Are there continuous functions who are the same in an interval but differ in at least one other point? The 2019 Stack Overflow Developer Survey Results Are In Announcing the arrival of Valued Associate #679: Cesar Manara Planned maintenance scheduled April 17/18, 2019 at 00:00UTC (8:00pm US/Eastern)Function which is continuous everywhere in its domain, but differentiable only at one pointAre there non-periodic continuous functions with this property?Derivative defined at some point but not continuous there?Are the two statements about continuous functions equivalent?Prove or disprove: for any two given functions, one must be upper bounding the otherIf a function is derivable in a point then there exists an open interval around the point in which the function is continuousIs there a function on a compact interval that is differentiable but not Lipschitz continuous?Are there continuous functions for which the epsilon-delta property doesn't hold?Show that two continuous functions that are surjective over the same interval intersectProve a non-constant continuous function on a compact interval must admit at least one non-local extremum
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Are there continuous functions who are the same in an interval but differ in at least one other point?
The 2019 Stack Overflow Developer Survey Results Are In
Announcing the arrival of Valued Associate #679: Cesar Manara
Planned maintenance scheduled April 17/18, 2019 at 00:00UTC (8:00pm US/Eastern)Function which is continuous everywhere in its domain, but differentiable only at one pointAre there non-periodic continuous functions with this property?Derivative defined at some point but not continuous there?Are the two statements about continuous functions equivalent?Prove or disprove: for any two given functions, one must be upper bounding the otherIf a function is derivable in a point then there exists an open interval around the point in which the function is continuousIs there a function on a compact interval that is differentiable but not Lipschitz continuous?Are there continuous functions for which the epsilon-delta property doesn't hold?Show that two continuous functions that are surjective over the same interval intersectProve a non-constant continuous function on a compact interval must admit at least one non-local extremum
$begingroup$
You are given a function $f: mathbbRrightarrow mathbbR$. Every derivative $fracd^ndx^n(f(x)), ,n >0$ of the function is continuous.
Is there a function $g: mathbbRrightarrow mathbbR$, for which every derivative $fracd^ndx^n(g(x)), ,n >0$ is also continuous, such that:
$$forall xin[a,b]: , g(x) = f(x)land , exists x notin [a,b]: f(x) neq g(x),, a neq b$$
Thanks!
real-analysis calculus
edited 59 mins ago
ZeroXLR
1,528519
asked 2 hours ago
TVSuchtyTVSuchty
325
$endgroup$
add a comment |
$begingroup$
You are given a function $f: mathbbRrightarrow mathbbR$. Every derivative $fracd^ndx^n(f(x)), ,n >0$ of the function is continuous.
Is there a function $g: mathbbRrightarrow mathbbR$, for which every derivative $fracd^ndx^n(g(x)), ,n >0$ is also continuous, such that:
$$forall xin[a,b]: , g(x) = f(x)land , exists x notin [a,b]: f(x) neq g(x),, a neq b$$
Thanks!
real-analysis calculus
edited 59 mins ago
ZeroXLR
1,528519
asked 2 hours ago
TVSuchtyTVSuchty
325
$endgroup$
add a comment |
$begingroup$
You are given a function $f: mathbbRrightarrow mathbbR$. Every derivative $fracd^ndx^n(f(x)), ,n >0$ of the function is continuous.
Is there a function $g: mathbbRrightarrow mathbbR$, for which every derivative $fracd^ndx^n(g(x)), ,n >0$ is also continuous, such that:
$$forall xin[a,b]: , g(x) = f(x)land , exists x notin [a,b]: f(x) neq g(x),, a neq b$$
Thanks!
real-analysis calculus
edited 59 mins ago
ZeroXLR
1,528519
asked 2 hours ago
TVSuchtyTVSuchty
325
$endgroup$
You are given a function $f: mathbbRrightarrow mathbbR$. Every derivative $fracd^ndx^n(f(x)), ,n >0$ of the function is continuous.
