Using Partial Limit
$begingroup$
$$lim_{x to 0} cos(pi/2cos(x))/x^2$$
I tried to evaluate the limit this way,
$$lim_{x to 0} cos(pi/2cdot1)/x^2$$ since $cos0=1$
$$lim_{x to 0} cos(pi/2cdot1)/x^2=lim_{x to 0} 0/x^2$$
Now apply L'Hospital's Rule twice,
$$lim_{x to 0} 0/2(x)=lim_{x to 0} 0/2=0$$
So,this way the answer is zero.
Can you please explain where am I doing wrong?
I will be thankful for help!
calculus limits
edited 1 hour ago
Larry
2,1162826
asked 1 hour ago
Navneet KumarNavneet Kumar
3881416
$endgroup$
add a comment |
$begingroup$
$$lim_{x to 0} cos(pi/2cos(x))/x^2$$
I tried to evaluate the limit this way,
$$lim_{x to 0} cos(pi/2cdot1)/x^2$$ since $cos0=1$
$$lim_{x to 0} cos(pi/2cdot1)/x^2=lim_{x to 0} 0/x^2$$
Now apply L'Hospital's Rule twice,
$$lim_{x to 0} 0/2(x)=lim_{x to 0} 0/2=0$$
So,this way the answer is zero.
Can you please explain where am I doing wrong?
I will be thankful for help!
calculus limits
edited 1 hour ago
Larry
2,1162826
asked 1 hour ago
Navneet KumarNavneet Kumar
3881416
$endgroup$
2
$begingroup$
You can't simply plug 0 into parts. Take $limlimits_{xto0}frac xx$ for example. Plugging 0 into the numerator implies the limit should be 0, but clearly the limit is 1.
$endgroup$
– Simply Beautiful Art
1 hour ago
$begingroup$
@SimplyBeautifulArt But,in some of the questions we do replace 'x' by the constant values such that it simplifies to a non zero number.Why are we allowed to do that?
$endgroup$
– Navneet Kumar
1 hour ago
$begingroup$
Limit rules and continuous functions satisfy $limlimits_{xto a}f(x)=f(a)$.
$endgroup$
– Simply Beautiful Art
1 hour ago
$begingroup$
@SimplyBeautifulArt please go through this conversation once artofproblemsolving.com/community/q2h1766346p11567701
$endgroup$
– Navneet Kumar
1 hour ago
$begingroup$
"The only thing that I need to keep in mind is that the expression doesn't become indeterminate." This is vague, and also the reason we have clear limit rules to follow.
$endgroup$
– Simply Beautiful Art
1 hour ago
add a comment |
$begingroup$
$$lim_{x to 0} cos(pi/2cos(x))/x^2$$
I tried to evaluate the limit this way,
$$lim_{x to 0} cos(pi/2cdot1)/x^2$$ since $cos0=1$
$$lim_{x to 0} cos(pi/2cdot1)/x^2=lim_{x to 0} 0/x^2$$
Now apply L'Hospital's Rule twice,
$$lim_{x to 0} 0/2(x)=lim_{x to 0} 0/2=0$$
So,this way the answer is zero.
Can you please explain where am I doing wrong?
I will be thankful for help!
calculus limits
edited 1 hour ago
Larry
2,1162826
asked 1 hour ago
Navneet KumarNavneet Kumar
3881416
$endgroup$
$$lim_{x to 0} cos(pi/2cos(x))/x^2$$
I tried to evaluate the limit this way,
$$lim_{x to 0} cos(pi/2cdot1)/x^2$$ since $cos0=1$
$$lim_{x to 0} cos(pi/2cdot1)/x^2=lim_{x to 0} 0/x^2$$
Now apply L'Hospital's Rule twice,
$$lim_{x to 0} 0/2(x)=lim_{x to 0} 0/2=0$$
So,this way the answer is zero.
Can you please explain where am I doing wrong?
