Why is this a valid proof for the harmonic series?Why do we say the harmonic series is divergent?improper...
Write to EXCEL from SQL DB using VBA script
Can I use 1000v rectifier diodes instead of 600v rectifier diodes?
Why is this a valid proof for the harmonic series?
How to get SEEK accessing converted ID via view
Unidentified items in bicycle tube repair kit
Can commander tax be proliferated?
If Melisandre foresaw another character closing blue eyes, why did she follow Stannis?
How to scale a verbatim environment on a minipage?
Was the ancestor of SCSI, the SASI protocol, nothing more than a draft?
Why is the SNP putting so much emphasis on currency plans?
Is it the same airport YUL and YMQ in Canada?
Pressure to defend the relevance of one's area of mathematics
Visa for volunteering in England
Which skill should be used for secret doors or traps: Perception or Investigation?
Disabling Resource Governor in SQL Server
How to back up a running Linode server?
My ID is expired, can I fly to the Bahamas with my passport
Did we get closer to another plane than we were supposed to, or was the pilot just protecting our delicate sensibilities?
How did Captain America use this power?
What is the limiting factor for a CAN bus to exceed 1Mbps bandwidth?
Would "lab meat" be able to feed a much larger global population
Why do computer-science majors learn calculus?
Packet sniffer for MacOS Mojave and above
Why are notes ordered like they are on a piano?
Why is this a valid proof for the harmonic series?
Why do we say the harmonic series is divergent?improper integrals: Need help pleaseWhat's the use of this theorem about series?Necessary condition for the convergence of an improper integral.How to show that $intlimits_1^{infty} frac{1}{x}dx$ diverges(without using the harmonic series)?Proof that the improper integral $frac{1}{(x^2-1)}$ from $0$ to $infty$ is divergent.A property of the _digamma_ functionproof of integral divergingValid Series Convergence Proof?Is there an intuitive reason as to why the harmonic series is divergent?
$begingroup$
The other day, I encountered the Harmonic series which I though is an interesting concept. There were many ways to prove that it's divergent and the one I really liked was rather simple but did the job nevertheless. But a proof used integrals and proved that it diverges. But when using integrals, aren't we also calculating fractions with a decimal denominator? I'm not really familiar with calculus and usually only do number theory but doesn't integral find the area under a continuous curve?
Thanks in advance for any help!
EDIT Here's the integral proof:
$$int_1^{infty} 1 / x ,dx= {infty}$$
calculus integration divergent-series
edited 3 hours ago
Michael Rybkin
4,9441524
asked 4 hours ago
Borna GhahnooshBorna Ghahnoosh
83
$endgroup$
add a comment |
$begingroup$
The other day, I encountered the Harmonic series which I though is an interesting concept. There were many ways to prove that it's divergent and the one I really liked was rather simple but did the job nevertheless. But a proof used integrals and proved that it diverges. But when using integrals, aren't we also calculating fractions with a decimal denominator? I'm not really familiar with calculus and usually only do number theory but doesn't integral find the area under a continuous curve?
Thanks in advance for any help!
EDIT Here's the integral proof:
$$int_1^{infty} 1 / x ,dx= {infty}$$
calculus integration divergent-series
edited 3 hours ago
Michael Rybkin
4,9441524
asked 4 hours ago
Borna GhahnooshBorna Ghahnoosh
83
$endgroup$
1
$begingroup$
It would really help us if you included the proof in question...
$endgroup$
– Eevee Trainer
4 hours ago
$begingroup$
@EeveeTrainer my question isn't about a proof for the Harmonic series. I know it diverges using comparison test and fully understand it. But why does the integral work? Here's the comparison test: en.wikipedia.org/wiki/…. EDIT I just realized you meant the integral proof! I'm so sorry, I'll add it.
$endgroup$
– Borna Ghahnoosh
4 hours ago
$begingroup$
Your textbook probably has the "integral test" ... look in the index for that.
