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d: ĐKXĐ: \(x^2-1< >0\)
=>\(x^2\ne1\)
=>\(x\notin\left\{1;-1\right\}\)
Vậy: TXĐ là D=R\{1;-1}
b: ĐKXĐ: \(2-x^2>0\)
=>\(x^2< 2\)
=>\(-\sqrt{2}< x< \sqrt{2}\)
Vậy: TXĐ là \(D=\left(-\sqrt{2};\sqrt{2}\right)\)
a: ĐKXĐ: \(x-1>0\)
=>x>1
Vậy: TXĐ là \(D=\left(1;+\infty\right)\)
c: ĐKXĐ: \(x^2+x-6>0\)
=>\(x^2+3x-2x-6>0\)
=>\(\left(x+3\right)\left(x-2\right)>0\)
TH1: \(\left\{{}\begin{matrix}x+3>0\\x-2>0\end{matrix}\right.\)
=>\(\left\{{}\begin{matrix}x>2\\x>-3\end{matrix}\right.\)
=>x>2
TH2: \(\left\{{}\begin{matrix}x+3< 0\\x-2< 0\end{matrix}\right.\)
=>\(\left\{{}\begin{matrix}x< -3\\x< 2\end{matrix}\right.\)
=>x<-3
Vậy: TXĐ là \(D=\left(2;+\infty\right)\cup\left(-\infty;-3\right)\)
e: ĐKXĐ: \(x^2-2>0\)
=>\(x^2>2\)
=>\(\left[{}\begin{matrix}x>\sqrt{2}\\x< -\sqrt{2}\end{matrix}\right.\)
Vậy: TXĐ là \(D=\left(-\infty;-\sqrt{2}\right)\cup\left(\sqrt{2};+\infty\right)\)
f: ĐKXĐ: \(\sqrt{x-1}>0\)
=>x-1>0
=>x>1
Vậy: TXĐ là \(D=\left(1;+\infty\right)\)
g: ĐKXĐ: \(x^2+x-6>0\)
=>\(\left(x+3\right)\left(x-2\right)>0\)
=>\(\left[{}\begin{matrix}x>2\\x< -3\end{matrix}\right.\)
Vậy: TXĐ là \(D=\left(2;+\infty\right)\cup\left(-\infty;-3\right)\)
1: \(2^x=64\)
=>\(x=log_264=6\)
2: \(2^x\cdot3^x\cdot5^x=7\)
=>\(\left(2\cdot3\cdot5\right)^x=7\)
=>\(30^x=7\)
=>\(x=log_{30}7\)
3: \(4^x+2\cdot2^x-3=0\)
=>\(\left(2^x\right)^2+2\cdot2^x-3=0\)
=>\(\left(2^x\right)^2+3\cdot2^x-2^x-3=0\)
=>\(\left(2^x+3\right)\left(2^x-1\right)=0\)
=>\(2^x-1=0\)
=>\(2^x=1\)
=>x=0
4: \(9^x-4\cdot3^x+3=0\)
=>\(\left(3^x\right)^2-4\cdot3^x+3=0\)
Đặt \(a=3^x\left(a>0\right)\)
Phương trình sẽ trở thành:
\(a^2-4a+3=0\)
=>(a-1)(a-3)=0
=>\(\left[{}\begin{matrix}a-1=0\\a-3=0\end{matrix}\right.\Leftrightarrow\left[{}\begin{matrix}a=1\left(nhận\right)\\a=3\left(nhận\right)\end{matrix}\right.\)
=>\(\left[{}\begin{matrix}3^x=1\\3^x=3\end{matrix}\right.\Leftrightarrow\left[{}\begin{matrix}x=1\\x=0\end{matrix}\right.\)
5: \(3^{2\left(x+1\right)}+3^{x+1}=6\)
=>\(\left[3^{x+1}\right]^2+3^{x+1}-6=0\)
=>\(\left(3^{x+1}\right)^2+3\cdot3^{x+1}-2\cdot3^{x+1}-6=0\)
=>\(3^{x+1}\left(3^{x+1}+3\right)-2\left(3^{x+1}+3\right)=0\)
=>\(\left(3^{x+1}+3\right)\left(3^{x+1}-2\right)=0\)
=>\(3^{x+1}-2=0\)
=>\(3^{x+1}=2\)
=>\(x+1=log_32\)
=>\(x=-1+log_32\)