Is there a function $g: mathbbRrightarrow mathbbR$, for which every derivative $fracd^ndx^n(g(x)), ,n >0$ is also continuous, such that:
$$forall xin[a,b]: , g(x) = f(x)land , exists x notin [a,b]: f(x) neq g(x),, a neq b$$
Thanks!
real-analysis calculus
real-analysis calculus
edited 59 mins ago
ZeroXLR
1,528519
asked 2 hours ago
TVSuchtyTVSuchty
325
edited 59 mins ago
ZeroXLR
1,528519
asked 2 hours ago
TVSuchtyTVSuchty
325
edited 59 mins ago
ZeroXLR
1,528519
edited 59 mins ago
ZeroXLR
1,528519
edited 59 mins ago
ZeroXLR
1,528519
1,528519
asked 2 hours ago
TVSuchtyTVSuchty
325
asked 2 hours ago
TVSuchtyTVSuchty
325
asked 2 hours ago
TVSuchtyTVSuchty
325
325
add a comment |
add a comment |
2 Answers
2
active
oldest
votes
$begingroup$
Define the real functions $f$ and $g$ thus:
$$
f(x) = begincases expBig(-frac1(x - 1)^2Big) &textif x > 1 \
0 &textif x in [-1, 1] \
expBig(-frac1(x + 1)^2Big) &textif x < -1
endcases
$$ and
$g(x) = 0$. $f$ and $g$ are both $0$ on $[-1, 1]$ but they differ in value everywhere else.
Obviously $g$ is continuously differentiable infinitely many times as it is a constant function. You can also check that $f$ is continuously differentiable infinitely many times at $x = -1$ and $x = 1$ by applying L'Hôpital's rule inductively. Checking this is a fine exercise in Real Analysis; you should try it. Here is a first taste of it:
beginalign*
lim_x to 1^+fracdf(x)dx &= limlimits_x to 1^+frac2expbig(- frac1(x - 1)^2big)(x - 1)^3 \
&= 2lim_x to 1^+fracfrac1(x - 1)^3expbig(frac1(x - 1)^2big) quadtextthis limit is of the form fracinftyinfty text so L'Hôpital applies \
&= 2 lim_x to 1^+fracfracddx(x - 1)^-3fracddxexpbig(frac1(x - 1)^2big) text by L'Hôpital \
&= 2 lim_x to 1^+frac-3(x - 1)^-4-2expbig(frac1(x - 1)^2big)(x - 1)^-3 \
&= 3lim_x to 1^+frac(x - 1)^-1expbig(frac1(x - 1)^2big) quadtextagain, this has the form fracinftyinfty text so L'Hôpital applies \
&= 3 lim_x to 1^+fracfracddx(x - 1)^-1fracddxexpbig(frac1(x - 1)^2big) text by L'Hôpital \
&= 3 lim_x to 1^+frac-(x - 1)^-2-2expbig(frac1(x - 1)^2big)(x - 1)^-3 \
&= frac32 lim_x to 1^+fracx - 1expbig(frac1(x - 1)^2big) \
&= frac32 lim_x to 1^+ Big[(x - 1)expBig(-frac1(x - 1)^2Big)Big] \
&= frac32 Big[lim_x to 1^+ (x - 1)Big] Big[lim_x to 1^+ expBig(-frac1(x - 1)^2Big)Big] = frac32 times 0 times 0 = 0
endalign* That was a long calculation but take my word: it can be repeated inductively to show that $limlimits_x to 1+fracd^nfdx^n = 0$ for all $n in mathbbZ_+!$ At all other points i.e. on $(-infty, -1) cup (-1, 1) cup (1, infty)$, $f$ is infinitely differentiable because exponentials and constant functions are infinitely differentiable.
Bonus Fact:
Both $fracd^n f(x)dx^n$ and $fracd^n g(x)dx^n$ also have the same value $0$ on $[-1, 1]$ for all positive integers $n$!
answered 2 hours ago
ZeroXLRZeroXLR
1,528519
$endgroup$
$begingroup$
Well Done! Unfortunately, I am a high school student and never heard of L'Hôpitals Rule. EDIT: This function is actually amazing, never saw something like this before.
$endgroup$
– TVSuchty
2 hours ago
1
$begingroup$
It basically says under certain conditions, $limlimits_x to a(f(x) / g(x)) = limlimits_x to a(fracd f(x)dx / fracd g(x)dx)$. en.wikipedia.org/wiki/L%27H%C3%B4pital%27s_rule
$endgroup$
– ZeroXLR
2 hours ago
$begingroup$
I am stunned. Do you know of more complex solutions?
