First proof of Poincaré Lemma












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I know that a way of proving Poincare lemma is to use the homotopy invariance and contractibility of the Euclidean space. Is there is a way of doing it directly (without using the contractibility of $mathbb{R}^n$)?
What was the first proof of this statement ? I wish to know all the different ways of proving this lemma. Please provide references. Thanks !










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  • 2




    $begingroup$
    I know a proof which uses a linear operator $t$ on smooth forms s.t. $dt+td=id$: so, if $omega$ is closed, then $dtomega=omega$ and $theta:=tomega$ gives the solution (i.e. proves that $omega$ is exact). Would you like it in an answer?
    $endgroup$
    – Avitus
    Nov 10 '13 at 21:03








  • 1




    $begingroup$
    @Avitus May be you mean $dt+td=i$. I think it would definitely be helpful if you could outline this or give a reference.
    $endgroup$
    – user90041
    Nov 11 '13 at 2:06










  • $begingroup$
    @Avitus The original reason why I asked this question was that if I expand the given form as linear combination of wedge product of the coordinate 1-forms, I can see that Poincare lemma is a statement about existence of a solution to a set of partial differential equations. If there is another proof of this lemma using the theory of PDEs, I would like to learn that as well.
    $endgroup$
    – user90041
    Nov 11 '13 at 2:13






  • 2




    $begingroup$
    According to Dieudonné's book on the history of algebraic and differential topology, it appears in Volterra, Opere mathematiche vol. I pp. 407-422 for the first time, but "in a different language" (whatever that's ought to mean) and the next appearance is E. Cartan's book Leçons sur le Invariants Intégraux 1922. I don't know these books, but I expect that at least the latter is readable and can easily be turned into a rigorous proof in modern language.
    $endgroup$
    – Ben
    Nov 11 '13 at 22:52
















7












$begingroup$


I know that a way of proving Poincare lemma is to use the homotopy invariance and contractibility of the Euclidean space. Is there is a way of doing it directly (without using the contractibility of $mathbb{R}^n$)?
What was the first proof of this statement ? I wish to know all the different ways of proving this lemma. Please provide references. Thanks !










share|cite|improve this question









$endgroup$








  • 2




    $begingroup$
    I know a proof which uses a linear operator $t$ on smooth forms s.t. $dt+td=id$: so, if $omega$ is closed, then $dtomega=omega$ and $theta:=tomega$ gives the solution (i.e. proves that $omega$ is exact). Would you like it in an answer?
    $endgroup$
    – Avitus
    Nov 10 '13 at 21:03








  • 1




    $begingroup$
    @Avitus May be you mean $dt+td=i$. I think it would definitely be helpful if you could outline this or give a reference.
    $endgroup$
    – user90041
    Nov 11 '13 at 2:06










  • $begingroup$
    @Avitus The original reason why I asked this question was that if I expand the given form as linear combination of wedge product of the coordinate 1-forms, I can see that Poincare lemma is a statement about existence of a solution to a set of partial differential equations. If there is another proof of this lemma using the theory of PDEs, I would like to learn that as well.
    $endgroup$
    – user90041
    Nov 11 '13 at 2:13






  • 2




    $begingroup$
    According to Dieudonné's book on the history of algebraic and differential topology, it appears in Volterra, Opere mathematiche vol. I pp. 407-422 for the first time, but "in a different language" (whatever that's ought to mean) and the next appearance is E. Cartan's book Leçons sur le Invariants Intégraux 1922. I don't know these books, but I expect that at least the latter is readable and can easily be turned into a rigorous proof in modern language.
    $endgroup$
    – Ben
    Nov 11 '13 at 22:52














7












7








7


6



$begingroup$


I know that a way of proving Poincare lemma is to use the homotopy invariance and contractibility of the Euclidean space. Is there is a way of doing it directly (without using the contractibility of $mathbb{R}^n$)?
What was the first proof of this statement ? I wish to know all the different ways of proving this lemma. Please provide references. Thanks !










share|cite|improve this question









$endgroup$




I know that a way of proving Poincare lemma is to use the homotopy invariance and contractibility of the Euclidean space. Is there is a way of doing it directly (without using the contractibility of $mathbb{R}^n$)?
What was the first proof of this statement ? I wish to know all the different ways of proving this lemma. Please provide references. Thanks !







reference-request differential-geometry manifolds homology-cohomology






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share|cite|improve this question











share|cite|improve this question




share|cite|improve this question










asked Nov 7 '13 at 16:30









user90041user90041

1,7941235




1,7941235








  • 2




    $begingroup$
    I know a proof which uses a linear operator $t$ on smooth forms s.t. $dt+td=id$: so, if $omega$ is closed, then $dtomega=omega$ and $theta:=tomega$ gives the solution (i.e. proves that $omega$ is exact). Would you like it in an answer?
    $endgroup$
    – Avitus
    Nov 10 '13 at 21:03








  • 1




    $begingroup$
    @Avitus May be you mean $dt+td=i$. I think it would definitely be helpful if you could outline this or give a reference.
    $endgroup$
    – user90041
    Nov 11 '13 at 2:06










  • $begingroup$
    @Avitus The original reason why I asked this question was that if I expand the given form as linear combination of wedge product of the coordinate 1-forms, I can see that Poincare lemma is a statement about existence of a solution to a set of partial differential equations. If there is another proof of this lemma using the theory of PDEs, I would like to learn that as well.
    $endgroup$
    – user90041
    Nov 11 '13 at 2:13