I will be thankful for help!
calculus limits
calculus limits
edited 1 hour ago
Larry
2,1162826
asked 1 hour ago
Navneet KumarNavneet Kumar
3881416
edited 1 hour ago
Larry
2,1162826
asked 1 hour ago
Navneet KumarNavneet Kumar
3881416
edited 1 hour ago
Larry
2,1162826
edited 1 hour ago
Larry
2,1162826
edited 1 hour ago
Larry
2,1162826
2,1162826
asked 1 hour ago
Navneet KumarNavneet Kumar
3881416
asked 1 hour ago
Navneet KumarNavneet Kumar
3881416
asked 1 hour ago
Navneet KumarNavneet Kumar
3881416
3881416
2
$begingroup$
You can't simply plug 0 into parts. Take $limlimits_{xto0}frac xx$ for example. Plugging 0 into the numerator implies the limit should be 0, but clearly the limit is 1.
$endgroup$
– Simply Beautiful Art
1 hour ago
$begingroup$
@SimplyBeautifulArt But,in some of the questions we do replace 'x' by the constant values such that it simplifies to a non zero number.Why are we allowed to do that?
$endgroup$
– Navneet Kumar
1 hour ago
$begingroup$
Limit rules and continuous functions satisfy $limlimits_{xto a}f(x)=f(a)$.
$endgroup$
– Simply Beautiful Art
1 hour ago
$begingroup$
@SimplyBeautifulArt please go through this conversation once artofproblemsolving.com/community/q2h1766346p11567701
$endgroup$
– Navneet Kumar
1 hour ago
$begingroup$
"The only thing that I need to keep in mind is that the expression doesn't become indeterminate." This is vague, and also the reason we have clear limit rules to follow.
$endgroup$
– Simply Beautiful Art
1 hour ago
add a comment |
2
$begingroup$
You can't simply plug 0 into parts. Take $limlimits_{xto0}frac xx$ for example. Plugging 0 into the numerator implies the limit should be 0, but clearly the limit is 1.
$endgroup$
– Simply Beautiful Art
1 hour ago
$begingroup$
@SimplyBeautifulArt But,in some of the questions we do replace 'x' by the constant values such that it simplifies to a non zero number.Why are we allowed to do that?
$endgroup$
– Navneet Kumar
1 hour ago
$begingroup$
Limit rules and continuous functions satisfy $limlimits_{xto a}f(x)=f(a)$.
$endgroup$
– Simply Beautiful Art
1 hour ago
$begingroup$
@SimplyBeautifulArt please go through this conversation once artofproblemsolving.com/community/q2h1766346p11567701
$endgroup$
– Navneet Kumar
1 hour ago
$begingroup$
"The only thing that I need to keep in mind is that the expression doesn't become indeterminate." This is vague, and also the reason we have clear limit rules to follow.
$endgroup$
– Simply Beautiful Art
1 hour ago
2
2
$begingroup$
You can't simply plug 0 into parts. Take $limlimits_{xto0}frac xx$ for example. Plugging 0 into the numerator implies the limit should be 0, but clearly the limit is 1.
$endgroup$
– Simply Beautiful Art
1 hour ago
$begingroup$
You can't simply plug 0 into parts. Take $limlimits_{xto0}frac xx$ for example. Plugging 0 into the numerator implies the limit should be 0, but clearly the limit is 1.
$endgroup$
– Simply Beautiful Art
1 hour ago
$begingroup$
@SimplyBeautifulArt But,in some of the questions we do replace 'x' by the constant values such that it simplifies to a non zero number.Why are we allowed to do that?
$endgroup$
– Navneet Kumar
1 hour ago
$begingroup$
@SimplyBeautifulArt But,in some of the questions we do replace 'x' by the constant values such that it simplifies to a non zero number.Why are we allowed to do that?
$endgroup$
– Navneet Kumar
1 hour ago
$begingroup$
Limit rules and continuous functions satisfy $limlimits_{xto a}f(x)=f(a)$.
$endgroup$
– Simply Beautiful Art
1 hour ago
$begingroup$
Limit rules and continuous functions satisfy $limlimits_{xto a}f(x)=f(a)$.
$endgroup$
– Simply Beautiful Art
1 hour ago
$begingroup$
@SimplyBeautifulArt please go through this conversation once artofproblemsolving.com/community/q2h1766346p11567701
$endgroup$
– Navneet Kumar
1 hour ago
$begingroup$
@SimplyBeautifulArt please go through this conversation once artofproblemsolving.com/community/q2h1766346p11567701
$endgroup$
– Navneet Kumar
1 hour ago
$begingroup$
"The only thing that I need to keep in mind is that the expression doesn't become indeterminate." This is vague, and also the reason we have clear limit rules to follow.