$endgroup$
– GEdgar
4 hours ago
$begingroup$
Because the function is decreasing so for example on $[1,2]$, $1 ge frac{1}{x}$, on $[2,3]$, $frac{1}{2} ge frac{1}{x}$ etc; integrating and summing on $n$ we get the result
$endgroup$
– Conrad
4 hours ago
add a comment |
$begingroup$
The other day, I encountered the Harmonic series which I though is an interesting concept. There were many ways to prove that it's divergent and the one I really liked was rather simple but did the job nevertheless. But a proof used integrals and proved that it diverges. But when using integrals, aren't we also calculating fractions with a decimal denominator? I'm not really familiar with calculus and usually only do number theory but doesn't integral find the area under a continuous curve?
Thanks in advance for any help!
EDIT Here's the integral proof:
$$int_1^{infty} 1 / x ,dx= {infty}$$
calculus integration divergent-series
edited 3 hours ago
Michael Rybkin
4,9441524
asked 4 hours ago
Borna GhahnooshBorna Ghahnoosh
83
$endgroup$
The other day, I encountered the Harmonic series which I though is an interesting concept. There were many ways to prove that it's divergent and the one I really liked was rather simple but did the job nevertheless. But a proof used integrals and proved that it diverges. But when using integrals, aren't we also calculating fractions with a decimal denominator? I'm not really familiar with calculus and usually only do number theory but doesn't integral find the area under a continuous curve?
Thanks in advance for any help!
EDIT Here's the integral proof:
$$int_1^{infty} 1 / x ,dx= {infty}$$
calculus integration divergent-series
calculus integration divergent-series
edited 3 hours ago
Michael Rybkin
4,9441524
asked 4 hours ago
Borna GhahnooshBorna Ghahnoosh
83
edited 3 hours ago
Michael Rybkin
4,9441524
asked 4 hours ago
Borna GhahnooshBorna Ghahnoosh
83
edited 3 hours ago
Michael Rybkin
4,9441524
edited 3 hours ago
Michael Rybkin
4,9441524
edited 3 hours ago
Michael Rybkin
4,9441524
4,9441524
asked 4 hours ago
Borna GhahnooshBorna Ghahnoosh
83
asked 4 hours ago
Borna GhahnooshBorna Ghahnoosh
83
asked 4 hours ago
Borna GhahnooshBorna Ghahnoosh
83
83
1
$begingroup$
It would really help us if you included the proof in question...
$endgroup$
– Eevee Trainer
4 hours ago
$begingroup$
@EeveeTrainer my question isn't about a proof for the Harmonic series. I know it diverges using comparison test and fully understand it. But why does the integral work? Here's the comparison test: en.wikipedia.org/wiki/…. EDIT I just realized you meant the integral proof! I'm so sorry, I'll add it.
$endgroup$
– Borna Ghahnoosh
4 hours ago
$begingroup$
Your textbook probably has the "integral test" ... look in the index for that.
$endgroup$
– GEdgar
4 hours ago
$begingroup$
Because the function is decreasing so for example on $[1,2]$, $1 ge frac{1}{x}$, on $[2,3]$, $frac{1}{2} ge frac{1}{x}$ etc; integrating and summing on $n$ we get the result
$endgroup$
– Conrad
4 hours ago
add a comment |
1
$begingroup$
It would really help us if you included the proof in question...
$endgroup$
– Eevee Trainer
4 hours ago
$begingroup$
@EeveeTrainer my question isn't about a proof for the Harmonic series. I know it diverges using comparison test and fully understand it. But why does the integral work? Here's the comparison test: en.wikipedia.org/wiki/…. EDIT I just realized you meant the integral proof! I'm so sorry, I'll add it.
$endgroup$
– Borna Ghahnoosh
4 hours ago
$begingroup$
Your textbook probably has the "integral test" ... look in the index for that.
$endgroup$
– GEdgar
4 hours ago
$begingroup$
Because the function is decreasing so for example on $[1,2]$, $1 ge frac{1}{x}$, on $[2,3]$, $frac{1}{2} ge frac{1}{x}$ etc; integrating and summing on $n$ we get the result
$endgroup$
– Conrad
4 hours ago
1
1
$begingroup$
It would really help us if you included the proof in question...
$endgroup$
– Eevee Trainer
4 hours ago
$begingroup$
It would really help us if you included the proof in question...