  • 2




    $begingroup$
    According to Dieudonné's book on the history of algebraic and differential topology, it appears in Volterra, Opere mathematiche vol. I pp. 407-422 for the first time, but "in a different language" (whatever that's ought to mean) and the next appearance is E. Cartan's book Leçons sur le Invariants Intégraux 1922. I don't know these books, but I expect that at least the latter is readable and can easily be turned into a rigorous proof in modern language.
    $endgroup$
    – Ben
    Nov 11 '13 at 22:52














  • 2




    $begingroup$
    I know a proof which uses a linear operator $t$ on smooth forms s.t. $dt+td=id$: so, if $omega$ is closed, then $dtomega=omega$ and $theta:=tomega$ gives the solution (i.e. proves that $omega$ is exact). Would you like it in an answer?
    $endgroup$
    – Avitus
    Nov 10 '13 at 21:03








  • 1




    $begingroup$
    @Avitus May be you mean $dt+td=i$. I think it would definitely be helpful if you could outline this or give a reference.
    $endgroup$
    – user90041
    Nov 11 '13 at 2:06










  • $begingroup$
    @Avitus The original reason why I asked this question was that if I expand the given form as linear combination of wedge product of the coordinate 1-forms, I can see that Poincare lemma is a statement about existence of a solution to a set of partial differential equations. If there is another proof of this lemma using the theory of PDEs, I would like to learn that as well.
    $endgroup$
    – user90041
    Nov 11 '13 at 2:13






  • 2




    $begingroup$
    According to Dieudonné's book on the history of algebraic and differential topology, it appears in Volterra, Opere mathematiche vol. I pp. 407-422 for the first time, but "in a different language" (whatever that's ought to mean) and the next appearance is E. Cartan's book Leçons sur le Invariants Intégraux 1922. I don't know these books, but I expect that at least the latter is readable and can easily be turned into a rigorous proof in modern language.
    $endgroup$
    – Ben
    Nov 11 '13 at 22:52








2




2




$begingroup$
I know a proof which uses a linear operator $t$ on smooth forms s.t. $dt+td=id$: so, if $omega$ is closed, then $dtomega=omega$ and $theta:=tomega$ gives the solution (i.e. proves that $omega$ is exact). Would you like it in an answer?
$endgroup$
– Avitus
Nov 10 '13 at 21:03






$begingroup$
I know a proof which uses a linear operator $t$ on smooth forms s.t. $dt+td=id$: so, if $omega$ is closed, then $dtomega=omega$ and $theta:=tomega$ gives the solution (i.e. proves that $omega$ is exact). Would you like it in an answer?
$endgroup$
– Avitus
Nov 10 '13 at 21:03






1




1




$begingroup$
@Avitus May be you mean $dt+td=i$. I think it would definitely be helpful if you could outline this or give a reference.
$endgroup$
– user90041
Nov 11 '13 at 2:06




$begingroup$
@Avitus May be you mean $dt+td=i$. I think it would definitely be helpful if you could outline this or give a reference.
$endgroup$
– user90041
Nov 11 '13 at 2:06












$begingroup$
@Avitus The original reason why I asked this question was that if I expand the given form as linear combination of wedge product of the coordinate 1-forms, I can see that Poincare lemma is a statement about existence of a solution to a set of partial differential equations. If there is another proof of this lemma using the theory of PDEs, I would like to learn that as well.
$endgroup$
– user90041
Nov 11 '13 at 2:13




$begingroup$
@Avitus The original reason why I asked this question was that if I expand the given form as linear combination of wedge product of the coordinate 1-forms, I can see that Poincare lemma is a statement about existence of a solution to a set of partial differential equations. If there is another proof of this lemma using the theory of PDEs, I would like to learn that as well.
$endgroup$
– user90041
Nov 11 '13 at 2:13




2




2




$begingroup$
According to Dieudonné's book on the history of algebraic and differential topology, it appears in Volterra, Opere mathematiche vol. I pp. 407-422 for the first time, but "in a different language" (whatever that's ought to mean) and the next appearance is E. Cartan's book Leçons sur le Invariants Intégraux 1922. I don't know these books, but I expect that at least the latter is readable and can easily be turned into a rigorous proof in modern language.
$endgroup$
– Ben
Nov 11 '13 at 22:52




$begingroup$
According to Dieudonné's book on the history of algebraic and differential topology, it appears in Volterra, Opere mathematiche vol. I pp. 407-422 for the first time, but "in a different language" (whatever that's ought to mean) and the next appearance is E. Cartan's book Leçons sur le Invariants Intégraux 1922. I don't know these books, but I expect that at least the latter is readable and can easily be turned into a rigorous proof in modern language.
$endgroup$
– Ben
Nov 11 '13 at 22:52










3 Answers
3






active

oldest

votes


















11












$begingroup$

We want to show that on $mathbb R^n$, all closed forms of degree $pgeq 1$ are exact. To do so we construct a linear operator



$$alpha:Omega^p(mathbb R^n) rightarrow Omega^{p-1}(mathbb R^n) $$



s.t. $$dalpha+alpha d=1.$$



Let $omega$ be a closed $p$-form. Then, for any $xinmathbb R^n$ we define



$$(alpha omega)(x):=int_0^1 t^{p-1}i_xomega(tx)dt, $$



where $i_x$ is the interior product operator.
Then (by Cartan's magic formula)



$$begin{aligned}
((dalpha + alpha d)omega)(x) & = int_0^1 t^pmathcal L_xomega(tx)dt \
& =(text{use chain rule and pull-back definition of Lie derivative}) \
& = int_0^1frac{d}{dt}(t^pomega(tx))dt=omega(x) end{aligned} $$



and we are done. The diff. form $theta:=t(omega)$ is the exact form we need.



edit: For the chain rule step one wants to consider the pull-back $M_t^* omega$ where $M_t : mathbb R^n to mathbb R^n$ is scalar multiplication by $t$. i.e. $t^p omega(tx) = M_t^* omega (x)$.






