For what values of the numbers $a$ and $b$ does the function $f(x)=axe^left(bx^2right)$ have the maximum...
I don't know how to approach this problem:
For what values of the numbers $a$ and $b$ does the function $f(x)=axe^left(bx^2right)$ have the maximum value $f(2)=8?$
Thanks so much for any help!
calculus
edited Dec 1 at 4:19
Blue
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asked Dec 1 at 4:00
vmahajan17
155
closed as off-topic by Saad, Chinnapparaj R, Leucippus, RRL, Cesareo Dec 1 at 10:14
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I don't know how to approach this problem:
For what values of the numbers $a$ and $b$ does the function $f(x)=axe^left(bx^2right)$ have the maximum value $f(2)=8?$
Thanks so much for any help!
calculus
edited Dec 1 at 4:19
Blue
47.6k870151
asked Dec 1 at 4:00
vmahajan17
155
closed as off-topic by Saad, Chinnapparaj R, Leucippus, RRL, Cesareo Dec 1 at 10:14
This question appears to be off-topic. The users who voted to close gave this specific reason:
- "This question is missing context or other details: Please improve the question by providing additional context, which ideally includes your thoughts on the problem and any attempts you have made to solve it. This information helps others identify where you have difficulties and helps them write answers appropriate to your experience level." – Saad, Chinnapparaj R, Leucippus, RRL, Cesareo
If this question can be reworded to fit the rules in the help center, please edit the question.
add a comment |
I don't know how to approach this problem:
For what values of the numbers $a$ and $b$ does the function $f(x)=axe^left(bx^2right)$ have the maximum value $f(2)=8?$
Thanks so much for any help!
calculus
edited Dec 1 at 4:19
Blue
47.6k870151
asked Dec 1 at 4:00
vmahajan17
155
I don't know how to approach this problem:
For what values of the numbers $a$ and $b$ does the function $f(x)=axe^left(bx^2right)$ have the maximum value $f(2)=8?$
Thanks so much for any help!
calculus
calculus
edited Dec 1 at 4:19
Blue
47.6k870151
asked Dec 1 at 4:00
vmahajan17
155
edited Dec 1 at 4:19
Blue
47.6k870151
asked Dec 1 at 4:00
vmahajan17
155
edited Dec 1 at 4:19
Blue
47.6k870151
edited Dec 1 at 4:19
Blue
47.6k870151
edited Dec 1 at 4:19
Blue
47.6k870151
47.6k870151
asked Dec 1 at 4:00
vmahajan17
155
asked Dec 1 at 4:00
vmahajan17
155
asked Dec 1 at 4:00
vmahajan17
155
155
closed as off-topic by Saad, Chinnapparaj R, Leucippus, RRL, Cesareo Dec 1 at 10:14
This question appears to be off-topic. The users who voted to close gave this specific reason:
- "This question is missing context or other details: Please improve the question by providing additional context, which ideally includes your thoughts on the problem and any attempts you have made to solve it. This information helps others identify where you have difficulties and helps them write answers appropriate to your experience level." – Saad, Chinnapparaj R, Leucippus, RRL, Cesareo
If this question can be reworded to fit the rules in the help center, please edit the question.
closed as off-topic by Saad, Chinnapparaj R, Leucippus, RRL, Cesareo Dec 1 at 10:14
This question appears to be off-topic. The users who voted to close gave this specific reason:
- "This question is missing context or other details: Please improve the question by providing additional context, which ideally includes your thoughts on the problem and any attempts you have made to solve it. This information helps others identify where you have difficulties and helps them write answers appropriate to your experience level." – Saad, Chinnapparaj R, Leucippus, RRL, Cesareo
If this question can be reworded to fit the rules in the help center, please edit the question.
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2 Answers
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Hint:
1) Equate derivative at $x=2$ to zero. You will find $b=-frac18$.
2) Use the given condition $f(2)=8$ to find $a=4e^{1/2}$.