$endgroup$
– TVSuchty
2 hours ago
$begingroup$
@TVSuchty If you are asking questions like this at high school and are studying math seriously, you will very soon learn about this rule (and a whole host of other rules from Calculus). Take a re-look at that function afterwards.
$endgroup$
– ZeroXLR
2 hours ago
$begingroup$
I look forward to. Thank you for your assistance.
$endgroup$
– TVSuchty
2 hours ago
|
show 2 more comments
$begingroup$
Taylors theorem implies that if two functions are the same in one interval, they must be the same everywhere. This is because when you look at one point in the interval, the nth derivatives of both will be equal. Thus, their Taylor series centered at that point will be equal. Then you can move away from the center and find the Taylor series of both centered around another point to get more information about the function, and they will still be equal. So anywhere you look, the two functions will be equal. (This applies for all analytic functions, not so much for piecewise functions)
answered 37 mins ago
uhhhhidkuhhhhidk
1266
$endgroup$
add a comment |
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2 Answers
2
active
oldest
votes
2 Answers
2
active
oldest
votes
active
oldest
votes
active
oldest
votes
$begingroup$
Define the real functions $f$ and $g$ thus:
$$
f(x) = begincases expBig(-frac1(x - 1)^2Big) &textif x > 1 \
0 &textif x in [-1, 1] \
expBig(-frac1(x + 1)^2Big) &textif x < -1
endcases
$$ and
$g(x) = 0$. $f$ and $g$ are both $0$ on $[-1, 1]$ but they differ in value everywhere else.
Obviously $g$ is continuously differentiable infinitely many times as it is a constant function. You can also check that $f$ is continuously differentiable infinitely many times at $x = -1$ and $x = 1$ by applying L'Hôpital's rule inductively. Checking this is a fine exercise in Real Analysis; you should try it. Here is a first taste of it:
beginalign*
lim_x to 1^+fracdf(x)dx &= limlimits_x to 1^+frac2expbig(- frac1(x - 1)^2big)(x - 1)^3 \
&= 2lim_x to 1^+fracfrac1(x - 1)^3expbig(frac1(x - 1)^2big) quadtextthis limit is of the form fracinftyinfty text so L'Hôpital applies \
&= 2 lim_x to 1^+fracfracddx(x - 1)^-3fracddxexpbig(frac1(x - 1)^2big) text by L'Hôpital \
&= 2 lim_x to 1^+frac-3(x - 1)^-4-2expbig(frac1(x - 1)^2big)(x - 1)^-3 \
&= 3lim_x to 1^+frac(x - 1)^-1expbig(frac1(x - 1)^2big) quadtextagain, this has the form fracinftyinfty text so L'Hôpital applies \
&= 3 lim_x to 1^+fracfracddx(x - 1)^-1fracddxexpbig(frac1(x - 1)^2big) text by L'Hôpital \
&= 3 lim_x to 1^+frac-(x - 1)^-2-2expbig(frac1(x - 1)^2big)(x - 1)^-3 \
&= frac32 lim_x to 1^+fracx - 1expbig(frac1(x - 1)^2big) \
&= frac32 lim_x to 1^+ Big[(x - 1)expBig(-frac1(x - 1)^2Big)Big] \
&= frac32 Big[lim_x to 1^+ (x - 1)Big] Big[lim_x to 1^+ expBig(-frac1(x - 1)^2Big)Big] = frac32 times 0 times 0 = 0
endalign* That was a long calculation but take my word: it can be repeated inductively to show that $limlimits_x to 1+fracd^nfdx^n = 0$ for all $n in mathbbZ_+!$ At all other points i.e. on $(-infty, -1) cup (-1, 1) cup (1, infty)$, $f$ is infinitely differentiable because exponentials and constant functions are infinitely differentiable.
Bonus Fact:
Both $fracd^n f(x)dx^n$ and $fracd^n g(x)dx^n$ also have the same value $0$ on $[-1, 1]$ for all positive integers $n$!
answered 2 hours ago
ZeroXLRZeroXLR
1,528519
$endgroup$
$begingroup$
Well Done! Unfortunately, I am a high school student and never heard of L'Hôpitals Rule. EDIT: This function is actually amazing, never saw something like this before.
