\)
vậy \(S=\left\{x\left|x>\dfrac{37}{11}\right|\right\}\)
đề như thế thì đương nhiên phải có điều kiện đó chứ em, đề đúng rồi anh xin xóa câu trl
1. ĐKXĐ: \(a,b,c\) đôi một khác nhau.
\(\dfrac{\left(x-a\right)\left(x-c\right)}{\left(b-a\right)\left(b-c\right)}+\dfrac{\left(x-b\right)\left(x-c\right)}{\left(a-b\right)\left(a-c\right)}=1\)
⇔\(\dfrac{x-c}{a-b}\left(\dfrac{x-b}{a-c}-\dfrac{x-a}{b-c}\right)=1\)
⇔\(\dfrac{x-c}{a-b}.\dfrac{\left(x-b\right)\left(b-c\right)-\left(x-a\right)\left(a-c\right)}{\left(a-c\right)\left(b-c\right)}=1\)
⇔\(\dfrac{x-c}{a-b}.\dfrac{bx-cx-b^2+bc-\left(ax-cx-a^2+ac\right)}{\left(a-c\right)\left(b-c\right)}=1\)
⇔\(\dfrac{x-c}{a-b}.\dfrac{bx-b^2+bc-ax+a^2-ac}{\left(a-c\right)\left(b-c\right)}=1\)
⇔\(\dfrac{x-c}{a-b}.\dfrac{x\left(b-a\right)+c\left(b-a\right)-\left(b-a\right)\left(a+b\right)}{\left(a-c\right)\left(b-c\right)}=1\)
⇔\(\dfrac{x-c}{a-b}.\dfrac{\left(b-a\right)\left(x-a-b+c\right)}{\left(a-c\right)\left(b-c\right)}=1\)
⇔\(\dfrac{\left(x-c\right)\left(a-b\right)\left(x-a-b+c\right)}{\left(a-b\right)\left(c-a\right)\left(b-c\right)}-1=0\)
⇔\(\dfrac{\left(x-c\right)\left(a-b\right)\left(x-a-b+c\right)}{\left(a-b\right)\left(c-a\right)\left(b-c\right)}-\dfrac{\left(a-b\right)\left(b-c\right)\left(c-a\right)}{\left(a-b\right)\left(b-c\right)\left(c-a\right)}=0\)
⇔\(\left(x-c\right)\left(a-b\right)\left(x-a-b+c\right)-\left(a-b\right)\left(b-c\right)\left(c-a\right)=0\)
⇔\(\left(a-b\right)\left[\left(x-c\right)\left(x-a-b+c\right)-\left(b-c\right)\left(c-a\right)\right]=0\)
⇔\(a-b=0\) (loại do \(a\ne b\)) hay \(\left(x-c\right)\left(x-a-b+c\right)-\left(b-c\right)\left(c-a\right)=0\)
⇔\(x^2-ax-bx+cx-cx+ac+bc-c^2-\left(bc-ab-c^2+ac\right)=0\)
⇔\(x^2-ax-bx+cx-cx+ac+bc-c^2-bc+ab+c^2-ac=0\)
⇔\(x^2-ax-bx+ab=0\)
⇔\(x\left(x-a\right)-b\left(x-a\right)\)
⇔\(\left(x-a\right)\left(x-b\right)=0\)
⇔\(x=a\) hay \(x=b\)
-Vậy \(S=\left\{a;b\right\}\)
a) Ta có : \(\left(4x+2\right)\left(x^2+1\right)=0\)
\(\Leftrightarrow\orbr{\begin{cases}4x+2=0\\x^2+1=0\end{cases}\Leftrightarrow\orbr{\begin{cases}4x=-2\\x^2=-1\left(loai\right)\end{cases}\Leftrightarrow}x=-2}\)
\(\left(3x+2\right).\left(x^2-1\right)=\left[\left(3x\right)^2-2^2\right].\left(x+1\right)\)
\(\Rightarrow\left(3x+2\right).\left(x-1\right).\left(x+1\right)-\left(3x-2\right).\left(3x+2\right).\left(x+1\right)=0\)
\(\Rightarrow\left(3x+2\right).\left(x+1\right).\left[x-1-3x+2\right]=0\)
\(\Rightarrow\left(3x+2\right).\left(x+1\right).\left(-2x+1\right)=0\)
đến đây dễ rồi :))
b) Đặt \(x-7=a\) ta có:
\(\left(a+1\right)^4+\left(a-1\right)^4=16\)
\(\Leftrightarrow\)\(a^4+4a^3+6a^2+4a+1+a^4-4a^3+6a^2-4a+1=16\)
\(\Leftrightarrow\)\(2a^4+12a^2+2-16=0\)
\(\Leftrightarrow\)\(2\left(a^4+6a^2-7\right)=0\)
\(\Leftrightarrow\)\(a^4+6a^2-7=0\)
\(\Leftrightarrow\)\(\left(a-1\right)\left(a+1\right)\left(a^2+7\right)=0\)
Vì \(a^2+7>0\) nên \(\orbr{\begin{cases}a-1=0\\a+1=0\end{cases}}\)
Thay trở lại ta có: \(\orbr{\begin{cases}x-8=0\\x-6=0\end{cases}}\) \(\Leftrightarrow\)\(\orbr{\begin{cases}x=8\\x=6\end{cases}}\)
Vậy...
Ta có \(2\left(a^2+1\right)\ge\left(a+1\right)^2\)
\(2\left(b^2+1\right)\ge\left(b+1\right)^2\)
\(\left(a^2+1\right)\left(b^2+1\right)=a^2b^2+a^2+b^2+1\)
\(=\left(ab+1\right)^2+\left(a-b\right)^2\)
\(\ge\left(ab+1\right)^2\)
\(\Rightarrow4\left(a^2+1\right)^2\left(b^2+1\right)^2\ge\left(a+1\right)^2\left(b+1\right)^2\left(ab+1\right)^2\)
\(\Rightarrow2\left(a^2+1\right)\left(b^2+1\right)\ge\left(a+1\right)\left(b+1\right)\left(ab+1\right)\)
để \(2\left(a^2+1\right)\left(b^2+1\right)\ge\left(a+1\right)\left(b+1\right)\left(ab+1\right)\)
\(\Rightarrow a=1;b=1\)
đoạn thứ ba không dùng bunhia cho nhanh