$endgroup$
– Eevee Trainer
4 hours ago
$begingroup$
@EeveeTrainer my question isn't about a proof for the Harmonic series. I know it diverges using comparison test and fully understand it. But why does the integral work? Here's the comparison test: en.wikipedia.org/wiki/…. EDIT I just realized you meant the integral proof! I'm so sorry, I'll add it.
$endgroup$
– Borna Ghahnoosh
4 hours ago
$begingroup$
@EeveeTrainer my question isn't about a proof for the Harmonic series. I know it diverges using comparison test and fully understand it. But why does the integral work? Here's the comparison test: en.wikipedia.org/wiki/…. EDIT I just realized you meant the integral proof! I'm so sorry, I'll add it.
$endgroup$
– Borna Ghahnoosh
4 hours ago
$begingroup$
Your textbook probably has the "integral test" ... look in the index for that.
$endgroup$
– GEdgar
4 hours ago
$begingroup$
Your textbook probably has the "integral test" ... look in the index for that.
$endgroup$
– GEdgar
4 hours ago
$begingroup$
Because the function is decreasing so for example on $[1,2]$, $1 ge frac{1}{x}$, on $[2,3]$, $frac{1}{2} ge frac{1}{x}$ etc; integrating and summing on $n$ we get the result
$endgroup$
– Conrad
4 hours ago
$begingroup$
Because the function is decreasing so for example on $[1,2]$, $1 ge frac{1}{x}$, on $[2,3]$, $frac{1}{2} ge frac{1}{x}$ etc; integrating and summing on $n$ we get the result
$endgroup$
– Conrad
4 hours ago
add a comment |
2 Answers
2
active
oldest
votes
$begingroup$
Consider the following summation:
$$
A=1cdot 1+frac12cdot1+frac13cdot1+frac14cdot1+...
$$
That's a sum of an infinite number of rectangles of height $frac1n$, where $ninmathbb{N}$, and width 1. Do you agree that's nothing more than the harmonic series? Moreover, the area under the curve $f(x)=frac{1}{x}$ from $1$ to $infty$ is clearly less than $A$ and lies totally within $A$ (see the picture below). However, the area under the curve $f(x)=frac{1}{x}$ from $1$ to $infty$ doesn't add up to a finite number. It goes to infinity. What should be happening with a piece of area that's even larger than that? Obviously, it must also be infinite. Therefore, the harmonic series diverges.
answered 3 hours ago
Michael RybkinMichael Rybkin
4,9441524
$endgroup$
add a comment |
$begingroup$
It works using a simple inequality. If $f(x) leq M$ for $x in [a,b]$, then $int_a^b f(x),dx leq M(b-a)$. This is fairly easy to prove:
$$int_a^b f(x),dx leq int_a^b M,dx = M(b-a).$$
Notice that $1/x < 1/n$ on the interval $[n,n+1]$. Then,
$$infty = int_1^infty frac{1}{x}dx = sum_{k=1}^infty int_k^{k+1} frac{1}{x},dx leq sum_{k=1}^infty int_k^{k+1}frac{1}{k},dx = sum_{k=1}^infty frac{1}{k}.$$
answered 4 hours ago
forgottenarrowforgottenarrow
32617
$endgroup$
1
$begingroup$
The theorem as you state it is valid only for finite sums. However, you use it for an infinite sum in your explanation. As I'm sure you're aware, this doesn't always follow.
$endgroup$
– Allawonder
3 hours ago
$begingroup$
Which theorem do you mean specifically?
$endgroup$
– forgottenarrow
32 mins ago
$begingroup$
I was referring to the inequality; I thought I saw an interchange of $sum$ and $int,$ but now that I look closely, I see that I must have been dreaming, or something else was the case. You've simply added up infinitely many such inequalities -- nothing harmful in that at all. Whereupon, your well-earned upvote. It's a shame that OP got carried away by pictures, though.
$endgroup$
– Allawonder
16 mins ago
1
$begingroup$
Yeah, that's a good thing to look out for and an easy mistake to make. Thanks!