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  • $begingroup$
    I am having trouble following your last chain of equalities. I do not quite see how you "use chain rule and pull-back definition of Lie derivative," nor how you get $t^p$ instead of $t^{p-1}$ in the first equality.
    $endgroup$
    – Lucky
    Feb 4 '18 at 17:41



















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We describe a linear functional $alpha : Omega^p mathbb R^n to Omega^{p-1} mathbb R^n$. The space alternating $p$-linear functions on $mathbb R^n$ has dimension $n choose p$, and you can write the basis as $dx_{i_1} wedge dx_{i_2} wedge cdots wedge dx_{i_p}$ where $1 leq i_1 < i_2 < cdots < i_p leq n$.
If $I = (i_1, i_2, cdots, i_p)$ is such a multi-index let $dx_I = dx_{i_1} wedge dx_{i_2} wedge cdots wedge dx_{i_p}$. Let $I_1$ be the collection of multi-indices with $i_1=1$ and let $I_2$ be the collection of multi-indices with $i_1 > 1$.



Given a $p$-form $f dx_I$ with $f: mathbb R^n to mathbb R$ we define $alpha$ linearly, by $alpha (f dx_I) = 0$ if $I in I_2$. $alpha (fdx_I) = left(int_0^{x_1} f dx_1right) dx_{i_2} wedge cdots wedge dx_{i_p}$ if $I in I_1$. You can think of $alpha$ is a type of `total contraction' of the form in the coordinate $x_1$-direction.



It's fairly direct to check that
$$ d(alpha(omega)) + alpha(d omega) = omega - pi^*(i^* omega)$$
for every $p$-form $omega$. Here $i : mathbb R^{n-1} to mathbb R^n$ is
the inclusion $i(x_2,cdots,x_n) = (0,x_2,cdots,x_n)$ and $pi : mathbb R^n to mathbb R^{n-1}$ is projection $pi(x_1,x_2,cdots,x_n) = (x_2,cdots,x_n)$.



So this is a less technically-sophisticated argument than Avitus's but it might be a little simpler to follow conceptually. In the end you reduce showing a closed $p$-form on $mathbb R^n$ is exact to solving the problem for one smaller $n$. Dimension $p=n$ is the base case, where the above formula starts the induction.






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  • $begingroup$
    This looks very similar to Bott&Tu's proof!
    $endgroup$
    – Bombyx mori
    May 22 '16 at 5:13



















1












$begingroup$

The above calculation in more detail. Define $h_k:Omega^p(mathbb{R}^n)rightarrow Omega^{p-1}(mathbb{R}^n)$ by,
begin{eqnarray}
h_k(omega)(x)=int_0^1t^{p-1}i_Xomega(tx)dt
end{eqnarray}

where $X=sum_ix^ipartial_i$, this generates the one parameter group of diffeomorphisms $Phi_s:x^imapsto e^sx^i=:y^i$. To see this note that $X^i(t)=frac{dx^i(t)}{dt}=x^i(t)$, hence we solve this ODE to find the stated solution. Now,
begin{eqnarray}
((h_{k+1}circ d_k+d_{k-1}circ h_k)omega)(x)&=&int_0^1t^{p-1}Big(d(i_Xomega)+i_X(domega)Big)(tx)dt\
&=&int_0^1t^{p-1}(mathcal{L}_Xomega)(tx)dt
end{eqnarray}

Then from the definition of the Lie derivative in terms of the pullback,
begin{eqnarray}
(mathcal{L}_Xomega)_x=Big(frac{d}{ds}Big|_{s=0}(Phi_s)^*omegaBig)_x
end{eqnarray}

Now we can compute the pullback explicitly,
begin{eqnarray}
[((Phi_s)^*omega)_x]_{k_1...k_p}=frac{partial y^{i_1}}{partial x^{k_1}}...frac{partial y^{i_p}}{partial x^{k_p}}[omega_{Phi_s(x)}]_{i_1...i_p}=e^{ps}[omega_{e^sx}]_{k_1...k_p}
end{eqnarray}

Due to linearity we can restrict to the simple case where $omega(x)=f(x)dx^I$. Therefore,
begin{eqnarray}
(mathcal{L}_Xomega)_x=Big(frac{d}{ds}Big|_{s=0}(Phi_s)^*omegaBig)_x=pomega_x+x^ifrac{partial f}{partial x^i}(x)dx^I
end{eqnarray}

Therefore,
begin{eqnarray}
t^{p-1}(mathcal{L}_Xomega)_{tx}&=&t^{p-1}Big(pomega_{tx}+tx^ifrac{partial f}{partial x^i}(tx)dx^IBig)\
&=&frac{d}{dt}Big(t^pf(tx)dx^IBig)=frac{d}{dt}(t^pomega(tx))
end{eqnarray}

Hence,
begin{eqnarray}
((h_{k+1}circ d_k+d_{k-1}circ h_k)omega)(x)=t^pomega(tx)|_{t=0}^1=omega(x)
end{eqnarray}

Therefore since $omega$ is closed, $domega=0$ so $mathcal{L}_Xomega=d(i_Xomega)$ and hence $d_{k-1}h_komega=omega$, i.e. $omega$ is exact.






