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Do i imagine the linear (straight line) homotopy in a correct way?

1

$begingroup$

Today i learned about the linear homotopy which says that any two paths $f_0, f_1$ in $mathbbR^n$ are homotopic via the homotopy $$ f_t(s) = (1-t)f_0(s) + tf_1(s)$$

Am i right in imagining the given homotopy as something like this?

such that $F(s,t) = f_t(s) $ are simply the linesegments going from $f_0(s)$ towards $f_1(s)$ as the straight lines (which "connect" $f_0$ and $f_1$ for every $sin [0,1]$) as drawn in the picture?

Sorry if this question might be a trivial one, i just want to make sure i don't get things wrong.

Thanks for any kind of feedback!

algebraic-topology homotopy-theory path-connected

share|cite|improve this question

asked 2 hours ago

ZestZest

301213

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  $begingroup$
  It's correct. Furthermore, any point $s$ moves along its straight line at constant speed.
  $endgroup$
  – Lukas Kofler
  1 hour ago
  

  
  
  
  


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  $begingroup$
  isn't the point $t$ rather moving along its straight line? to me, $s$ is the parameter moving along the lines from $x_0$ to $x_1$ whereas $t$ moves along the straight linesegments between $f_0$ and $f_1$
  $endgroup$
  – Zest
  1 hour ago
  

  
  
  
  


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  1
  

  
  
  
  
  
  

  
  $begingroup$
  That's what I was trying to say, sorry -- a fixed point $f_0(s)$ moves at constant speed as $t$ varies.
  $endgroup$
  – Lukas Kofler
  1 hour ago
  

  
  
  
  

add a comment | 

1

$begingroup$

Today i learned about the linear homotopy which says that any two paths $f_0, f_1$ in $mathbbR^n$ are homotopic via the homotopy $$ f_t(s) = (1-t)f_0(s) + tf_1(s)$$

Am i right in imagining the given homotopy as something like this?

such that $F(s,t) = f_t(s) $ are simply the linesegments going from $f_0(s)$ towards $f_1(s)$ as the straight lines (which "connect" $f_0$ and $f_1$ for every $sin [0,1]$) as drawn in the picture?

Sorry if this question might be a trivial one, i just want to make sure i don't get things wrong.

Thanks for any kind of feedback!

algebraic-topology homotopy-theory path-connected

share|cite|improve this question

asked 2 hours ago

ZestZest

301213

$endgroup$

• 
  
  
  

  
  1
  

  
  
  
  
  
  

  
  $begingroup$
  It's correct. Furthermore, any point $s$ moves along its straight line at constant speed.
  $endgroup$
  – Lukas Kofler
  1 hour ago
  

  
  
  
  


• 
  
  
  

  
  

  
  
  
  
  
  

  
  $begingroup$
  isn't the point $t$ rather moving along its straight line? to me, $s$ is the parameter moving along the lines from $x_0$ to $x_1$ whereas $t$ moves along the straight linesegments between $f_0$ and $f_1$
  $endgroup$
  – Zest
  1 hour ago
  

  
  
  
  


• 
  
  
  

  
  1
  

  
  
  
  
  
  

  
  $begingroup$
  That's what I was trying to say, sorry -- a fixed point $f_0(s)$ moves at constant speed as $t$ varies.
  $endgroup$
  – Lukas Kofler
  1 hour ago
  

  
  
  
  

add a comment | 

$begingroup$

Today i learned about the linear homotopy which says that any two paths $f_0, f_1$ in $mathbbR^n$ are homotopic via the homotopy $$ f_t(s) = (1-t)f_0(s) + tf_1(s)$$

Am i right in imagining the given homotopy as something like this?

such that $F(s,t) = f_t(s) $ are simply the linesegments going from $f_0(s)$ towards $f_1(s)$ as the straight lines (which "connect" $f_0$ and $f_1$ for every $sin [0,1]$) as drawn in the picture?

Sorry if this question might be a trivial one, i just want to make sure i don't get things wrong.

Thanks for any kind of feedback!

algebraic-topology homotopy-theory path-connected

share|cite|improve this question

asked 2 hours ago

ZestZest

301213

$endgroup$

share|cite|improve this question

asked 2 hours ago

ZestZest

301213

share|cite|improve this question

asked 2 hours ago

ZestZest

301213

asked 2 hours ago

ZestZest

301213

asked 2 hours ago

ZestZest

301213

2 Answers
2

active

oldest

votes

2

$begingroup$

Yes. Perhaps to help you see why this is true, pick an arbitrary $s$ value $bars$ and call $a := f_0(bars)$ and $b := f_1(bars)$. Examining the homotopy,
$$
H_bars(t) := F(bars, t) = a(1-t) + bt
$$

we see that it is the parametric equation of a straight line connecting points $a$ and $b$ in $mathbbR^n$. If you draw this line for each $bars$ choice, you get your diagram. Perhaps write a bit of code to construct such a plot?