3) Make sure the second derivative is less than zero. You will get $a>0$.
answered Dec 1 at 4:11
farruhota
19.2k2736
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The extreme value of the function happens at $x_0$ such that $f'(x_0)=0$. Then, you can simply take derivative to get $$f'(x)=ae^{bx^2}+2abx^2e^{bx^2}=0$$
You can solve for $x$:
begin{align*}
ae^{bx^{2}}+2abx^{2}e^{bx^{2}}&=0\2abx^{2}e^{bx^{2}}&=-ae^{bx^{2}}\2bx^{2}&=-1\x^{2}&=-frac{1}{2b}\&=pmsqrt{-frac{1}{2b}}
end{align*}
This means that $x=sqrt{-frac{1}{2b}}$ and $x=-sqrt{-frac{1}{2b}}$ are two points where the function attains extreme value.
Note that $sqrt{-frac{1}{2b}}$ is always positive, so if the maximum happens at $f(2)$, $sqrt{-frac{1}{2b}}=2$ and with some algebra, we can deduce that $b=-frac{1}{8}$
Now we have that $f(2)=2ae^{-frac{1}{8}2^2}=8$. Then, we can simply find begin{align*}2ae^{-frac{1}{8}2^{2}}&=8\ae^{-frac{1}{2}}&=4\a&=4e^{1/2}\&=4sqrt{e}end{align*}
answered Dec 1 at 4:16
Ya G
46929
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2 Answers
2
active
oldest
votes
2 Answers
2
active
oldest
votes
active
oldest
votes
active
oldest
votes
Hint:
1) Equate derivative at $x=2$ to zero. You will find $b=-frac18$.
2) Use the given condition $f(2)=8$ to find $a=4e^{1/2}$.
3) Make sure the second derivative is less than zero. You will get $a>0$.
answered Dec 1 at 4:11
farruhota
19.2k2736
add a comment |
Hint:
1) Equate derivative at $x=2$ to zero. You will find $b=-frac18$.
2) Use the given condition $f(2)=8$ to find $a=4e^{1/2}$.
3) Make sure the second derivative is less than zero. You will get $a>0$.
answered Dec 1 at 4:11
farruhota
19.2k2736
add a comment |
Hint:
1) Equate derivative at $x=2$ to zero. You will find $b=-frac18$.
2) Use the given condition $f(2)=8$ to find $a=4e^{1/2}$.
3) Make sure the second derivative is less than zero. You will get $a>0$.
answered Dec 1 at 4:11
farruhota
19.2k2736
Hint:
1) Equate derivative at $x=2$ to zero. You will find $b=-frac18$.
2) Use the given condition $f(2)=8$ to find $a=4e^{1/2}$.
3) Make sure the second derivative is less than zero. You will get $a>0$.
answered Dec 1 at 4:11
farruhota
19.2k2736
answered Dec 1 at 4:11
farruhota
19.2k2736
answered Dec 1 at 4:11
farruhota
19.2k2736
answered Dec 1 at 4:11
farruhota
19.2k2736
19.2k2736
add a comment |
add a comment |
The extreme value of the function happens at $x_0$ such that $f'(x_0)=0$. Then, you can simply take derivative to get $$f'(x)=ae^{bx^2}+2abx^2e^{bx^2}=0$$
You can solve for $x$:
begin{align*}
ae^{bx^{2}}+2abx^{2}e^{bx^{2}}&=0\2abx^{2}e^{bx^{2}}&=-ae^{bx^{2}}\2bx^{2}&=-1\x^{2}&=-frac{1}{2b}\&=pmsqrt{-frac{1}{2b}}
end{align*}
This means that $x=sqrt{-frac{1}{2b}}$ and $x=-sqrt{-frac{1}{2b}}$ are two points where the function attains extreme value.