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    3 Answers
    3






    active

    oldest

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    3 Answers
    3






    active

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    active

    oldest

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    11












    $begingroup$

    We want to show that on $mathbb R^n$, all closed forms of degree $pgeq 1$ are exact. To do so we construct a linear operator



    $$alpha:Omega^p(mathbb R^n) rightarrow Omega^{p-1}(mathbb R^n) $$



    s.t. $$dalpha+alpha d=1.$$



    Let $omega$ be a closed $p$-form. Then, for any $xinmathbb R^n$ we define



    $$(alpha omega)(x):=int_0^1 t^{p-1}i_xomega(tx)dt, $$



    where $i_x$ is the interior product operator.
    Then (by Cartan's magic formula)



    $$begin{aligned}
    ((dalpha + alpha d)omega)(x) & = int_0^1 t^pmathcal L_xomega(tx)dt \
    & =(text{use chain rule and pull-back definition of Lie derivative}) \
    & = int_0^1frac{d}{dt}(t^pomega(tx))dt=omega(x) end{aligned} $$



    and we are done. The diff. form $theta:=t(omega)$ is the exact form we need.



    edit: For the chain rule step one wants to consider the pull-back $M_t^* omega$ where $M_t : mathbb R^n to mathbb R^n$ is scalar multiplication by $t$. i.e. $t^p omega(tx) = M_t^* omega (x)$.






    share|cite|improve this answer











    $endgroup$













    • $begingroup$
      I am having trouble following your last chain of equalities. I do not quite see how you "use chain rule and pull-back definition of Lie derivative," nor how you get $t^p$ instead of $t^{p-1}$ in the first equality.
      $endgroup$
      – Lucky
      Feb 4 '18 at 17:41
















    11












    $begingroup$

    We want to show that on $mathbb R^n$, all closed forms of degree $pgeq 1$ are exact. To do so we construct a linear operator



    $$alpha:Omega^p(mathbb R^n) rightarrow Omega^{p-1}(mathbb R^n) $$



    s.t. $$dalpha+alpha d=1.$$



    Let $omega$ be a closed $p$-form. Then, for any $xinmathbb R^n$ we define



    $$(alpha omega)(x):=int_0^1 t^{p-1}i_xomega(tx)dt, $$



    where $i_x$ is the interior product operator.
    Then (by Cartan's magic formula)



    $$begin{aligned}
    ((dalpha + alpha d)omega)(x) & = int_0^1 t^pmathcal L_xomega(tx)dt \
    & =(text{use chain rule and pull-back definition of Lie derivative}) \
    & = int_0^1frac{d}{dt}(t^pomega(tx))dt=omega(x) end{aligned} $$



    and we are done. The diff. form $theta:=t(omega)$ is the exact form we need.



    edit: For the chain rule step one wants to consider the pull-back $M_t^* omega$ where $M_t : mathbb R^n to mathbb R^n$ is scalar multiplication by $t$. i.e. $t^p omega(tx) = M_t^* omega (x)$.






    share|cite|improve this answer











    $endgroup$













    • $begingroup$
      I am having trouble following your last chain of equalities. I do not quite see how you "use chain rule and pull-back definition of Lie derivative," nor how you get $t^p$ instead of $t^{p-1}$ in the first equality.
      $endgroup$
      – Lucky
      Feb 4 '18 at 17:41














    11












    11








    11





    $begingroup$

    We want to show that on $mathbb R^n$, all closed forms of degree $pgeq 1$ are exact. To do so we construct a linear operator



    $$alpha:Omega^p(mathbb R^n) rightarrow Omega^{p-1}(mathbb R^n) $$



    s.t. $$dalpha+alpha d=1.$$



    Let $omega$ be a closed $p$-form. Then, for any $xinmathbb R^n$ we define



    $$(alpha omega)(x):=int_0^1 t^{p-1}i_xomega(tx)dt, $$



    where $i_x$ is the interior product operator.
    Then (by Cartan's magic formula)



    $$begin{aligned}
    ((dalpha + alpha d)omega)(x) & = int_0^1 t^pmathcal L_xomega(tx)dt \
    & =(text{use chain rule and pull-back definition of Lie derivative}) \
    & = int_0^1frac{d}{dt}(t^pomega(tx))dt=omega(x) end{aligned} $$



    and we are done. The diff. form $theta:=t(omega)$ is the exact form we need.



    edit: For the chain rule step one wants to consider the pull-back $M_t^* omega$ where $M_t : mathbb R^n to mathbb R^n$ is scalar multiplication by $t$. i.e. $t^p omega(tx) = M_t^* omega (x)$.






    share|cite|improve this answer











    $endgroup$



    We want to show that on $mathbb R^n$, all closed forms of degree $pgeq 1$ are exact. To do so we construct a linear operator



    $$alpha:Omega^p(mathbb R^n) rightarrow Omega^{p-1}(mathbb R^n) $$



    s.t. $$dalpha+alpha d=1.$$



    Let $omega$ be a closed $p$-form. Then, for any $xinmathbb R^n$ we define



    $$(alpha omega)(x):=int_0^1 t^{p-1}i_xomega(tx)dt, $$



    where $i_x$ is the interior product operator.
    Then (by Cartan's magic formula)



    $$begin{aligned}
    ((dalpha + alpha d)omega)(x) & = int_0^1 t^pmathcal L_xomega(tx)dt \
    & =(text{use chain rule and pull-back definition of Lie derivative}) \
    & = int_0^1frac{d}{dt}(t^pomega(tx))dt=omega(x) end{aligned} $$



    and we are done. The diff. form $theta:=t(omega)$ is the exact form we need.



    edit: For the chain rule step one wants to consider the pull-back $M_t^* omega$ where $M_t : mathbb R^n to mathbb R^n$ is scalar multiplication by $t$. i.e. $t^p omega(tx) = M_t^* omega (x)$.