$endgroup$
– forgottenarrow
10 mins ago
add a comment |
Your Answer
StackExchange.ready(function() {
var channelOptions = {
tags: "".split(" "),
id: "69"
};
initTagRenderer("".split(" "), "".split(" "), channelOptions);
StackExchange.using("externalEditor", function() {
// Have to fire editor after snippets, if snippets enabled
if (StackExchange.settings.snippets.snippetsEnabled) {
StackExchange.using("snippets", function() {
createEditor();
});
}
else {
createEditor();
}
});
function createEditor() {
StackExchange.prepareEditor({
heartbeatType: 'answer',
autoActivateHeartbeat: false,
convertImagesToLinks: true,
noModals: true,
showLowRepImageUploadWarning: true,
reputationToPostImages: 10,
bindNavPrevention: true,
postfix: "",
imageUploader: {
brandingHtml: "Powered by u003ca class="icon-imgur-white" href="https://imgur.com/"u003eu003c/au003e",
contentPolicyHtml: "User contributions licensed under u003ca href="https://creativecommons.org/licenses/by-sa/3.0/"u003ecc by-sa 3.0 with attribution requiredu003c/au003e u003ca href="https://stackoverflow.com/legal/content-policy"u003e(content policy)u003c/au003e",
allowUrls: true
},
noCode: true, onDemand: true,
discardSelector: ".discard-answer"
,immediatelyShowMarkdownHelp:true
});
}
});
Sign up or log in
StackExchange.ready(function () {
StackExchange.helpers.onClickDraftSave('#login-link');
});
Sign up using Google
Sign up using Facebook
Sign up using Email and Password
Post as a guest
Required, but never shown
StackExchange.ready(
function () {
StackExchange.openid.initPostLogin('.new-post-login', 'https%3a%2f%2fmath.stackexchange.com%2fquestions%2f3207598%2fwhy-is-this-a-valid-proof-for-the-harmonic-series%23new-answer', 'question_page');
}
);
Post as a guest
Required, but never shown
2 Answers
2
active
oldest
votes
2 Answers
2
active
oldest
votes
active
oldest
votes
active
oldest
votes
$begingroup$
Consider the following summation:
$$
A=1cdot 1+frac12cdot1+frac13cdot1+frac14cdot1+...
$$
That's a sum of an infinite number of rectangles of height $frac1n$, where $ninmathbb{N}$, and width 1. Do you agree that's nothing more than the harmonic series? Moreover, the area under the curve $f(x)=frac{1}{x}$ from $1$ to $infty$ is clearly less than $A$ and lies totally within $A$ (see the picture below). However, the area under the curve $f(x)=frac{1}{x}$ from $1$ to $infty$ doesn't add up to a finite number. It goes to infinity. What should be happening with a piece of area that's even larger than that? Obviously, it must also be infinite. Therefore, the harmonic series diverges.
answered 3 hours ago
Michael RybkinMichael Rybkin
4,9441524
$endgroup$
add a comment |
$begingroup$
Consider the following summation:
$$
A=1cdot 1+frac12cdot1+frac13cdot1+frac14cdot1+...
$$
That's a sum of an infinite number of rectangles of height $frac1n$, where $ninmathbb{N}$, and width 1. Do you agree that's nothing more than the harmonic series? Moreover, the area under the curve $f(x)=frac{1}{x}$ from $1$ to $infty$ is clearly less than $A$ and lies totally within $A$ (see the picture below). However, the area under the curve $f(x)=frac{1}{x}$ from $1$ to $infty$ doesn't add up to a finite number. It goes to infinity. What should be happening with a piece of area that's even larger than that? Obviously, it must also be infinite. Therefore, the harmonic series diverges.
answered 3 hours ago
Michael RybkinMichael Rybkin
4,9441524
$endgroup$
add a comment |
$begingroup$
Consider the following summation:
$$
A=1cdot 1+frac12cdot1+frac13cdot1+frac14cdot1+...
$$
That's a sum of an infinite number of rectangles of height $frac1n$, where $ninmathbb{N}$, and width 1. Do you agree that's nothing more than the harmonic series? Moreover, the area under the curve $f(x)=frac{1}{x}$ from $1$ to $infty$ is clearly less than $A$ and lies totally within $A$ (see the picture below). However, the area under the curve $f(x)=frac{1}{x}$ from $1$ to $infty$ doesn't add up to a finite number. It goes to infinity. What should be happening with a piece of area that's even larger than that? Obviously, it must also be infinite. Therefore, the harmonic series diverges.
