Number of paths in high-girth graphs












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In a graph $G$ with girth $g$, say $g = Omega(log n)$, can we deduce an upper bound on the number of paths between two nodes $u$ and $v$?










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$endgroup$












  • $begingroup$
    This is a great question. If you don't care about regularity, take any bounded-degree graph with lots of paths between two vertices and replace each edge with a path of $log n$ vertices, then the girth will be large. This isn't very interesting, but I do suspect that the girth bound may not limit the number of paths
    $endgroup$
    – Mike
    Dec 19 '18 at 0:35








  • 1




    $begingroup$
    My suspect is that if the max-degree is $Delta$, then the number of paths is bounded by $Delta^{O(n/g)}$.
    $endgroup$
    – HTV
    Dec 19 '18 at 1:13






  • 1




    $begingroup$
    I'm not so sure. Let us consider the set of all paths of $G$ nevermind the ending points (as there are only $n^2$ such choices for the starting and ending points this is OK). Let us call a walk legal from a starting vertex $u_0$ if it is a path. I would imagine that for "many" legal walks $W$ of length $ell < epsilon n$ in $G$, there are at least (say) $frac{k}{3}$ ways to extend $W$ to a legal walk of length $ell+1$. This should imply $exp(Omega(n))$ total paths which would imply a $u-v$ pair such that there are $exp(Omega(n))$ paths between $u$ and $v$
    $endgroup$
    – Mike
    Dec 19 '18 at 21:12








  • 1




    $begingroup$
    We could also assume that $G$ is an expander of course as there are high-girth expanders, and there are even explicit constructions of such graphs
    $endgroup$
    – Mike
    Dec 19 '18 at 21:16
















3












$begingroup$


In a graph $G$ with girth $g$, say $g = Omega(log n)$, can we deduce an upper bound on the number of paths between two nodes $u$ and $v$?










share|cite|improve this question









$endgroup$












  • $begingroup$
    This is a great question. If you don't care about regularity, take any bounded-degree graph with lots of paths between two vertices and replace each edge with a path of $log n$ vertices, then the girth will be large. This isn't very interesting, but I do suspect that the girth bound may not limit the number of paths
    $endgroup$
    – Mike
    Dec 19 '18 at 0:35








  • 1




    $begingroup$
    My suspect is that if the max-degree is $Delta$, then the number of paths is bounded by $Delta^{O(n/g)}$.
    $endgroup$
    – HTV
    Dec 19 '18 at 1:13






  • 1




    $begingroup$
    I'm not so sure. Let us consider the set of all paths of $G$ nevermind the ending points (as there are only $n^2$ such choices for the starting and ending points this is OK). Let us call a walk legal from a starting vertex $u_0$ if it is a path. I would imagine that for "many" legal walks $W$ of length $ell < epsilon n$ in $G$, there are at least (say) $frac{k}{3}$ ways to extend $W$ to a legal walk of length $ell+1$. This should imply $exp(Omega(n))$ total paths which would imply a $u-v$ pair such that there are $exp(Omega(n))$ paths between $u$ and $v$
    $endgroup$
    – Mike
    Dec 19 '18 at 21:12








  • 1




    $begingroup$
    We could also assume that $G$ is an expander of course as there are high-girth expanders, and there are even explicit constructions of such graphs
    $endgroup$
    – Mike
    Dec 19 '18 at 21:16














3












3








3


1



$begingroup$


In a graph $G$ with girth $g$, say $g = Omega(log n)$, can we deduce an upper bound on the number of paths between two nodes $u$ and $v$?










share|cite|improve this question









$endgroup$




In a graph $G$ with girth $g$, say $g = Omega(log n)$, can we deduce an upper bound on the number of paths between two nodes $u$ and $v$?







combinatorics graph-theory






share|cite|improve this question













share|cite|improve this question











share|cite|improve this question




share|cite|improve this question










asked Dec 18 '18 at 21:07









HTVHTV

1017




1017












  • $begingroup$
    This is a great question. If you don't care about regularity, take any bounded-degree graph with lots of paths between two vertices and replace each edge with a path of $log n$ vertices, then the girth will be large. This isn't very interesting, but I do suspect that the girth bound may not limit the number of paths
    $endgroup$
    – Mike
    Dec 19 '18 at 0:35








  • 1




    $begingroup$
    My suspect is that if the max-degree is $Delta$, then the number of paths is bounded by $Delta^{O(n/g)}$.
    $endgroup$
    – HTV
    Dec 19 '18 at 1:13