$endgroup$
– Simply Beautiful Art
1 hour ago
$begingroup$
"The only thing that I need to keep in mind is that the expression doesn't become indeterminate." This is vague, and also the reason we have clear limit rules to follow.
$endgroup$
– Simply Beautiful Art
1 hour ago
add a comment |
3 Answers
3
active
oldest
votes
$begingroup$
When both the numerator and denominator are zero, you have to differentiate both of them to obtain the correct limit. You can't straightly make the numerator $0$. Think about it, if you have
$$lim_{xrightarrow0}frac{2x}{3x}$$
, and you make the numerator zero and differentiate the denominator, you will get zero, which clearly isn't correct.
What I suggest is that you differentiate both the numerator and the denominator to get
$$lim_{xrightarrow0}frac{pisin(x)sin(pi/2cos(x))}{4x}$$
Now differentiate again, and you get
$$lim_{xrightarrow0}frac{pileft[cos(x)sin(pi/2cos(x))-pi/2sin(x)(cos(pi/2cos(x)))right]}{4}=frac{pi}{4}$$
answered 1 hour ago
LarryLarry
2,1162826
$endgroup$
$begingroup$
Thanks So Much! Please go through this once artofproblemsolving.com/community/q2h1766346p11567701 I just want to know how to decide which 'x' are safe to replace by their constant values?
$endgroup$
– Navneet Kumar
1 hour ago
$begingroup$
Nikolas did a pretty good job explaining when it is safe to replace the values. Yes, when the denominator becomes zero, you don't want to replace the value. In this question, the denominator is zero, so you can't just replace the value. You would instead do L'Hospital or some other manipulations as presented in other answers posted here.
$endgroup$
– Larry
29 mins ago
add a comment |
$begingroup$
Hint
Compose Taylor series
$$cos(x)=1-frac{x^2}{2}+Oleft(x^4right)$$
$$cos left(frac{pi}{2} cos (x)right)=sin left(frac{pi }{4}x^2+Oleft(x^4right)right)$$ The next step is simple.
answered 1 hour ago
Claude LeiboviciClaude Leibovici
120k1157132
$endgroup$
add a comment |
$begingroup$
Using $frac{1-cos(x)}{2}=sin^2(x/2)$ and $lim_{tto 0}frac{sin(t)}{t}=1$, we can write
$$begin{align}
frac{cosleft(fracpi2 cos(x)right)}{x^2}&=frac{sinleft(pi sin^2(x/2)right)}{x^2}\\
&=fracpi4underbrace{left(frac{sin(x/2)}{x/2}right)^2}_{to1,,text{as},,xto0}underbrace{left(frac{sinleft(pi sin^2(x/2)right)}{pisin^2(x/2)}right)}_{to 1,,text{as},,xto0}\\
end{align}$$
Therefore, we find that
$$lim_{xto0}frac{cosleft(fracpi2 cos(x)right)}{x^2}=fracpi4$$
answered 58 mins ago
Mark ViolaMark Viola
131k1275171
$endgroup$
add a comment |
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3 Answers
3
active
oldest
votes
3 Answers
3
active
oldest
votes
active
oldest
votes
active
oldest
votes
$begingroup$
When both the numerator and denominator are zero, you have to differentiate both of them to obtain the correct limit. You can't straightly make the numerator $0$. Think about it, if you have
$$lim_{xrightarrow0}frac{2x}{3x}$$
, and you make the numerator zero and differentiate the denominator, you will get zero, which clearly isn't correct.
What I suggest is that you differentiate both the numerator and the denominator to get
$$lim_{xrightarrow0}frac{pisin(x)sin(pi/2cos(x))}{4x}$$
Now differentiate again, and you get
$$lim_{xrightarrow0}frac{pileft[cos(x)sin(pi/2cos(x))-pi/2sin(x)(cos(pi/2cos(x)))right]}{4}=frac{pi}{4}$$
answered 1 hour ago
LarryLarry
2,1162826
$endgroup$
$begingroup$
Thanks So Much! Please go through this once artofproblemsolving.com/community/q2h1766346p11567701 I just want to know how to decide which 'x' are safe to replace by their constant values?