answered 3 hours ago
Michael RybkinMichael Rybkin
4,9441524
$endgroup$
Consider the following summation:
$$
A=1cdot 1+frac12cdot1+frac13cdot1+frac14cdot1+...
$$
That's a sum of an infinite number of rectangles of height $frac1n$, where $ninmathbb{N}$, and width 1. Do you agree that's nothing more than the harmonic series? Moreover, the area under the curve $f(x)=frac{1}{x}$ from $1$ to $infty$ is clearly less than $A$ and lies totally within $A$ (see the picture below). However, the area under the curve $f(x)=frac{1}{x}$ from $1$ to $infty$ doesn't add up to a finite number. It goes to infinity. What should be happening with a piece of area that's even larger than that? Obviously, it must also be infinite. Therefore, the harmonic series diverges.
answered 3 hours ago
Michael RybkinMichael Rybkin
4,9441524
edited 3 hours ago
answered 3 hours ago
Michael RybkinMichael Rybkin
4,9441524
answered 3 hours ago
Michael RybkinMichael Rybkin
4,9441524
answered 3 hours ago
Michael RybkinMichael Rybkin
4,9441524
4,9441524
add a comment |
add a comment |
$begingroup$
It works using a simple inequality. If $f(x) leq M$ for $x in [a,b]$, then $int_a^b f(x),dx leq M(b-a)$. This is fairly easy to prove:
$$int_a^b f(x),dx leq int_a^b M,dx = M(b-a).$$
Notice that $1/x < 1/n$ on the interval $[n,n+1]$. Then,
$$infty = int_1^infty frac{1}{x}dx = sum_{k=1}^infty int_k^{k+1} frac{1}{x},dx leq sum_{k=1}^infty int_k^{k+1}frac{1}{k},dx = sum_{k=1}^infty frac{1}{k}.$$
answered 4 hours ago
forgottenarrowforgottenarrow
32617
$endgroup$
1
$begingroup$
The theorem as you state it is valid only for finite sums. However, you use it for an infinite sum in your explanation. As I'm sure you're aware, this doesn't always follow.
$endgroup$
– Allawonder
3 hours ago
$begingroup$
Which theorem do you mean specifically?
$endgroup$
– forgottenarrow
32 mins ago
$begingroup$
I was referring to the inequality; I thought I saw an interchange of $sum$ and $int,$ but now that I look closely, I see that I must have been dreaming, or something else was the case. You've simply added up infinitely many such inequalities -- nothing harmful in that at all. Whereupon, your well-earned upvote. It's a shame that OP got carried away by pictures, though.
$endgroup$
– Allawonder
16 mins ago
1
$begingroup$
Yeah, that's a good thing to look out for and an easy mistake to make. Thanks!
$endgroup$
– forgottenarrow
10 mins ago
add a comment |
$begingroup$
It works using a simple inequality. If $f(x) leq M$ for $x in [a,b]$, then $int_a^b f(x),dx leq M(b-a)$. This is fairly easy to prove:
$$int_a^b f(x),dx leq int_a^b M,dx = M(b-a).$$
Notice that $1/x < 1/n$ on the interval $[n,n+1]$. Then,
$$infty = int_1^infty frac{1}{x}dx = sum_{k=1}^infty int_k^{k+1} frac{1}{x},dx leq sum_{k=1}^infty int_k^{k+1}frac{1}{k},dx = sum_{k=1}^infty frac{1}{k}.$$
answered 4 hours ago
forgottenarrowforgottenarrow
32617
$endgroup$
1
$begingroup$
The theorem as you state it is valid only for finite sums. However, you use it for an infinite sum in your explanation. As I'm sure you're aware, this doesn't always follow.
$endgroup$
– Allawonder
3 hours ago
$begingroup$
Which theorem do you mean specifically?