  • 1




    $begingroup$
    I'm not so sure. Let us consider the set of all paths of $G$ nevermind the ending points (as there are only $n^2$ such choices for the starting and ending points this is OK). Let us call a walk legal from a starting vertex $u_0$ if it is a path. I would imagine that for "many" legal walks $W$ of length $ell < epsilon n$ in $G$, there are at least (say) $frac{k}{3}$ ways to extend $W$ to a legal walk of length $ell+1$. This should imply $exp(Omega(n))$ total paths which would imply a $u-v$ pair such that there are $exp(Omega(n))$ paths between $u$ and $v$
    $endgroup$
    – Mike
    Dec 19 '18 at 21:12








  • 1




    $begingroup$
    We could also assume that $G$ is an expander of course as there are high-girth expanders, and there are even explicit constructions of such graphs
    $endgroup$
    – Mike
    Dec 19 '18 at 21:16


















  • $begingroup$
    This is a great question. If you don't care about regularity, take any bounded-degree graph with lots of paths between two vertices and replace each edge with a path of $log n$ vertices, then the girth will be large. This isn't very interesting, but I do suspect that the girth bound may not limit the number of paths
    $endgroup$
    – Mike
    Dec 19 '18 at 0:35








  • 1




    $begingroup$
    My suspect is that if the max-degree is $Delta$, then the number of paths is bounded by $Delta^{O(n/g)}$.
    $endgroup$
    – HTV
    Dec 19 '18 at 1:13






  • 1




    $begingroup$
    I'm not so sure. Let us consider the set of all paths of $G$ nevermind the ending points (as there are only $n^2$ such choices for the starting and ending points this is OK). Let us call a walk legal from a starting vertex $u_0$ if it is a path. I would imagine that for "many" legal walks $W$ of length $ell < epsilon n$ in $G$, there are at least (say) $frac{k}{3}$ ways to extend $W$ to a legal walk of length $ell+1$. This should imply $exp(Omega(n))$ total paths which would imply a $u-v$ pair such that there are $exp(Omega(n))$ paths between $u$ and $v$
    $endgroup$
    – Mike
    Dec 19 '18 at 21:12








  • 1




    $begingroup$
    We could also assume that $G$ is an expander of course as there are high-girth expanders, and there are even explicit constructions of such graphs
    $endgroup$
    – Mike
    Dec 19 '18 at 21:16
















$begingroup$
This is a great question. If you don't care about regularity, take any bounded-degree graph with lots of paths between two vertices and replace each edge with a path of $log n$ vertices, then the girth will be large. This isn't very interesting, but I do suspect that the girth bound may not limit the number of paths
$endgroup$
– Mike
Dec 19 '18 at 0:35






$begingroup$
This is a great question. If you don't care about regularity, take any bounded-degree graph with lots of paths between two vertices and replace each edge with a path of $log n$ vertices, then the girth will be large. This isn't very interesting, but I do suspect that the girth bound may not limit the number of paths
$endgroup$
– Mike
Dec 19 '18 at 0:35






1




1




$begingroup$
My suspect is that if the max-degree is $Delta$, then the number of paths is bounded by $Delta^{O(n/g)}$.
$endgroup$
– HTV
Dec 19 '18 at 1:13




$begingroup$
My suspect is that if the max-degree is $Delta$, then the number of paths is bounded by $Delta^{O(n/g)}$.
$endgroup$
– HTV
Dec 19 '18 at 1:13




1




1




$begingroup$
I'm not so sure. Let us consider the set of all paths of $G$ nevermind the ending points (as there are only $n^2$ such choices for the starting and ending points this is OK). Let us call a walk legal from a starting vertex $u_0$ if it is a path. I would imagine that for "many" legal walks $W$ of length $ell < epsilon n$ in $G$, there are at least (say) $frac{k}{3}$ ways to extend $W$ to a legal walk of length $ell+1$. This should imply $exp(Omega(n))$ total paths which would imply a $u-v$ pair such that there are $exp(Omega(n))$ paths between $u$ and $v$
$endgroup$
– Mike
Dec 19 '18 at 21:12






$begingroup$
I'm not so sure. Let us consider the set of all paths of $G$ nevermind the ending points (as there are only $n^2$ such choices for the starting and ending points this is OK). Let us call a walk legal from a starting vertex $u_0$ if it is a path. I would imagine that for "many" legal walks $W$ of length $ell < epsilon n$ in $G$, there are at least (say) $frac{k}{3}$ ways to extend $W$ to a legal walk of length $ell+1$. This should imply $exp(Omega(n))$ total paths which would imply a $u-v$ pair such that there are $exp(Omega(n))$ paths between $u$ and $v$
$endgroup$
– Mike
Dec 19 '18 at 21:12






1




1




$begingroup$
We could also assume that $G$ is an expander of course as there are high-girth expanders, and there are even explicit constructions of such graphs
$endgroup$
– Mike
Dec 19 '18 at 21:16




$begingroup$
We could also assume that $G$ is an expander of course as there are high-girth expanders, and there are even explicit constructions of such graphs
$endgroup$
– Mike
Dec 19 '18 at 21:16










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