$endgroup$
– Navneet Kumar
1 hour ago
$begingroup$
Nikolas did a pretty good job explaining when it is safe to replace the values. Yes, when the denominator becomes zero, you don't want to replace the value. In this question, the denominator is zero, so you can't just replace the value. You would instead do L'Hospital or some other manipulations as presented in other answers posted here.
$endgroup$
– Larry
29 mins ago
add a comment |
$begingroup$
When both the numerator and denominator are zero, you have to differentiate both of them to obtain the correct limit. You can't straightly make the numerator $0$. Think about it, if you have
$$lim_{xrightarrow0}frac{2x}{3x}$$
, and you make the numerator zero and differentiate the denominator, you will get zero, which clearly isn't correct.
What I suggest is that you differentiate both the numerator and the denominator to get
$$lim_{xrightarrow0}frac{pisin(x)sin(pi/2cos(x))}{4x}$$
Now differentiate again, and you get
$$lim_{xrightarrow0}frac{pileft[cos(x)sin(pi/2cos(x))-pi/2sin(x)(cos(pi/2cos(x)))right]}{4}=frac{pi}{4}$$
answered 1 hour ago
LarryLarry
2,1162826
$endgroup$
$begingroup$
Thanks So Much! Please go through this once artofproblemsolving.com/community/q2h1766346p11567701 I just want to know how to decide which 'x' are safe to replace by their constant values?
$endgroup$
– Navneet Kumar
1 hour ago
$begingroup$
Nikolas did a pretty good job explaining when it is safe to replace the values. Yes, when the denominator becomes zero, you don't want to replace the value. In this question, the denominator is zero, so you can't just replace the value. You would instead do L'Hospital or some other manipulations as presented in other answers posted here.
$endgroup$
– Larry
29 mins ago
add a comment |
$begingroup$
When both the numerator and denominator are zero, you have to differentiate both of them to obtain the correct limit. You can't straightly make the numerator $0$. Think about it, if you have
$$lim_{xrightarrow0}frac{2x}{3x}$$
, and you make the numerator zero and differentiate the denominator, you will get zero, which clearly isn't correct.
What I suggest is that you differentiate both the numerator and the denominator to get
$$lim_{xrightarrow0}frac{pisin(x)sin(pi/2cos(x))}{4x}$$
Now differentiate again, and you get
$$lim_{xrightarrow0}frac{pileft[cos(x)sin(pi/2cos(x))-pi/2sin(x)(cos(pi/2cos(x)))right]}{4}=frac{pi}{4}$$
answered 1 hour ago
LarryLarry
2,1162826
$endgroup$
When both the numerator and denominator are zero, you have to differentiate both of them to obtain the correct limit. You can't straightly make the numerator $0$. Think about it, if you have
$$lim_{xrightarrow0}frac{2x}{3x}$$
, and you make the numerator zero and differentiate the denominator, you will get zero, which clearly isn't correct.
What I suggest is that you differentiate both the numerator and the denominator to get
$$lim_{xrightarrow0}frac{pisin(x)sin(pi/2cos(x))}{4x}$$
Now differentiate again, and you get
$$lim_{xrightarrow0}frac{pileft[cos(x)sin(pi/2cos(x))-pi/2sin(x)(cos(pi/2cos(x)))right]}{4}=frac{pi}{4}$$
answered 1 hour ago
LarryLarry
2,1162826
answered 1 hour ago
LarryLarry
2,1162826
answered 1 hour ago
LarryLarry
2,1162826
answered 1 hour ago
LarryLarry
2,1162826
2,1162826
$begingroup$
Thanks So Much! Please go through this once artofproblemsolving.com/community/q2h1766346p11567701 I just want to know how to decide which 'x' are safe to replace by their constant values?
$endgroup$
– Navneet Kumar
1 hour ago
$begingroup$
Nikolas did a pretty good job explaining when it is safe to replace the values. Yes, when the denominator becomes zero, you don't want to replace the value. In this question, the denominator is zero, so you can't just replace the value. You would instead do L'Hospital or some other manipulations as presented in other answers posted here.