$endgroup$
– forgottenarrow
32 mins ago
$begingroup$
I was referring to the inequality; I thought I saw an interchange of $sum$ and $int,$ but now that I look closely, I see that I must have been dreaming, or something else was the case. You've simply added up infinitely many such inequalities -- nothing harmful in that at all. Whereupon, your well-earned upvote. It's a shame that OP got carried away by pictures, though.
$endgroup$
– Allawonder
16 mins ago
1
$begingroup$
Yeah, that's a good thing to look out for and an easy mistake to make. Thanks!
$endgroup$
– forgottenarrow
10 mins ago
add a comment |
$begingroup$
It works using a simple inequality. If $f(x) leq M$ for $x in [a,b]$, then $int_a^b f(x),dx leq M(b-a)$. This is fairly easy to prove:
$$int_a^b f(x),dx leq int_a^b M,dx = M(b-a).$$
Notice that $1/x < 1/n$ on the interval $[n,n+1]$. Then,
$$infty = int_1^infty frac{1}{x}dx = sum_{k=1}^infty int_k^{k+1} frac{1}{x},dx leq sum_{k=1}^infty int_k^{k+1}frac{1}{k},dx = sum_{k=1}^infty frac{1}{k}.$$
answered 4 hours ago
forgottenarrowforgottenarrow
32617
$endgroup$
It works using a simple inequality. If $f(x) leq M$ for $x in [a,b]$, then $int_a^b f(x),dx leq M(b-a)$. This is fairly easy to prove:
$$int_a^b f(x),dx leq int_a^b M,dx = M(b-a).$$
Notice that $1/x < 1/n$ on the interval $[n,n+1]$. Then,
$$infty = int_1^infty frac{1}{x}dx = sum_{k=1}^infty int_k^{k+1} frac{1}{x},dx leq sum_{k=1}^infty int_k^{k+1}frac{1}{k},dx = sum_{k=1}^infty frac{1}{k}.$$
answered 4 hours ago
forgottenarrowforgottenarrow
32617
answered 4 hours ago
forgottenarrowforgottenarrow
32617
answered 4 hours ago
forgottenarrowforgottenarrow
32617
answered 4 hours ago
forgottenarrowforgottenarrow
32617
32617
1
$begingroup$
The theorem as you state it is valid only for finite sums. However, you use it for an infinite sum in your explanation. As I'm sure you're aware, this doesn't always follow.
$endgroup$
– Allawonder
3 hours ago
$begingroup$
Which theorem do you mean specifically?
$endgroup$
– forgottenarrow
32 mins ago
$begingroup$
I was referring to the inequality; I thought I saw an interchange of $sum$ and $int,$ but now that I look closely, I see that I must have been dreaming, or something else was the case. You've simply added up infinitely many such inequalities -- nothing harmful in that at all. Whereupon, your well-earned upvote. It's a shame that OP got carried away by pictures, though.
$endgroup$
– Allawonder
16 mins ago
1
$begingroup$
Yeah, that's a good thing to look out for and an easy mistake to make. Thanks!
$endgroup$
– forgottenarrow
10 mins ago
add a comment |
1
$begingroup$
The theorem as you state it is valid only for finite sums. However, you use it for an infinite sum in your explanation. As I'm sure you're aware, this doesn't always follow.
$endgroup$
– Allawonder
3 hours ago
$begingroup$
Which theorem do you mean specifically?
$endgroup$
– forgottenarrow
32 mins ago
$begingroup$
I was referring to the inequality; I thought I saw an interchange of $sum$ and $int,$ but now that I look closely, I see that I must have been dreaming, or something else was the case. You've simply added up infinitely many such inequalities -- nothing harmful in that at all. Whereupon, your well-earned upvote. It's a shame that OP got carried away by pictures, though.
$endgroup$
– Allawonder
16 mins ago
1
$begingroup$
Yeah, that's a good thing to look out for and an easy mistake to make. Thanks!
$endgroup$
– forgottenarrow
10 mins ago
1
1
$begingroup$
The theorem as you state it is valid only for finite sums. However, you use it for an infinite sum in your explanation. As I'm sure you're aware, this doesn't always follow.
$endgroup$
– Allawonder
3 hours ago
$begingroup$
The theorem as you state it is valid only for finite sums. However, you use it for an infinite sum in your explanation. As I'm sure you're aware, this doesn't always follow.