    share|cite|improve this answer














    share|cite|improve this answer



    share|cite|improve this answer








    edited Mar 4 '15 at 6:02









    Ryan Budney

    19.9k35597




    19.9k35597










    answered Nov 11 '13 at 21:28









    AvitusAvitus

    11.7k11841




    11.7k11841












    • $begingroup$
      I am having trouble following your last chain of equalities. I do not quite see how you "use chain rule and pull-back definition of Lie derivative," nor how you get $t^p$ instead of $t^{p-1}$ in the first equality.
      $endgroup$
      – Lucky
      Feb 4 '18 at 17:41


















    • $begingroup$
      I am having trouble following your last chain of equalities. I do not quite see how you "use chain rule and pull-back definition of Lie derivative," nor how you get $t^p$ instead of $t^{p-1}$ in the first equality.
      $endgroup$
      – Lucky
      Feb 4 '18 at 17:41
















    $begingroup$
    I am having trouble following your last chain of equalities. I do not quite see how you "use chain rule and pull-back definition of Lie derivative," nor how you get $t^p$ instead of $t^{p-1}$ in the first equality.
    $endgroup$
    – Lucky
    Feb 4 '18 at 17:41




    $begingroup$
    I am having trouble following your last chain of equalities. I do not quite see how you "use chain rule and pull-back definition of Lie derivative," nor how you get $t^p$ instead of $t^{p-1}$ in the first equality.
    $endgroup$
    – Lucky
    Feb 4 '18 at 17:41











    3












    $begingroup$

    We describe a linear functional $alpha : Omega^p mathbb R^n to Omega^{p-1} mathbb R^n$. The space alternating $p$-linear functions on $mathbb R^n$ has dimension $n choose p$, and you can write the basis as $dx_{i_1} wedge dx_{i_2} wedge cdots wedge dx_{i_p}$ where $1 leq i_1 < i_2 < cdots < i_p leq n$.
    If $I = (i_1, i_2, cdots, i_p)$ is such a multi-index let $dx_I = dx_{i_1} wedge dx_{i_2} wedge cdots wedge dx_{i_p}$. Let $I_1$ be the collection of multi-indices with $i_1=1$ and let $I_2$ be the collection of multi-indices with $i_1 > 1$.



    Given a $p$-form $f dx_I$ with $f: mathbb R^n to mathbb R$ we define $alpha$ linearly, by $alpha (f dx_I) = 0$ if $I in I_2$. $alpha (fdx_I) = left(int_0^{x_1} f dx_1right) dx_{i_2} wedge cdots wedge dx_{i_p}$ if $I in I_1$. You can think of $alpha$ is a type of `total contraction' of the form in the coordinate $x_1$-direction.



    It's fairly direct to check that
    $$ d(alpha(omega)) + alpha(d omega) = omega - pi^*(i^* omega)$$
    for every $p$-form $omega$. Here $i : mathbb R^{n-1} to mathbb R^n$ is
    the inclusion $i(x_2,cdots,x_n) = (0,x_2,cdots,x_n)$ and $pi : mathbb R^n to mathbb R^{n-1}$ is projection $pi(x_1,x_2,cdots,x_n) = (x_2,cdots,x_n)$.



    So this is a less technically-sophisticated argument than Avitus's but it might be a little simpler to follow conceptually. In the end you reduce showing a closed $p$-form on $mathbb R^n$ is exact to solving the problem for one smaller $n$. Dimension $p=n$ is the base case, where the above formula starts the induction.






    share|cite|improve this answer









    $endgroup$













    • $begingroup$
      This looks very similar to Bott&Tu's proof!
      $endgroup$
      – Bombyx mori
      May 22 '16 at 5:13
















    3












    $begingroup$

    We describe a linear functional $alpha : Omega^p mathbb R^n to Omega^{p-1} mathbb R^n$. The space alternating $p$-linear functions on $mathbb R^n$ has dimension $n choose p$, and you can write the basis as $dx_{i_1} wedge dx_{i_2} wedge cdots wedge dx_{i_p}$ where $1 leq i_1 < i_2 < cdots < i_p leq n$.
    If $I = (i_1, i_2, cdots, i_p)$ is such a multi-index let $dx_I = dx_{i_1} wedge dx_{i_2} wedge cdots wedge dx_{i_p}$. Let $I_1$ be the collection of multi-indices with $i_1=1$ and let $I_2$ be the collection of multi-indices with $i_1 > 1$.



    Given a $p$-form $f dx_I$ with $f: mathbb R^n to mathbb R$ we define $alpha$ linearly, by $alpha (f dx_I) = 0$ if $I in I_2$. $alpha (fdx_I) = left(int_0^{x_1} f dx_1right) dx_{i_2} wedge cdots wedge dx_{i_p}$ if $I in I_1$. You can think of $alpha$ is a type of `total contraction' of the form in the coordinate $x_1$-direction.



    It's fairly direct to check that
    $$ d(alpha(omega)) + alpha(d omega) = omega - pi^*(i^* omega)$$
    for every $p$-form $omega$. Here $i : mathbb R^{n-1} to mathbb R^n$ is
    the inclusion $i(x_2,cdots,x_n) = (0,x_2,cdots,x_n)$ and $pi : mathbb R^n to mathbb R^{n-1}$ is projection $pi(x_1,x_2,cdots,x_n) = (x_2,cdots,x_n)$.



