I am trying to understand why we have a coequalizer $\sqcup_{0 \leq i < j \leq n} |\Delta^{n-2}| \rightrightarrows \sqcup_{0 \leq i \leq n} |\Delta^{n-1}| \rightarrow |\partial \Delta^n|$. What are all the three maps?
Boundary of a simplicial set in terms of a coequalizer
1 Answers
I realize I might be late but here are some hints. Let us look at simplicial sets instead of the realization, since the realization functor preserves colimits (and thus coequalizers) it will be enough. We have maps $d^i : \Delta^{n-2} \rightarrow \Delta^{n-1}$ as usual, and now, for each $i < j$ you have maps $d^jd^i = d^id^{j-1} : \Delta^{n-2} \rightarrow \Delta^n$ . The coequalizer is generated by these maps (induced by various coproducts and such) and the fact that $\partial \Delta^n$ is generated by $d^i:\Delta^{n-1} \rightarrow \Delta^n.$ ( the i-th faces) To see that this really is a coequalizer, you could aruge along the following lines. This is sketchy, but I think the idea is here. If we have a map $f: \amalg_{i=0}^n \Delta^{n-1} \rightarrow X$ such that for all $i