PaperPanorama

arXiv:2603.17004·v3·Cosmology and Nongalactic Astrophysics

What Shape is the Inflationary Bispectrum?

Oliver H. E. Philcox🇺🇸

PDFarXivINSPIRE

Abstract

Non-linear interactions during inflation generate non-Gaussianities in the distribution of primordial curvature. In many theories, the physics is scale-invariant, such that the induced three-point function depends solely on a dimensionless shape function . To confront such models with observations, one typically builds specialized estimators for each shape, then applies them to cosmic microwave background datasets at significant computational expense. In this Letter, we take a different approach, directly reconstructing from observations using an efficient logarithmically-binned estimator in primordial-space (motivated by the modal program). Applying this to temperature and polarization maps from Planck, we obtain high-resolution shape measurements across the full -plane, including squeezed limits. Our approach is close-to-optimal, highly interpretable, and preserves the information content on (optimally-analyzed) standard templates within ; moreover, we can use it to assess the scale-dependence of our constraints, finding that Planck is sensitive to -folds of non-Gaussian evolution with a peak sensitivity around . Since we work directly in shape-space, data and theory can be compared in milliseconds. As an example, we perform a search for massive particle exchange using a suite of over theoretical templates computed with exact bootstrap methods across a wide range of masses, spins, and sound-speeds; the spin-two analysis yields a maximum significance of . Our approach can be used to probe a wide range of scale-invariant models in orders-of-magnitude less time than with direct estimators, facilitating new exploration of the inflationary paradigm.

Comments: 5+9 pages, 3+4 figures, submitted to Phys. Rev. Lett. Shape function data available at https://github.com/oliverphilcox/Binned-Bispectrum-Shape

Citation historyopen in Citation History ↗