Furthermore, one may be interested in the "speed" at which $a$ "moves" to $b$. We find it to be a constant,
$$
dfracdH_barsdt = b - a
$$

share|cite|improve this answer

edited 1 hour ago

answered 1 hour ago

jnez71jnez71

2,495720

$endgroup$

• 
  
  
  

  
  

  
  
  
  
  
  

  
  $begingroup$
  this is very helpful @jnez71. Thanks a lot!
  $endgroup$
  – Zest
  1 hour ago
  

  
  
  
  


• 
  
  
  

  
  1
  

  
  
  
  
  
  

  
  $begingroup$
  No problem! I added a bit more to cover some of the comments about speed
  $endgroup$
  – jnez71
  1 hour ago
  

  
  
  
  

add a comment | 

1

$begingroup$

Yes, it is absolutely correct.

share|cite|improve this answer

answered 1 hour ago

community wiki

Paul Frost

$endgroup$

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  $begingroup$
  thank you very much @Paul. Just being curious, what does it mean that your answer is "community wiki"?
  $endgroup$
  – Zest
  1 hour ago
  

  
  
  
  


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  $begingroup$
  See math.stackexchange.com/help/privileges/edit-community-wiki. A community wiki can be edited by everybody. Frankly, my answer was only a feedback, and I guess you didn't expect more. But of course it doesn't deserve positive reputation.
  $endgroup$
  – Paul Frost
  1 hour ago
  

  
  
  
  


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  $begingroup$
  thanks Paul. In fact, your answer was all i was hoping for. Would you mind me accepting @jnez72's answer rather than yours even though both helped me?
  $endgroup$
  – Zest
  1 hour ago
  

  
  
  
  


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  1
  

  
  
  
  
  
  

  
  $begingroup$
  No problem - it is okay!
  $endgroup$
  – Paul Frost
  1 hour ago
  

  
  
  
  


• 
  
  
  

  
  

  
  
  
  
  
  

  
  $begingroup$
  By the way, in my opinion it is important to make it visible in the question queue that a question has been answered. If you click at "Unanswered" in the upper left corne of this page, you will read something like "248,877 questions with no upvoted or accepted answers ", the number of course growing. If you look at these questions, you will see that a great many are actually answered in comments. If that should happen to one of your questions, do not hesitate to write an answer and acknowledge it.
  $endgroup$
  – Paul Frost
  1 hour ago
  
  

  
  
  
  

 | 
show 1 more comment

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2

$begingroup$

Yes. Perhaps to help you see why this is true, pick an arbitrary $s$ value $bars$ and call $a := f_0(bars)$ and $b := f_1(bars)$. Examining the homotopy,
$$
H_bars(t) := F(bars, t) = a(1-t) + bt
$$

we see that it is the parametric equation of a straight line connecting points $a$ and $b$ in $mathbbR^n$. If you draw this line for each $bars$ choice, you get your diagram. Perhaps write a bit of code to construct such a plot?

Furthermore, one may be interested in the "speed" at which $a$ "moves" to $b$. We find it to be a constant,
$$
dfracdH_barsdt = b - a
$$

share|cite|improve this answer

edited 1 hour ago

answered 1 hour ago

jnez71jnez71

2,495720

$endgroup$

• 
  
  
  

  
  

  
  
  
  
  
  

  
  $begingroup$
  this is very helpful @jnez71. Thanks a lot!
  $endgroup$
  – Zest
  1 hour ago
  

  
  
  
  


• 
  
  
  

  
  1
  

  
  
  
  
  
  

  
  $begingroup$
  No problem! I added a bit more to cover some of the comments about speed
  $endgroup$
  – jnez71
  1 hour ago
  

  
  
  
  

add a comment | 

2

$begingroup$

Yes. Perhaps to help you see why this is true, pick an arbitrary $s$ value $bars$ and call $a := f_0(bars)$ and $b := f_1(bars)$. Examining the homotopy,
$$
H_bars(t) := F(bars, t) = a(1-t) + bt
$$

we see that it is the parametric equation of a straight line connecting points $a$ and $b$ in $mathbbR^n$. If you draw this line for each $bars$ choice, you get your diagram. Perhaps write a bit of code to construct such a plot?

Furthermore, one may be interested in the "speed" at which $a$ "moves" to $b$. We find it to be a constant,
$$
dfracdH_barsdt = b - a
$$

share|cite|improve this answer

edited 1 hour ago

answered 1 hour ago

jnez71jnez71

2,495720

$endgroup$

• 
  
  
  

  
  

  
  
  
  
  
  

  
  $begingroup$
  this is very helpful @jnez71. Thanks a lot!
  $endgroup$
  – Zest
  1 hour ago
  

  
  
  
  


• 
  
  
  

  
  1
  

  
  
  
  
  
  

  
  $begingroup$
  No problem! I added a bit more to cover some of the comments about speed
  $endgroup$
  – jnez71
  1 hour ago
  

  
  
  
  

add a comment | 

$begingroup$

Yes. Perhaps to help you see why this is true, pick an arbitrary $s$ value $bars$ and call $a := f_0(bars)$ and $b := f_1(bars)$. Examining the homotopy,
$$
H_bars(t) := F(bars, t) = a(1-t) + bt
$$

we see that it is the parametric equation of a straight line connecting points $a$ and $b$ in $mathbbR^n$. If you draw this line for each $bars$ choice, you get your diagram. Perhaps write a bit of code to construct such a plot?

Furthermore, one may be interested in the "speed" at which $a$ "moves" to $b$. We find it to be a constant,
$$
dfracdH_barsdt = b - a
$$

share|cite|improve this answer

edited 1 hour ago

answered 1 hour ago

jnez71jnez71

2,495720

$endgroup$

share|cite|improve this answer

edited 1 hour ago

answered 1 hour ago

jnez71jnez71

2,495720

answered 1 hour ago

jnez71jnez71

2,495720

answered 1 hour ago

jnez71jnez71

2,495720