$endgroup$
– Allawonder
3 hours ago
$begingroup$
Which theorem do you mean specifically?
$endgroup$
– forgottenarrow
32 mins ago
$begingroup$
Which theorem do you mean specifically?
$endgroup$
– forgottenarrow
32 mins ago
$begingroup$
I was referring to the inequality; I thought I saw an interchange of $sum$ and $int,$ but now that I look closely, I see that I must have been dreaming, or something else was the case. You've simply added up infinitely many such inequalities -- nothing harmful in that at all. Whereupon, your well-earned upvote. It's a shame that OP got carried away by pictures, though.
$endgroup$
– Allawonder
16 mins ago
$begingroup$
I was referring to the inequality; I thought I saw an interchange of $sum$ and $int,$ but now that I look closely, I see that I must have been dreaming, or something else was the case. You've simply added up infinitely many such inequalities -- nothing harmful in that at all. Whereupon, your well-earned upvote. It's a shame that OP got carried away by pictures, though.
$endgroup$
– Allawonder
16 mins ago
1
1
$begingroup$
Yeah, that's a good thing to look out for and an easy mistake to make. Thanks!
$endgroup$
– forgottenarrow
10 mins ago
$begingroup$
Yeah, that's a good thing to look out for and an easy mistake to make. Thanks!
$endgroup$
– forgottenarrow
10 mins ago
add a comment |
Thanks for contributing an answer to Mathematics Stack Exchange!
- Please be sure to answer the question. Provide details and share your research!
But avoid …
- Asking for help, clarification, or responding to other answers.
- Making statements based on opinion; back them up with references or personal experience.
Use MathJax to format equations. MathJax reference.
To learn more, see our tips on writing great answers.
Sign up or log in
StackExchange.ready(function () {
StackExchange.helpers.onClickDraftSave('#login-link');
});
Sign up using Google
Sign up using Facebook
Sign up using Email and Password
Post as a guest
Required, but never shown
StackExchange.ready(
function () {
StackExchange.openid.initPostLogin('.new-post-login', 'https%3a%2f%2fmath.stackexchange.com%2fquestions%2f3207598%2fwhy-is-this-a-valid-proof-for-the-harmonic-series%23new-answer', 'question_page');
}
);
Post as a guest
Required, but never shown
Sign up or log in
StackExchange.ready(function () {
StackExchange.helpers.onClickDraftSave('#login-link');
});
Sign up using Google
Sign up using Facebook
Sign up using Email and Password
Post as a guest
Required, but never shown
Sign up or log in
StackExchange.ready(function () {
StackExchange.helpers.onClickDraftSave('#login-link');
});
Sign up using Google
Sign up using Facebook
Sign up using Email and Password
Post as a guest
Required, but never shown
Sign up or log in
StackExchange.ready(function () {
StackExchange.helpers.onClickDraftSave('#login-link');
});
Sign up using Google
Sign up using Facebook
Sign up using Email and Password
Sign up using Google
Sign up using Facebook
Sign up using Email and Password
Post as a guest
Required, but never shown
Required, but never shown
Required, but never shown
Required, but never shown
Required, but never shown
Required, but never shown
Required, but never shown
Required, but never shown
Required, but never shown
1
$begingroup$
It would really help us if you included the proof in question...
$endgroup$
– Eevee Trainer
4 hours ago
$begingroup$
@EeveeTrainer my question isn't about a proof for the Harmonic series. I know it diverges using comparison test and fully understand it. But why does the integral work? Here's the comparison test: en.wikipedia.org/wiki/…. EDIT I just realized you meant the integral proof! I'm so sorry, I'll add it.
$endgroup$
– Borna Ghahnoosh
4 hours ago
$begingroup$
Your textbook probably has the "integral test" ... look in the index for that.
$endgroup$
– GEdgar
4 hours ago
$begingroup$
Because the function is decreasing so for example on $[1,2]$, $1 ge frac{1}{x}$, on $[2,3]$, $frac{1}{2} ge frac{1}{x}$ etc; integrating and summing on $n$ we get the result
$endgroup$
– Conrad
4 hours ago