$endgroup$
– TVSuchty
2 hours ago
1
$begingroup$
It basically says under certain conditions, $limlimits_x to a(f(x) / g(x)) = limlimits_x to a(fracd f(x)dx / fracd g(x)dx)$. en.wikipedia.org/wiki/L%27H%C3%B4pital%27s_rule
$endgroup$
– ZeroXLR
2 hours ago
$begingroup$
I am stunned. Do you know of more complex solutions?
$endgroup$
– TVSuchty
2 hours ago
$begingroup$
@TVSuchty If you are asking questions like this at high school and are studying math seriously, you will very soon learn about this rule (and a whole host of other rules from Calculus). Take a re-look at that function afterwards.
$endgroup$
– ZeroXLR
2 hours ago
$begingroup$
I look forward to. Thank you for your assistance.
$endgroup$
– TVSuchty
2 hours ago
|
show 2 more comments
$begingroup$
Define the real functions $f$ and $g$ thus:
$$
f(x) = begincases expBig(-frac1(x - 1)^2Big) &textif x > 1 \
0 &textif x in [-1, 1] \
expBig(-frac1(x + 1)^2Big) &textif x < -1
endcases
$$ and
$g(x) = 0$. $f$ and $g$ are both $0$ on $[-1, 1]$ but they differ in value everywhere else.
Obviously $g$ is continuously differentiable infinitely many times as it is a constant function. You can also check that $f$ is continuously differentiable infinitely many times at $x = -1$ and $x = 1$ by applying L'Hôpital's rule inductively. Checking this is a fine exercise in Real Analysis; you should try it. Here is a first taste of it:
beginalign*
lim_x to 1^+fracdf(x)dx &= limlimits_x to 1^+frac2expbig(- frac1(x - 1)^2big)(x - 1)^3 \
&= 2lim_x to 1^+fracfrac1(x - 1)^3expbig(frac1(x - 1)^2big) quadtextthis limit is of the form fracinftyinfty text so L'Hôpital applies \
&= 2 lim_x to 1^+fracfracddx(x - 1)^-3fracddxexpbig(frac1(x - 1)^2big) text by L'Hôpital \
&= 2 lim_x to 1^+frac-3(x - 1)^-4-2expbig(frac1(x - 1)^2big)(x - 1)^-3 \
&= 3lim_x to 1^+frac(x - 1)^-1expbig(frac1(x - 1)^2big) quadtextagain, this has the form fracinftyinfty text so L'Hôpital applies \
&= 3 lim_x to 1^+fracfracddx(x - 1)^-1fracddxexpbig(frac1(x - 1)^2big) text by L'Hôpital \
&= 3 lim_x to 1^+frac-(x - 1)^-2-2expbig(frac1(x - 1)^2big)(x - 1)^-3 \
&= frac32 lim_x to 1^+fracx - 1expbig(frac1(x - 1)^2big) \
&= frac32 lim_x to 1^+ Big[(x - 1)expBig(-frac1(x - 1)^2Big)Big] \
&= frac32 Big[lim_x to 1^+ (x - 1)Big] Big[lim_x to 1^+ expBig(-frac1(x - 1)^2Big)Big] = frac32 times 0 times 0 = 0
endalign* That was a long calculation but take my word: it can be repeated inductively to show that $limlimits_x to 1+fracd^nfdx^n = 0$ for all $n in mathbbZ_+!$ At all other points i.e. on $(-infty, -1) cup (-1, 1) cup (1, infty)$, $f$ is infinitely differentiable because exponentials and constant functions are infinitely differentiable.
Bonus Fact:
Both $fracd^n f(x)dx^n$ and $fracd^n g(x)dx^n$ also have the same value $0$ on $[-1, 1]$ for all positive integers $n$!
answered 2 hours ago
ZeroXLRZeroXLR
1,528519
$endgroup$
$begingroup$
Well Done! Unfortunately, I am a high school student and never heard of L'Hôpitals Rule. EDIT: This function is actually amazing, never saw something like this before.
$endgroup$
– TVSuchty
2 hours ago
1
$begingroup$
It basically says under certain conditions, $limlimits_x to a(f(x) / g(x)) = limlimits_x to a(fracd f(x)dx / fracd g(x)dx)$. en.wikipedia.org/wiki/L%27H%C3%B4pital%27s_rule
$endgroup$
– ZeroXLR
2 hours ago
$begingroup$
I am stunned. Do you know of more complex solutions?
