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Speaker: Dr. Raghavendra Tripathi, New York University, UAE
Title:On Erdos matrices and related problems
Time, day and date: 2:00 PM - 3:00 PM, Monday, August 25
Venue: Department Conference Room
Talk by Dr Shubham Jaiswal, IITB Post Doc at 4 pm on Monday, 25.08.2025 in Ramanujan Hall .
Host : Prof. Dipendra Prasad
Title : Root clusters and number fields
Abstract, as given by Dr Shubham Jaiswal :
I will introduce the notion of root clusters of a polynomial and related
notions of root capacity and intersection indicium of field extensions and
discuss our results on the inverse problems for these concepts over number
fields. Further I'll introduce the notions of minimal generating sets of
Galois closure and compositum feasible triplets and discuss our main
results on these concepts over number fields. Our methods for all these
problems are Galois theoretic in nature and heavily rely on the known
cases of the inverse Galois problem.
The talk is based on my recent solo work as well as my earlier joint works
with Prof Vanchinathan and Prof Bhagwat.
Date-Day-Time : 26th August, Tuesday, 4 pm
Host: Sudarshan R. Gurjar
Venue: Ramanujan Hall
Speaker: Ankur Sarkar
Title- Smooth Structures on the product of a 4 manifold with a
standard sphere.
Abstract- The study of exotic smooth structures on manifolds is one of
the fundamental problems in topology. In particular, the
classification of smooth structures on a given smooth manifold M is
connected to the determination of a subgroup of the group of homotopy
spheres, namely, the concordance inertia group of M. In this talk, we
compute the concordance inertia group of the product of a 4 manifold M
with the standard k-sphere using the stable homotopy type of M, where
k varies between 1 to 10. Using the above computations of the
concordance inertia group, we classify all smooth manifolds
homeomorphic to the product of M with the standard k-spheres, up to
concordance. As an application of the above computations, we give a
complete diffeomorphism classification of closed, oriented, smooth
manifolds homeomorphic to the product of complex 2 projective space
with standard k-sphere, where k lies between 4 and 6. This is a joint
work with Samik Basu and Ramesh Kasilingam.
Special Colloquium
Speaker: Ved Datar (Indian Institute of Science)
Host: Anusha Mangala Krishnan
Title: The Kobayashi-Hitchin principle in complex geometry
Time, day and date: 11:30:00 AM - 12:30:00 PM, Thursday, August 28
Venue: Ramanujan Hall
Abstract: A very general principle lies at the heart of complex differential geometry - existence of canonical differential geometric objects on projective manifolds (metrics, connections, solutions to non-linear PDEs etc) must be equivalent to a purely algebro-geometric notion called “stability”. The first example of such a correspondence was the famous Narasimhan-Seshadri theorem. Since then, this general principle has become ubiquitous in all of complex differential geometry and is now the single most important way to arrive at new conjectures. I will illustrate this principle by way of two examples that have seen impressive progress over the last two decades and yet continue to remain active areas of research - existence of K\”ahler-Einstein metrics on Fano manifolds and existence of
solutions to some fully non-linear PDEs such as the $J$-equation.
Special Colloquium
Speaker: James Eldred Pascoe (Drexel University)
Host: Sourav Pal
Title: Matrix convex functions
Time, day and date: 2:30:00 PM - 3:30:00 PM, Thursday, August 28
Venue: Ramanujan Hall
Abstract: Given a function on some subset of the real numbers, there is a natural way to evaluate it on self-adjoint matrices with eigenvalues in the domain known as the functional calculus. For a simple function like a polynomial, power series or a rational function, such agrees with substituting the matrix into the expression and evaluating. Kraus analyzed the so-called matrix convex functions which are the functions such that $f_v(X) = \langle f(X)v, v\rangle$ is convex as a function of matrix inputs $X.$ For classical convex functions, we have the simple condition that some weak version of the second derivative must be nonnegative, but for matrix convex functions it turns out they must automatically be analytic and have a very particular form which can be codified in terms of an integral representation formula. (That is, matrix convex functions are essentially moment generating functions.) Helton, McCullough and Vinnikov generalized the Kraus representation to rational expressions of several noncommuting variables as their so-called Butterfly realization. With Ryan Tully-Doyle, we generalized their result to arbitrary functions of noncommuting matrix inputs leveraging a powerful technique known as the ``royal road" to lift the automatic analyticity from the one variable Kraus theorem to several variables for free and thus reduce to an algebraic problem.
In this talk, we will give a gentle introduction to the functional calculus, its rapidly maturing multivariate generalization known as free noncommutative function theory, and the theory of matrix convex functions in both contexts.