    So this is a less technically-sophisticated argument than Avitus's but it might be a little simpler to follow conceptually. In the end you reduce showing a closed $p$-form on $mathbb R^n$ is exact to solving the problem for one smaller $n$. Dimension $p=n$ is the base case, where the above formula starts the induction.






    share|cite|improve this answer









    $endgroup$













    • $begingroup$
      This looks very similar to Bott&Tu's proof!
      $endgroup$
      – Bombyx mori
      May 22 '16 at 5:13














    3












    3








    3





    $begingroup$

    We describe a linear functional $alpha : Omega^p mathbb R^n to Omega^{p-1} mathbb R^n$. The space alternating $p$-linear functions on $mathbb R^n$ has dimension $n choose p$, and you can write the basis as $dx_{i_1} wedge dx_{i_2} wedge cdots wedge dx_{i_p}$ where $1 leq i_1 < i_2 < cdots < i_p leq n$.
    If $I = (i_1, i_2, cdots, i_p)$ is such a multi-index let $dx_I = dx_{i_1} wedge dx_{i_2} wedge cdots wedge dx_{i_p}$. Let $I_1$ be the collection of multi-indices with $i_1=1$ and let $I_2$ be the collection of multi-indices with $i_1 > 1$.



    Given a $p$-form $f dx_I$ with $f: mathbb R^n to mathbb R$ we define $alpha$ linearly, by $alpha (f dx_I) = 0$ if $I in I_2$. $alpha (fdx_I) = left(int_0^{x_1} f dx_1right) dx_{i_2} wedge cdots wedge dx_{i_p}$ if $I in I_1$. You can think of $alpha$ is a type of `total contraction' of the form in the coordinate $x_1$-direction.



    It's fairly direct to check that
    $$ d(alpha(omega)) + alpha(d omega) = omega - pi^*(i^* omega)$$
    for every $p$-form $omega$. Here $i : mathbb R^{n-1} to mathbb R^n$ is
    the inclusion $i(x_2,cdots,x_n) = (0,x_2,cdots,x_n)$ and $pi : mathbb R^n to mathbb R^{n-1}$ is projection $pi(x_1,x_2,cdots,x_n) = (x_2,cdots,x_n)$.



    So this is a less technically-sophisticated argument than Avitus's but it might be a little simpler to follow conceptually. In the end you reduce showing a closed $p$-form on $mathbb R^n$ is exact to solving the problem for one smaller $n$. Dimension $p=n$ is the base case, where the above formula starts the induction.






    share|cite|improve this answer









    $endgroup$



    We describe a linear functional $alpha : Omega^p mathbb R^n to Omega^{p-1} mathbb R^n$. The space alternating $p$-linear functions on $mathbb R^n$ has dimension $n choose p$, and you can write the basis as $dx_{i_1} wedge dx_{i_2} wedge cdots wedge dx_{i_p}$ where $1 leq i_1 < i_2 < cdots < i_p leq n$.
    If $I = (i_1, i_2, cdots, i_p)$ is such a multi-index let $dx_I = dx_{i_1} wedge dx_{i_2} wedge cdots wedge dx_{i_p}$. Let $I_1$ be the collection of multi-indices with $i_1=1$ and let $I_2$ be the collection of multi-indices with $i_1 > 1$.



    Given a $p$-form $f dx_I$ with $f: mathbb R^n to mathbb R$ we define $alpha$ linearly, by $alpha (f dx_I) = 0$ if $I in I_2$. $alpha (fdx_I) = left(int_0^{x_1} f dx_1right) dx_{i_2} wedge cdots wedge dx_{i_p}$ if $I in I_1$. You can think of $alpha$ is a type of `total contraction' of the form in the coordinate $x_1$-direction.



    It's fairly direct to check that
    $$ d(alpha(omega)) + alpha(d omega) = omega - pi^*(i^* omega)$$
    for every $p$-form $omega$. Here $i : mathbb R^{n-1} to mathbb R^n$ is
    the inclusion $i(x_2,cdots,x_n) = (0,x_2,cdots,x_n)$ and $pi : mathbb R^n to mathbb R^{n-1}$ is projection $pi(x_1,x_2,cdots,x_n) = (x_2,cdots,x_n)$.



    So this is a less technically-sophisticated argument than Avitus's but it might be a little simpler to follow conceptually. In the end you reduce showing a closed $p$-form on $mathbb R^n$ is exact to solving the problem for one smaller $n$. Dimension $p=n$ is the base case, where the above formula starts the induction.







    share|cite|improve this answer












    share|cite|improve this answer



    share|cite|improve this answer










    answered Mar 25 '15 at 7:46









    Ryan BudneyRyan Budney

    19.9k35597




    19.9k35597












    • $begingroup$
      This looks very similar to Bott&Tu's proof!
      $endgroup$
      – Bombyx mori
      May 22 '16 at 5:13


















    • $begingroup$
      This looks very similar to Bott&Tu's proof!
      $endgroup$
      – Bombyx mori
      May 22 '16 at 5:13
















    $begingroup$
    This looks very similar to Bott&Tu's proof!
    $endgroup$
    – Bombyx mori
    May 22 '16 at 5:13




    $begingroup$
    This looks very similar to Bott&Tu's proof!
    $endgroup$
    – Bombyx mori
    May 22 '16 at 5:13











    1












    $begingroup$

    The above calculation in more detail. Define $h_k:Omega^p(mathbb{R}^n)rightarrow Omega^{p-1}(mathbb{R}^n)$ by,
    begin{eqnarray}
    h_k(omega)(x)=int_0^1t^{p-1}i_Xomega(tx)dt
    end{eqnarray}

    where $X=sum_ix^ipartial_i$, this generates the one parameter group of diffeomorphisms $Phi_s:x^imapsto e^sx^i=:y^i$. To see this note that $X^i(t)=frac{dx^i(t)}{dt}=x^i(t)$, hence we solve this ODE to find the stated solution. Now,
    begin{eqnarray}
    ((h_{k+1}circ d_k+d_{k-1}circ h_k)omega)(x)&=&int_0^1t^{p-1}Big(d(i_Xomega)+i_X(domega)Big)(tx)dt\
    &=&int_0^1t^{p-1}(mathcal{L}_Xomega)(tx)dt
    end{eqnarray}

