Abstract:
Baryon Acoustic Oscillations (BAO), a preferred scale of approximately 150 Mpc im-
printed on the large-scale matter distribution by acoustic waves in the primordial plasma,
constitute one of the most robust standard rulers in cosmology. In contrast to the more
common angular approach, based on the angular correlation function ω(θ), in this work
the BAO are measured through the angular power spectrum Cℓ, in harmonic space, using
a sample of star-forming blue galaxies at low redshift from the twelfth data release of
the Sloan Digital Sky Survey (SDSS). The aim is to validate a pipeline for the angular
analysis of BAO in harmonic space and to apply it to this unconventional sample. The
methodology is only weakly dependent on the assumed cosmological model: by working in
transverse harmonic space, it does not require the conversion of redshifts into radial dis-
tances, so that the information on the acoustic scale follows exclusively from the position
of the oscillatory feature in multipole space. For the analysis, the sample was divided into
two redshift bins: 0.15 < z < 0.25 (the main measurement) and 0.05 < z < 0.15 (pipeline
validation). The angular power spectrum of both samples is estimated with the pseudo-Cℓ
formalism, and the covariance is built from 1000 lognormal catalogs generated with the
GLASS code and iteratively recalibrated. The shift parameter α is determined by two
independent methods: the profile likelihood and Markov Chain Monte Carlo (MCMC).
For the main bin, we obtain α = 1.034+0.155-0.162 and α = 0.974+0.247-0.194, respectively,
both consistent, within the uncertainties, with the value <α> = 1 expected in the ΛCDM model.
The preference for the oscillatory model is marginal (∆χ2 = 1.38; 1.17σ), consistent with
the accuracy allowed by the volume and sky coverage of the survey (f_sky ~ 0.18); in the
low-redshift bin no significant preference is found (∆χ2 < 0.1), as expected in the absence
of a detectable signal. The measured scale corresponds to a ratio between the transverse
comoving distance and the sound horizon of D_M / r_d = 5.606 +/- 1.276 at z_eff = 0.20, without
being able to discriminate between the predictions of Planck (2018) and DESI (2025), and
to an acoustic angular scale θ_BAO = (10.21 +/- 2.326)deg. Combined with angular compilations
from the literature, it yields Ωm,0 = 0.269+0.018-0.017 and h*r_d = 103.11+0.98-0.99 Mpc.
Although the low significance reflects the intrinsic difficulty of the measurement in this
regime, the results suggest the viability of blue galaxies as BAO tracers and validate the
analysis framework for application to future surveys.