$endgroup$
– Larry
29 mins ago
add a comment |
$begingroup$
Thanks So Much! Please go through this once artofproblemsolving.com/community/q2h1766346p11567701 I just want to know how to decide which 'x' are safe to replace by their constant values?
$endgroup$
– Navneet Kumar
1 hour ago
$begingroup$
Nikolas did a pretty good job explaining when it is safe to replace the values. Yes, when the denominator becomes zero, you don't want to replace the value. In this question, the denominator is zero, so you can't just replace the value. You would instead do L'Hospital or some other manipulations as presented in other answers posted here.
$endgroup$
– Larry
29 mins ago
$begingroup$
Thanks So Much! Please go through this once artofproblemsolving.com/community/q2h1766346p11567701 I just want to know how to decide which 'x' are safe to replace by their constant values?
$endgroup$
– Navneet Kumar
1 hour ago
$begingroup$
Thanks So Much! Please go through this once artofproblemsolving.com/community/q2h1766346p11567701 I just want to know how to decide which 'x' are safe to replace by their constant values?
$endgroup$
– Navneet Kumar
1 hour ago
$begingroup$
Nikolas did a pretty good job explaining when it is safe to replace the values. Yes, when the denominator becomes zero, you don't want to replace the value. In this question, the denominator is zero, so you can't just replace the value. You would instead do L'Hospital or some other manipulations as presented in other answers posted here.
$endgroup$
– Larry
29 mins ago
$begingroup$
Nikolas did a pretty good job explaining when it is safe to replace the values. Yes, when the denominator becomes zero, you don't want to replace the value. In this question, the denominator is zero, so you can't just replace the value. You would instead do L'Hospital or some other manipulations as presented in other answers posted here.
$endgroup$
– Larry
29 mins ago
add a comment |
$begingroup$
Hint
Compose Taylor series
$$cos(x)=1-frac{x^2}{2}+Oleft(x^4right)$$
$$cos left(frac{pi}{2} cos (x)right)=sin left(frac{pi }{4}x^2+Oleft(x^4right)right)$$ The next step is simple.
answered 1 hour ago
Claude LeiboviciClaude Leibovici
120k1157132
$endgroup$
add a comment |
$begingroup$
Hint
Compose Taylor series
$$cos(x)=1-frac{x^2}{2}+Oleft(x^4right)$$
$$cos left(frac{pi}{2} cos (x)right)=sin left(frac{pi }{4}x^2+Oleft(x^4right)right)$$ The next step is simple.
answered 1 hour ago
Claude LeiboviciClaude Leibovici
120k1157132
$endgroup$
add a comment |
$begingroup$
Hint
Compose Taylor series
$$cos(x)=1-frac{x^2}{2}+Oleft(x^4right)$$
$$cos left(frac{pi}{2} cos (x)right)=sin left(frac{pi }{4}x^2+Oleft(x^4right)right)$$ The next step is simple.
answered 1 hour ago
Claude LeiboviciClaude Leibovici
120k1157132
$endgroup$
Hint
Compose Taylor series
$$cos(x)=1-frac{x^2}{2}+Oleft(x^4right)$$
$$cos left(frac{pi}{2} cos (x)right)=sin left(frac{pi }{4}x^2+Oleft(x^4right)right)$$ The next step is simple.