Note that $sqrt{-frac{1}{2b}}$ is always positive, so if the maximum happens at $f(2)$, $sqrt{-frac{1}{2b}}=2$ and with some algebra, we can deduce that $b=-frac{1}{8}$
Now we have that $f(2)=2ae^{-frac{1}{8}2^2}=8$. Then, we can simply find begin{align*}2ae^{-frac{1}{8}2^{2}}&=8\ae^{-frac{1}{2}}&=4\a&=4e^{1/2}\&=4sqrt{e}end{align*}
answered Dec 1 at 4:16
Ya G
46929
add a comment |
The extreme value of the function happens at $x_0$ such that $f'(x_0)=0$. Then, you can simply take derivative to get $$f'(x)=ae^{bx^2}+2abx^2e^{bx^2}=0$$
You can solve for $x$:
begin{align*}
ae^{bx^{2}}+2abx^{2}e^{bx^{2}}&=0\2abx^{2}e^{bx^{2}}&=-ae^{bx^{2}}\2bx^{2}&=-1\x^{2}&=-frac{1}{2b}\&=pmsqrt{-frac{1}{2b}}
end{align*}
This means that $x=sqrt{-frac{1}{2b}}$ and $x=-sqrt{-frac{1}{2b}}$ are two points where the function attains extreme value.
Note that $sqrt{-frac{1}{2b}}$ is always positive, so if the maximum happens at $f(2)$, $sqrt{-frac{1}{2b}}=2$ and with some algebra, we can deduce that $b=-frac{1}{8}$
Now we have that $f(2)=2ae^{-frac{1}{8}2^2}=8$. Then, we can simply find begin{align*}2ae^{-frac{1}{8}2^{2}}&=8\ae^{-frac{1}{2}}&=4\a&=4e^{1/2}\&=4sqrt{e}end{align*}
answered Dec 1 at 4:16
Ya G
46929
add a comment |
The extreme value of the function happens at $x_0$ such that $f'(x_0)=0$. Then, you can simply take derivative to get $$f'(x)=ae^{bx^2}+2abx^2e^{bx^2}=0$$
You can solve for $x$:
begin{align*}
ae^{bx^{2}}+2abx^{2}e^{bx^{2}}&=0\2abx^{2}e^{bx^{2}}&=-ae^{bx^{2}}\2bx^{2}&=-1\x^{2}&=-frac{1}{2b}\&=pmsqrt{-frac{1}{2b}}
end{align*}
This means that $x=sqrt{-frac{1}{2b}}$ and $x=-sqrt{-frac{1}{2b}}$ are two points where the function attains extreme value.
Note that $sqrt{-frac{1}{2b}}$ is always positive, so if the maximum happens at $f(2)$, $sqrt{-frac{1}{2b}}=2$ and with some algebra, we can deduce that $b=-frac{1}{8}$
Now we have that $f(2)=2ae^{-frac{1}{8}2^2}=8$. Then, we can simply find begin{align*}2ae^{-frac{1}{8}2^{2}}&=8\ae^{-frac{1}{2}}&=4\a&=4e^{1/2}\&=4sqrt{e}end{align*}
answered Dec 1 at 4:16
Ya G
46929
The extreme value of the function happens at $x_0$ such that $f'(x_0)=0$. Then, you can simply take derivative to get $$f'(x)=ae^{bx^2}+2abx^2e^{bx^2}=0$$
You can solve for $x$:
begin{align*}
ae^{bx^{2}}+2abx^{2}e^{bx^{2}}&=0\2abx^{2}e^{bx^{2}}&=-ae^{bx^{2}}\2bx^{2}&=-1\x^{2}&=-frac{1}{2b}\&=pmsqrt{-frac{1}{2b}}
end{align*}
This means that $x=sqrt{-frac{1}{2b}}$ and $x=-sqrt{-frac{1}{2b}}$ are two points where the function attains extreme value.
Note that $sqrt{-frac{1}{2b}}$ is always positive, so if the maximum happens at $f(2)$, $sqrt{-frac{1}{2b}}=2$ and with some algebra, we can deduce that $b=-frac{1}{8}$
Now we have that $f(2)=2ae^{-frac{1}{8}2^2}=8$. Then, we can simply find begin{align*}2ae^{-frac{1}{8}2^{2}}&=8\ae^{-frac{1}{2}}&=4\a&=4e^{1/2}\&=4sqrt{e}end{align*}
answered Dec 1 at 4:16
Ya G
46929
answered Dec 1 at 4:16
Ya G
46929
answered Dec 1 at 4:16
Ya G
46929
answered Dec 1 at 4:16
Ya G
46929
46929
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add a comment |