$endgroup$
– TVSuchty
2 hours ago
$begingroup$
@TVSuchty If you are asking questions like this at high school and are studying math seriously, you will very soon learn about this rule (and a whole host of other rules from Calculus). Take a re-look at that function afterwards.
$endgroup$
– ZeroXLR
2 hours ago
$begingroup$
I look forward to. Thank you for your assistance.
$endgroup$
– TVSuchty
2 hours ago
|
show 2 more comments
$begingroup$
Define the real functions $f$ and $g$ thus:
$$
f(x) = begincases expBig(-frac1(x - 1)^2Big) &textif x > 1 \
0 &textif x in [-1, 1] \
expBig(-frac1(x + 1)^2Big) &textif x < -1
endcases
$$ and
$g(x) = 0$. $f$ and $g$ are both $0$ on $[-1, 1]$ but they differ in value everywhere else.
Obviously $g$ is continuously differentiable infinitely many times as it is a constant function. You can also check that $f$ is continuously differentiable infinitely many times at $x = -1$ and $x = 1$ by applying L'Hôpital's rule inductively. Checking this is a fine exercise in Real Analysis; you should try it. Here is a first taste of it:
beginalign*
lim_x to 1^+fracdf(x)dx &= limlimits_x to 1^+frac2expbig(- frac1(x - 1)^2big)(x - 1)^3 \
&= 2lim_x to 1^+fracfrac1(x - 1)^3expbig(frac1(x - 1)^2big) quadtextthis limit is of the form fracinftyinfty text so L'Hôpital applies \
&= 2 lim_x to 1^+fracfracddx(x - 1)^-3fracddxexpbig(frac1(x - 1)^2big) text by L'Hôpital \
&= 2 lim_x to 1^+frac-3(x - 1)^-4-2expbig(frac1(x - 1)^2big)(x - 1)^-3 \
&= 3lim_x to 1^+frac(x - 1)^-1expbig(frac1(x - 1)^2big) quadtextagain, this has the form fracinftyinfty text so L'Hôpital applies \
&= 3 lim_x to 1^+fracfracddx(x - 1)^-1fracddxexpbig(frac1(x - 1)^2big) text by L'Hôpital \
&= 3 lim_x to 1^+frac-(x - 1)^-2-2expbig(frac1(x - 1)^2big)(x - 1)^-3 \
&= frac32 lim_x to 1^+fracx - 1expbig(frac1(x - 1)^2big) \
&= frac32 lim_x to 1^+ Big[(x - 1)expBig(-frac1(x - 1)^2Big)Big] \
&= frac32 Big[lim_x to 1^+ (x - 1)Big] Big[lim_x to 1^+ expBig(-frac1(x - 1)^2Big)Big] = frac32 times 0 times 0 = 0
endalign* That was a long calculation but take my word: it can be repeated inductively to show that $limlimits_x to 1+fracd^nfdx^n = 0$ for all $n in mathbbZ_+!$ At all other points i.e. on $(-infty, -1) cup (-1, 1) cup (1, infty)$, $f$ is infinitely differentiable because exponentials and constant functions are infinitely differentiable.
Bonus Fact:
Both $fracd^n f(x)dx^n$ and $fracd^n g(x)dx^n$ also have the same value $0$ on $[-1, 1]$ for all positive integers $n$!
answered 2 hours ago
ZeroXLRZeroXLR
1,528519
$endgroup$
Define the real functions $f$ and $g$ thus:
$$
f(x) = begincases expBig(-frac1(x - 1)^2Big) &textif x > 1 \
0 &textif x in [-1, 1] \
expBig(-frac1(x + 1)^2Big) &textif x < -1
endcases
$$ and
$g(x) = 0$. $f$ and $g$ are both $0$ on $[-1, 1]$ but they differ in value everywhere else.