answered 1 hour ago
Claude LeiboviciClaude Leibovici
120k1157132
answered 1 hour ago
Claude LeiboviciClaude Leibovici
120k1157132
answered 1 hour ago
Claude LeiboviciClaude Leibovici
120k1157132
answered 1 hour ago
Claude LeiboviciClaude Leibovici
120k1157132
120k1157132
add a comment |
add a comment |
$begingroup$
Using $frac{1-cos(x)}{2}=sin^2(x/2)$ and $lim_{tto 0}frac{sin(t)}{t}=1$, we can write
$$begin{align}
frac{cosleft(fracpi2 cos(x)right)}{x^2}&=frac{sinleft(pi sin^2(x/2)right)}{x^2}\\
&=fracpi4underbrace{left(frac{sin(x/2)}{x/2}right)^2}_{to1,,text{as},,xto0}underbrace{left(frac{sinleft(pi sin^2(x/2)right)}{pisin^2(x/2)}right)}_{to 1,,text{as},,xto0}\\
end{align}$$
Therefore, we find that
$$lim_{xto0}frac{cosleft(fracpi2 cos(x)right)}{x^2}=fracpi4$$
answered 58 mins ago
Mark ViolaMark Viola
131k1275171
$endgroup$
add a comment |
$begingroup$
Using $frac{1-cos(x)}{2}=sin^2(x/2)$ and $lim_{tto 0}frac{sin(t)}{t}=1$, we can write
$$begin{align}
frac{cosleft(fracpi2 cos(x)right)}{x^2}&=frac{sinleft(pi sin^2(x/2)right)}{x^2}\\
&=fracpi4underbrace{left(frac{sin(x/2)}{x/2}right)^2}_{to1,,text{as},,xto0}underbrace{left(frac{sinleft(pi sin^2(x/2)right)}{pisin^2(x/2)}right)}_{to 1,,text{as},,xto0}\\
end{align}$$
Therefore, we find that
$$lim_{xto0}frac{cosleft(fracpi2 cos(x)right)}{x^2}=fracpi4$$
answered 58 mins ago
Mark ViolaMark Viola
131k1275171
$endgroup$
add a comment |
$begingroup$
Using $frac{1-cos(x)}{2}=sin^2(x/2)$ and $lim_{tto 0}frac{sin(t)}{t}=1$, we can write
$$begin{align}
frac{cosleft(fracpi2 cos(x)right)}{x^2}&=frac{sinleft(pi sin^2(x/2)right)}{x^2}\\
&=fracpi4underbrace{left(frac{sin(x/2)}{x/2}right)^2}_{to1,,text{as},,xto0}underbrace{left(frac{sinleft(pi sin^2(x/2)right)}{pisin^2(x/2)}right)}_{to 1,,text{as},,xto0}\\
end{align}$$
Therefore, we find that
$$lim_{xto0}frac{cosleft(fracpi2 cos(x)right)}{x^2}=fracpi4$$
answered 58 mins ago
Mark ViolaMark Viola
131k1275171
$endgroup$
Using $frac{1-cos(x)}{2}=sin^2(x/2)$ and $lim_{tto 0}frac{sin(t)}{t}=1$, we can write
$$begin{align}
frac{cosleft(fracpi2 cos(x)right)}{x^2}&=frac{sinleft(pi sin^2(x/2)right)}{x^2}\\
&=fracpi4underbrace{left(frac{sin(x/2)}{x/2}right)^2}_{to1,,text{as},,xto0}underbrace{left(frac{sinleft(pi sin^2(x/2)right)}{pisin^2(x/2)}right)}_{to 1,,text{as},,xto0}\\
end{align}$$
Therefore, we find that
$$lim_{xto0}frac{cosleft(fracpi2 cos(x)right)}{x^2}=fracpi4$$
answered 58 mins ago
Mark ViolaMark Viola
131k1275171
answered 58 mins ago
Mark ViolaMark Viola
131k1275171
answered 58 mins ago
Mark ViolaMark Viola
131k1275171
answered 58 mins ago
Mark ViolaMark Viola
131k1275171
131k1275171
add a comment |
add a comment |
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2
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You can't simply plug 0 into parts. Take $limlimits_{xto0}frac xx$ for example. Plugging 0 into the numerator implies the limit should be 0, but clearly the limit is 1.
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– Simply Beautiful Art
1 hour ago
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@SimplyBeautifulArt But,in some of the questions we do replace 'x' by the constant values such that it simplifies to a non zero number.Why are we allowed to do that?
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– Navneet Kumar
1 hour ago
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Limit rules and continuous functions satisfy $limlimits_{xto a}f(x)=f(a)$.
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– Simply Beautiful Art
1 hour ago
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@SimplyBeautifulArt please go through this conversation once artofproblemsolving.com/community/q2h1766346p11567701
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– Navneet Kumar
1 hour ago
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"The only thing that I need to keep in mind is that the expression doesn't become indeterminate." This is vague, and also the reason we have clear limit rules to follow.
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– Simply Beautiful Art
1 hour ago