- Speaker
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Salvatore Torquato, Ph.D.Lewis Bernard Professor of Natural Sciences, Professor of Chemistry, Princeton University
The 2026 lecture series in mathematics and computer science is “Randomness.” Beyond being a source of uncertainty, randomness can also be a powerful tool for discovery. Topics will include random walks and surfaces, randomized algorithms, harmonic and Fourier analysis, and the geometry of complex systems. These lectures will also highlight surprising applications — from shuffling cards to fair voting — and advances in analysis and number theory, illustrating how randomness drives both fundamental insights and practical outcomes.
2026 Lecture Series Themes
Biology – Folding the Future: The Structural Biology Revolution
Mathematics and Computer Science – Randomness
Neuroscience and Autism Science – Brain and Body: Communication and Connection
Presidential Lectures are a series of free public colloquia spotlighting groundbreaking research across four themes: neuroscience and autism science, physics, biology, and mathematics and computer science. These curated, high-level scientific talks feature leading scientists and mathematicians and are designed to foster discussion and drive discovery within the New York City research community. We invite those interested in these topics to join us for this weekly lecture series.
Complex systems can sometimes display intricate spatial patterns whose underlying order is hidden from simple inspection. Mathematics reveals this organization and, unexpectedly, connects unusual, disordered structures to ordered ones, such as crystals and quasicrystals. These links invite us to ask what order and disorder mean, how they can be measured and why hidden order emerges in matter, abstract spaces and living systems.
In this Presidential Lecture, Salvatore Torquato will discuss how the ‘hyperuniformity’ concept sheds light on these fascinating questions. In a hyperuniform point pattern, density fluctuations become small over large distances relative to those in garden-variety random systems. This single idea provides a unified framework for understanding the structure and geometry of periodic and quasiperiodic systems, as well as exotic disordered systems. Examples from physics, mathematics and biology will reveal surprising connections among optimization problems in discrete geometry, disordered ground states, sphere packings, quantum mechanics, number theory, the structure of the universe and avian photoreceptor mosaics. Torquato will also introduce ‘order metrics’ — mathematical measures that place periodic, quasiperiodic and correlated disordered patterns along a spectrum from greater order to greater disorder, for objective structural comparisons.