Obviously $g$ is continuously differentiable infinitely many times as it is a constant function. You can also check that $f$ is continuously differentiable infinitely many times at $x = -1$ and $x = 1$ by applying L'Hôpital's rule inductively. Checking this is a fine exercise in Real Analysis; you should try it. Here is a first taste of it:
beginalign*
lim_x to 1^+fracdf(x)dx &= limlimits_x to 1^+frac2expbig(- frac1(x - 1)^2big)(x - 1)^3 \
&= 2lim_x to 1^+fracfrac1(x - 1)^3expbig(frac1(x - 1)^2big) quadtextthis limit is of the form fracinftyinfty text so L'Hôpital applies \
&= 2 lim_x to 1^+fracfracddx(x - 1)^-3fracddxexpbig(frac1(x - 1)^2big) text by L'Hôpital \
&= 2 lim_x to 1^+frac-3(x - 1)^-4-2expbig(frac1(x - 1)^2big)(x - 1)^-3 \
&= 3lim_x to 1^+frac(x - 1)^-1expbig(frac1(x - 1)^2big) quadtextagain, this has the form fracinftyinfty text so L'Hôpital applies \
&= 3 lim_x to 1^+fracfracddx(x - 1)^-1fracddxexpbig(frac1(x - 1)^2big) text by L'Hôpital \
&= 3 lim_x to 1^+frac-(x - 1)^-2-2expbig(frac1(x - 1)^2big)(x - 1)^-3 \
&= frac32 lim_x to 1^+fracx - 1expbig(frac1(x - 1)^2big) \
&= frac32 lim_x to 1^+ Big[(x - 1)expBig(-frac1(x - 1)^2Big)Big] \
&= frac32 Big[lim_x to 1^+ (x - 1)Big] Big[lim_x to 1^+ expBig(-frac1(x - 1)^2Big)Big] = frac32 times 0 times 0 = 0
endalign* That was a long calculation but take my word: it can be repeated inductively to show that $limlimits_x to 1+fracd^nfdx^n = 0$ for all $n in mathbbZ_+!$ At all other points i.e. on $(-infty, -1) cup (-1, 1) cup (1, infty)$, $f$ is infinitely differentiable because exponentials and constant functions are infinitely differentiable.
Bonus Fact:
Both $fracd^n f(x)dx^n$ and $fracd^n g(x)dx^n$ also have the same value $0$ on $[-1, 1]$ for all positive integers $n$!
answered 2 hours ago
ZeroXLRZeroXLR
1,528519
edited 1 hour ago
answered 2 hours ago
ZeroXLRZeroXLR
1,528519
answered 2 hours ago
ZeroXLRZeroXLR
1,528519
answered 2 hours ago
ZeroXLRZeroXLR
1,528519
1,528519
$begingroup$
Well Done! Unfortunately, I am a high school student and never heard of L'Hôpitals Rule. EDIT: This function is actually amazing, never saw something like this before.
$endgroup$
– TVSuchty
2 hours ago
1
$begingroup$
It basically says under certain conditions, $limlimits_x to a(f(x) / g(x)) = limlimits_x to a(fracd f(x)dx / fracd g(x)dx)$. en.wikipedia.org/wiki/L%27H%C3%B4pital%27s_rule
$endgroup$
– ZeroXLR
2 hours ago
$begingroup$
I am stunned. Do you know of more complex solutions?
$endgroup$
– TVSuchty
2 hours ago
$begingroup$
@TVSuchty If you are asking questions like this at high school and are studying math seriously, you will very soon learn about this rule (and a whole host of other rules from Calculus). Take a re-look at that function afterwards.
$endgroup$
– ZeroXLR
2 hours ago
$begingroup$
I look forward to. Thank you for your assistance.
$endgroup$
– TVSuchty
2 hours ago
|
show 2 more comments
$begingroup$
Well Done! Unfortunately, I am a high school student and never heard of L'Hôpitals Rule. EDIT: This function is actually amazing, never saw something like this before.
$endgroup$
– TVSuchty
2 hours ago
1
$begingroup$
It basically says under certain conditions, $limlimits_x to a(f(x) / g(x)) = limlimits_x to a(fracd f(x)dx / fracd g(x)dx)$. en.wikipedia.org/wiki/L%27H%C3%B4pital%27s_rule
$endgroup$
– ZeroXLR
2 hours ago
$begingroup$
I am stunned. Do you know of more complex solutions?
$endgroup$
– TVSuchty
2 hours ago
$begingroup$
@TVSuchty If you are asking questions like this at high school and are studying math seriously, you will very soon learn about this rule (and a whole host of other rules from Calculus). Take a re-look at that function afterwards.
$endgroup$
– ZeroXLR
2 hours ago
$begingroup$
I look forward to. Thank you for your assistance.
$endgroup$
– TVSuchty
2 hours ago
$begingroup$
Well Done! Unfortunately, I am a high school student and never heard of L'Hôpitals Rule. EDIT: This function is actually amazing, never saw something like this before.