    Then from the definition of the Lie derivative in terms of the pullback,
    begin{eqnarray}
    (mathcal{L}_Xomega)_x=Big(frac{d}{ds}Big|_{s=0}(Phi_s)^*omegaBig)_x
    end{eqnarray}

    Now we can compute the pullback explicitly,
    begin{eqnarray}
    [((Phi_s)^*omega)_x]_{k_1...k_p}=frac{partial y^{i_1}}{partial x^{k_1}}...frac{partial y^{i_p}}{partial x^{k_p}}[omega_{Phi_s(x)}]_{i_1...i_p}=e^{ps}[omega_{e^sx}]_{k_1...k_p}
    end{eqnarray}

    Due to linearity we can restrict to the simple case where $omega(x)=f(x)dx^I$. Therefore,
    begin{eqnarray}
    (mathcal{L}_Xomega)_x=Big(frac{d}{ds}Big|_{s=0}(Phi_s)^*omegaBig)_x=pomega_x+x^ifrac{partial f}{partial x^i}(x)dx^I
    end{eqnarray}

    Therefore,
    begin{eqnarray}
    t^{p-1}(mathcal{L}_Xomega)_{tx}&=&t^{p-1}Big(pomega_{tx}+tx^ifrac{partial f}{partial x^i}(tx)dx^IBig)\
    &=&frac{d}{dt}Big(t^pf(tx)dx^IBig)=frac{d}{dt}(t^pomega(tx))
    end{eqnarray}

    Hence,
    begin{eqnarray}
    ((h_{k+1}circ d_k+d_{k-1}circ h_k)omega)(x)=t^pomega(tx)|_{t=0}^1=omega(x)
    end{eqnarray}

    Therefore since $omega$ is closed, $domega=0$ so $mathcal{L}_Xomega=d(i_Xomega)$ and hence $d_{k-1}h_komega=omega$, i.e. $omega$ is exact.






    share|cite|improve this answer











    $endgroup$


















      1












      $begingroup$

      The above calculation in more detail. Define $h_k:Omega^p(mathbb{R}^n)rightarrow Omega^{p-1}(mathbb{R}^n)$ by,
      begin{eqnarray}
      h_k(omega)(x)=int_0^1t^{p-1}i_Xomega(tx)dt
      end{eqnarray}

      where $X=sum_ix^ipartial_i$, this generates the one parameter group of diffeomorphisms $Phi_s:x^imapsto e^sx^i=:y^i$. To see this note that $X^i(t)=frac{dx^i(t)}{dt}=x^i(t)$, hence we solve this ODE to find the stated solution. Now,
      begin{eqnarray}
      ((h_{k+1}circ d_k+d_{k-1}circ h_k)omega)(x)&=&int_0^1t^{p-1}Big(d(i_Xomega)+i_X(domega)Big)(tx)dt\
      &=&int_0^1t^{p-1}(mathcal{L}_Xomega)(tx)dt
      end{eqnarray}

      Then from the definition of the Lie derivative in terms of the pullback,
      begin{eqnarray}
      (mathcal{L}_Xomega)_x=Big(frac{d}{ds}Big|_{s=0}(Phi_s)^*omegaBig)_x
      end{eqnarray}

      Now we can compute the pullback explicitly,
      begin{eqnarray}
      [((Phi_s)^*omega)_x]_{k_1...k_p}=frac{partial y^{i_1}}{partial x^{k_1}}...frac{partial y^{i_p}}{partial x^{k_p}}[omega_{Phi_s(x)}]_{i_1...i_p}=e^{ps}[omega_{e^sx}]_{k_1...k_p}
      end{eqnarray}

      Due to linearity we can restrict to the simple case where $omega(x)=f(x)dx^I$. Therefore,
      begin{eqnarray}
      (mathcal{L}_Xomega)_x=Big(frac{d}{ds}Big|_{s=0}(Phi_s)^*omegaBig)_x=pomega_x+x^ifrac{partial f}{partial x^i}(x)dx^I
      end{eqnarray}

      Therefore,
      begin{eqnarray}
      t^{p-1}(mathcal{L}_Xomega)_{tx}&=&t^{p-1}Big(pomega_{tx}+tx^ifrac{partial f}{partial x^i}(tx)dx^IBig)\
      &=&frac{d}{dt}Big(t^pf(tx)dx^IBig)=frac{d}{dt}(t^pomega(tx))
      end{eqnarray}

      Hence,
      begin{eqnarray}
      ((h_{k+1}circ d_k+d_{k-1}circ h_k)omega)(x)=t^pomega(tx)|_{t=0}^1=omega(x)
      end{eqnarray}

      Therefore since $omega$ is closed, $domega=0$ so $mathcal{L}_Xomega=d(i_Xomega)$ and hence $d_{k-1}h_komega=omega$, i.e. $omega$ is exact.






