trustme.bro/r/…
✓ checked
trust me, bro:
here is the receipt.
the claim
Periodic high-pressure atmospheric anomalies form along the west coast of South America
the verdict
INSUFFICIENT LEANING
refutedsupported
the weight of evidence
2 sources for · 0 against

Available scientific studies touch upon regional precipitation and coastal sea level/wind variability along the western coast of South America, but do not fully establish periodic high-pressure atmospheric anomalies as asserted.

Evidence for · 2
1987 · cited by 14
Tide and wind data from coastal and island stations from Buenaventura, Colombia (4°N), to Callao, Peru (12°S), have been analyzed for the 1979–1984 time period to determine the propagation and forcing characteristics of coastal sea level variability at periods of days to weeks, as well as how they vary either with season or between the 1982–1983 El Niño‐Southern Oscillation (ENSO) period and non‐ENSO years. During four non‐ENSO years, the ensemble averaged cross spectra between coastal sea level height (SLH) and local winds show weak evidence of local forcing during the whole year without significant differences between the austral summer and winter seasons, other than a greater energy in the wind fluctuations at Talara during summer. Cross spectra between SLH series from neighboring stations show evidence of poleward phase propagation during winter seasons at speeds of about 2.0 m s−1.between La Libertad and Talara at periods of a week or more, and about 2.7 m s−1 between Talara and Callao at periods of 5–11 days, but no propagation is found during summers. During the 1982–1983 ENSO there is a large increase in SLH energy at most frequencies at all coastal stations, but especially in the 8‐to‐11‐day band, where energies are enhanced by as much as an order of magnitude above non‐ENSO levels. The cross spectra between adjacent SLH stations indicate a nondispersive poleward propagation of events during the 1982–1983 ENSO with phase speeds of 2.2–3.5 m s−1 from La Libertad to Talara (periods of a week or more) and 3.4–3.6 m s−1 from Talara to Callao (3.5 days or more). As with the SLH energy, the coherence and phase propagation were much stronger along the Peru coast in 1982–1983 than during non‐ENSO periods, especially in the 8‐to‐11‐day band. The one‐third increase in phase speeds during the ENSO over the non‐ENSO speeds is found to be consistent with the anomalous depression of the density structure during El Niño. Comparisons between coastal SLH and the local alongshore wind suggest that locally forced SLH variability was obscured during the 1982–1983 ENSO by the noncoastally forced, but energetic propagating fluctuations, which probably originated in the equatorial waveguide.
See more details
The analysis

rails:sufficiency:partial_only:for=0+2p:against=0+0p | v55:multi_partial_one_side:lean=lean_partial:for:one_sided

More for · 1
2025 · cited by 2
Forecasting precipitation could help prevent flooding and drought disasters along the western coast of South America (WCSA), stretching from northern Peru to Ecuador. This study constructed a multiple linear regression (MLR) model to forecast precipitation anomalies with high spatial resolution across WCSA during the austral summer (December-January-February, DJF) for the period 1982–2023. The predictors of the MLR model are the central and eastern Pacific El Niño (C and E) and the central and east Pacific Intertropical Convergence Zone (CPITCZ and EPITCZ) indices. Furthermore, we readjusted the MLR model using forecasts from the Geophysical Fluid Dynamic Model (GFDL) model from the Seamless System for prediction and Earth System Research (SPEAR) called the GFDL-SPEAR (MLRGFDL-SPEAR) as predictors. The MLR model predicts DJF precipitation anomalies across WCSA because the E, CPITCZ and EPITCZ indices strongly correlate with DJF WCSA precipitation due to their influence on atmospheric circulation to trigger deep convection over far-eastern Pacific Ocean. The MLROBS model exhibits the highest performance over most WCSA (r > 0.6, p < 0.05), except along the coast of Ecuador and the Peru-Ecuador border by present high root mean square error values (above 20 mm month−1). The GFDL-SPEAR model provides more accurate forecasts of the DJF time series for the CPITCZ index than for the E and EPITCZ indices, due to Central Pacific ITCZ responses linearly to warm SST anomalies over western Pacific Ocean and it realistically simulates DJF precipitation patterns over Southern Pacific Ocean and Peru.
Everything we examined (2)
This check searched the claim as stated. It did not run a separate search for evidence against it.
  1. Forecasting austral summer precipitation along the western coast of South America (WCSA)peer-reviewedno side taken
  2. Propagation and forcing of high‐frequency sea level variability along the west coast of South Americapeer-reviewedno side taken
The paper trail · every fact has a biography
held for human review08 Aug 2026
This receipt carries no identity, shared or not. Sharing publishes your connection to it, not your data.
Check your own claim
Challenge the receipt
trust me, bro: win the argument, pass the class, survive peer review.
This receipt is an automated verdict against our published method · not an opinion about any author or publication.
Terms · Privacy · How verdicts work · Dispute this receipt