$endgroup$
– TVSuchty
2 hours ago
$begingroup$
Well Done! Unfortunately, I am a high school student and never heard of L'Hôpitals Rule. EDIT: This function is actually amazing, never saw something like this before.
$endgroup$
– TVSuchty
2 hours ago
1
1
$begingroup$
It basically says under certain conditions, $limlimits_x to a(f(x) / g(x)) = limlimits_x to a(fracd f(x)dx / fracd g(x)dx)$. en.wikipedia.org/wiki/L%27H%C3%B4pital%27s_rule
$endgroup$
– ZeroXLR
2 hours ago
$begingroup$
It basically says under certain conditions, $limlimits_x to a(f(x) / g(x)) = limlimits_x to a(fracd f(x)dx / fracd g(x)dx)$. en.wikipedia.org/wiki/L%27H%C3%B4pital%27s_rule
$endgroup$
– ZeroXLR
2 hours ago
$begingroup$
I am stunned. Do you know of more complex solutions?
$endgroup$
– TVSuchty
2 hours ago
$begingroup$
I am stunned. Do you know of more complex solutions?
$endgroup$
– TVSuchty
2 hours ago
$begingroup$
@TVSuchty If you are asking questions like this at high school and are studying math seriously, you will very soon learn about this rule (and a whole host of other rules from Calculus). Take a re-look at that function afterwards.
$endgroup$
– ZeroXLR
2 hours ago
$begingroup$
@TVSuchty If you are asking questions like this at high school and are studying math seriously, you will very soon learn about this rule (and a whole host of other rules from Calculus). Take a re-look at that function afterwards.
$endgroup$
– ZeroXLR
2 hours ago
$begingroup$
I look forward to. Thank you for your assistance.
$endgroup$
– TVSuchty
2 hours ago
$begingroup$
I look forward to. Thank you for your assistance.
$endgroup$
– TVSuchty
2 hours ago
|
show 2 more comments
$begingroup$
Taylors theorem implies that if two functions are the same in one interval, they must be the same everywhere. This is because when you look at one point in the interval, the nth derivatives of both will be equal. Thus, their Taylor series centered at that point will be equal. Then you can move away from the center and find the Taylor series of both centered around another point to get more information about the function, and they will still be equal. So anywhere you look, the two functions will be equal. (This applies for all analytic functions, not so much for piecewise functions)
answered 37 mins ago
uhhhhidkuhhhhidk
1266
$endgroup$
add a comment |
$begingroup$
Taylors theorem implies that if two functions are the same in one interval, they must be the same everywhere. This is because when you look at one point in the interval, the nth derivatives of both will be equal. Thus, their Taylor series centered at that point will be equal. Then you can move away from the center and find the Taylor series of both centered around another point to get more information about the function, and they will still be equal. So anywhere you look, the two functions will be equal. (This applies for all analytic functions, not so much for piecewise functions)
answered 37 mins ago
uhhhhidkuhhhhidk
1266
$endgroup$
add a comment |
$begingroup$
Taylors theorem implies that if two functions are the same in one interval, they must be the same everywhere. This is because when you look at one point in the interval, the nth derivatives of both will be equal. Thus, their Taylor series centered at that point will be equal. Then you can move away from the center and find the Taylor series of both centered around another point to get more information about the function, and they will still be equal. So anywhere you look, the two functions will be equal. (This applies for all analytic functions, not so much for piecewise functions)
answered 37 mins ago
uhhhhidkuhhhhidk
1266
$endgroup$
Taylors theorem implies that if two functions are the same in one interval, they must be the same everywhere. This is because when you look at one point in the interval, the nth derivatives of both will be equal. Thus, their Taylor series centered at that point will be equal. Then you can move away from the center and find the Taylor series of both centered around another point to get more information about the function, and they will still be equal. So anywhere you look, the two functions will be equal. (This applies for all analytic functions, not so much for piecewise functions)
answered 37 mins ago
uhhhhidkuhhhhidk
1266
answered 37 mins ago
uhhhhidkuhhhhidk
1266
answered 37 mins ago
uhhhhidkuhhhhidk
1266
answered 37 mins ago
uhhhhidkuhhhhidk
1266
1266
add a comment |
add a comment |
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