      share|cite|improve this answer











      $endgroup$
















        1












        1








        1





        $begingroup$

        The above calculation in more detail. Define $h_k:Omega^p(mathbb{R}^n)rightarrow Omega^{p-1}(mathbb{R}^n)$ by,
        begin{eqnarray}
        h_k(omega)(x)=int_0^1t^{p-1}i_Xomega(tx)dt
        end{eqnarray}

        where $X=sum_ix^ipartial_i$, this generates the one parameter group of diffeomorphisms $Phi_s:x^imapsto e^sx^i=:y^i$. To see this note that $X^i(t)=frac{dx^i(t)}{dt}=x^i(t)$, hence we solve this ODE to find the stated solution. Now,
        begin{eqnarray}
        ((h_{k+1}circ d_k+d_{k-1}circ h_k)omega)(x)&=&int_0^1t^{p-1}Big(d(i_Xomega)+i_X(domega)Big)(tx)dt\
        &=&int_0^1t^{p-1}(mathcal{L}_Xomega)(tx)dt
        end{eqnarray}

        Then from the definition of the Lie derivative in terms of the pullback,
        begin{eqnarray}
        (mathcal{L}_Xomega)_x=Big(frac{d}{ds}Big|_{s=0}(Phi_s)^*omegaBig)_x
        end{eqnarray}

        Now we can compute the pullback explicitly,
        begin{eqnarray}
        [((Phi_s)^*omega)_x]_{k_1...k_p}=frac{partial y^{i_1}}{partial x^{k_1}}...frac{partial y^{i_p}}{partial x^{k_p}}[omega_{Phi_s(x)}]_{i_1...i_p}=e^{ps}[omega_{e^sx}]_{k_1...k_p}
        end{eqnarray}

        Due to linearity we can restrict to the simple case where $omega(x)=f(x)dx^I$. Therefore,
        begin{eqnarray}
        (mathcal{L}_Xomega)_x=Big(frac{d}{ds}Big|_{s=0}(Phi_s)^*omegaBig)_x=pomega_x+x^ifrac{partial f}{partial x^i}(x)dx^I
        end{eqnarray}

        Therefore,
        begin{eqnarray}
        t^{p-1}(mathcal{L}_Xomega)_{tx}&=&t^{p-1}Big(pomega_{tx}+tx^ifrac{partial f}{partial x^i}(tx)dx^IBig)\
        &=&frac{d}{dt}Big(t^pf(tx)dx^IBig)=frac{d}{dt}(t^pomega(tx))
        end{eqnarray}

        Hence,
        begin{eqnarray}
        ((h_{k+1}circ d_k+d_{k-1}circ h_k)omega)(x)=t^pomega(tx)|_{t=0}^1=omega(x)
        end{eqnarray}

        Therefore since $omega$ is closed, $domega=0$ so $mathcal{L}_Xomega=d(i_Xomega)$ and hence $d_{k-1}h_komega=omega$, i.e. $omega$ is exact.






        share|cite|improve this answer











        $endgroup$



        The above calculation in more detail. Define $h_k:Omega^p(mathbb{R}^n)rightarrow Omega^{p-1}(mathbb{R}^n)$ by,
        begin{eqnarray}
        h_k(omega)(x)=int_0^1t^{p-1}i_Xomega(tx)dt
        end{eqnarray}

        where $X=sum_ix^ipartial_i$, this generates the one parameter group of diffeomorphisms $Phi_s:x^imapsto e^sx^i=:y^i$. To see this note that $X^i(t)=frac{dx^i(t)}{dt}=x^i(t)$, hence we solve this ODE to find the stated solution. Now,
        begin{eqnarray}
        ((h_{k+1}circ d_k+d_{k-1}circ h_k)omega)(x)&=&int_0^1t^{p-1}Big(d(i_Xomega)+i_X(domega)Big)(tx)dt\
        &=&int_0^1t^{p-1}(mathcal{L}_Xomega)(tx)dt
        end{eqnarray}

        Then from the definition of the Lie derivative in terms of the pullback,
        begin{eqnarray}
        (mathcal{L}_Xomega)_x=Big(frac{d}{ds}Big|_{s=0}(Phi_s)^*omegaBig)_x
        end{eqnarray}

        Now we can compute the pullback explicitly,
        begin{eqnarray}
        [((Phi_s)^*omega)_x]_{k_1...k_p}=frac{partial y^{i_1}}{partial x^{k_1}}...frac{partial y^{i_p}}{partial x^{k_p}}[omega_{Phi_s(x)}]_{i_1...i_p}=e^{ps}[omega_{e^sx}]_{k_1...k_p}
        end{eqnarray}

        Due to linearity we can restrict to the simple case where $omega(x)=f(x)dx^I$. Therefore,
        begin{eqnarray}
        (mathcal{L}_Xomega)_x=Big(frac{d}{ds}Big|_{s=0}(Phi_s)^*omegaBig)_x=pomega_x+x^ifrac{partial f}{partial x^i}(x)dx^I
        end{eqnarray}

        Therefore,
        begin{eqnarray}
        t^{p-1}(mathcal{L}_Xomega)_{tx}&=&t^{p-1}Big(pomega_{tx}+tx^ifrac{partial f}{partial x^i}(tx)dx^IBig)\
        &=&frac{d}{dt}Big(t^pf(tx)dx^IBig)=frac{d}{dt}(t^pomega(tx))
        end{eqnarray}

        Hence,
        begin{eqnarray}
        ((h_{k+1}circ d_k+d_{k-1}circ h_k)omega)(x)=t^pomega(tx)|_{t=0}^1=omega(x)
        end{eqnarray}

        Therefore since $omega$ is closed, $domega=0$ so $mathcal{L}_Xomega=d(i_Xomega)$ and hence $d_{k-1}h_komega=omega$, i.e. $omega$ is exact.







        share|cite|improve this answer














        share|cite|improve this answer



        share|cite|improve this answer








        edited Dec 15 '18 at 14:16

























        answered Dec 15 '18 at 3:49









        Sam CollieSam Collie

        507




        507






























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