categories - Category Theory list
 help / color / mirror / Atom feed
* Lawvere theories and Monads
@ 2018-12-22 17:45 Jade Master
  2018-12-24 10:22 ` Clemens Berger
  0 siblings, 1 reply; 2+ messages in thread
From: Jade Master @ 2018-12-22 17:45 UTC (permalink / raw)
  To: categories

I have a question about the relationship between Lawvere theories and
monads. Every morphism of Lawvere theories f: T ->T' induces a morphism of
monads M_f: M_T => M_T' which can be calculated by using the universal
property of the coend formula for M_T (this can be found in Hyland's
<https://www.irif.fr/~mellies/mpri/mpri-ens/articles/hyland-power-lawvere-theories-and-monads.pdf>
paper
on Lawvere theories and monads).

On the other hand f: T->T' gives a functor f* : Mod(T') -> Mod(T) given by
composition with f. Because everything is nice enough, f* always has a left
adjoint f_* : Mod(T) -> Mod(T') (details of this can be found here
<http://web.science.mq.edu.au/~street/MitchB.pdf> or in Toposes, Triples
and Theories).

My question is the following: What relationship is there between the
adjunction

  f_* \dashv f*: Mod(T) ->Mod(T')

and the morphism of monads computed using coends

M_f : M_T => M_T'?

In the examples I can think of the components of M_f are given by the unit
of the adjunction f_* \dashv f* but I cannot find a reference explaining
this. It doesn't seem to be in Toposes, Triples, and Theories.
<http://www.tac.mta.ca/tac/reprints/articles/12/tr12abs.html>

Thank you,
Jade Master


[For admin and other information see: http://www.mta.ca/~cat-dist/ ]


^ permalink raw reply	[flat|nested] 2+ messages in thread

end of thread, other threads:[~2018-12-24 10:22 UTC | newest]

Thread overview: 2+ messages (download: mbox.gz / follow: Atom feed)
-- links below jump to the message on this page --
2018-12-22 17:45 Lawvere theories and Monads Jade Master
2018-12-24 10:22 ` Clemens Berger

This is a public inbox, see mirroring instructions
for how to clone and mirror all data and code used for this inbox;
as well as URLs for NNTP newsgroup(s).