6: \(\left(2-\sqrt{3}\right)^x+\left(2+\sqrt{3}\right)^x=2\)
=>\(\left(\dfrac{1}{2+\sqrt{3}}\right)^x+\left(2+\sqrt{3}\right)^x=2\)
=>\(\dfrac{1}{\left(2+\sqrt{3}\right)^x}+\left(2+\sqrt{3}\right)^x=2\)
Đặt \(b=\left(2+\sqrt{3}\right)^x\left(b>0\right)\)
Phương trình sẽ trở thành:
\(\dfrac{1}{b}+b=2\)
=>\(b^2+1=2b\)
=>\(b^2-2b+1=0\)
=>(b-1)2=0
=>b-1=0
=>b=1
=>\(\left(2+\sqrt{3}\right)^x=1\)
=>x=0
7: ĐKXĐ: \(x^2+3x>0\)
=>x(x+3)>0
=>\(\left[{}\begin{matrix}x>0\\x< -3\end{matrix}\right.\)
\(log_4\left(x^2+3x\right)=1\)
=>\(x^2+3x=4^1=4\)
=>\(x^2+3x-4=0\)
=>(x+4)(x-1)=0
=>\(\left[{}\begin{matrix}x+4=0\\x-1=0\end{matrix}\right.\Leftrightarrow\left[{}\begin{matrix}x=1\left(nhận\right)\\x=-4\left(nhận\right)\end{matrix}\right.\)
`a)TXĐ: R`
`b)TXĐ: R\\{0}`
`c)TXĐ: R\\{1}`
`d)TXĐ: (-oo;-1)uu(1;+oo)`
`e)TXĐ: (-oo;-1/2)uu(1/2;+oo)`
`f)TXĐ: (-oo;-\sqrt{2})uu(\sqrt{2};+oo)`
`h)TXĐ: (-oo;0) uu(2;+oo)`
`k)TXĐ: R\\{1/2}`
`l)ĐK: {(x^2-1 > 0),(x-2 > 0),(x-1 ne 0):}`
`<=>{([(x > 1),(x < -1):}),(x > 2),(x ne 1):}`
`<=>x > 2`
`=>TXĐ: (2;+oo)`
câu l) $x^2-1 > 0$ thì giải ra 2 nghiệm $x < -1, x > 1$ mới đúng chứ nhỉ?
a) \(\left(\dfrac{1}{16}\right)^{-\dfrac{3}{4}}+810000^{0.25}-\left(7\dfrac{19}{32}\right)^{\dfrac{1}{5}}\)
\(=\left(\dfrac{1}{2}\right)^{4.\left(-\dfrac{3}{4}\right)}+\left(30\right)^{4.0,25}-\left(\dfrac{243}{32}\right)^{\dfrac{1}{5}}\)
\(=\left(\dfrac{1}{2}\right)^{-3}+30-\left(\dfrac{3}{2}\right)^{5.\dfrac{1}{5}}\)
\(=2^3+30-\dfrac{3}{2}\)
\(=36,5\)
b) \(=\left(0,1\right)^{3.\left(-\dfrac{1}{3}\right)}-2^{-2}.2^{6.\dfrac{2}{3}}-\left[\left(2\right)^3\right]^{-\dfrac{4}{3}}\)
\(=0,1^{-1}-2^2-2^{-4}\)
\(=10-4-\dfrac{1}{16}\)
\(=\dfrac{95}{16}\)
a.
\(y'=x^2+2\left(m^2-1\right)x+2m-3\)
\(y''=2x+2\left(m^2-1\right)\)
Hàm đạt cực đại tại \(x=2\) khi: \(\left\{{}\begin{matrix}y'\left(2\right)=0\\y''\left(2\right)< 0\end{matrix}\right.\)
\(\Rightarrow\left\{{}\begin{matrix}4+4\left(m^2-1\right)+2m-3=0\\4+2\left(m^2-1\right)< 0\end{matrix}\right.\)
Do \(2m^2+2>0\) ;\(\forall m\) nên ko tồn tại m thỏa mãn yêu cầu đề bài
b.
\(y'=x^2+2mx+3\)
\(y''=2x+2m\)
Hàm đạt cực đại tại \(x=-3\) khi: \(\left\{{}\begin{matrix}9-6m+3=0\\-6+2m< 0\end{matrix}\right.\) \(\Rightarrow\left\{{}\begin{matrix}m=2\\m< 3\end{matrix}\right.\)
\(\Rightarrow m=2\)
1+1=2 2+2=4 3+3=6
HT