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Fundamental bounds on the fidelity of sensory cortical coding 期刊论文
NATURE, 2020
作者:  Rempel, S.;  Gati, C.;  Nijland, M.;  Thangaratnarajah, C.;  Karyolaimos, A.;  de Gier, J. W.;  Guskov, A.;  Slotboom, D. J.
收藏  |  浏览/下载:32/0  |  提交时间:2020/07/03

How the brain processes information accurately despite stochastic neural activity is a longstanding question(1). For instance, perception is fundamentally limited by the information that the brain can extract from the noisy dynamics of sensory neurons. Seminal experiments(2,3) suggest that correlated noise in sensory cortical neural ensembles is what limits their coding accuracy(4-6), although how correlated noise affects neural codes remains debated(7-11). Recent theoretical work proposes that how a neural ensemble'  s sensory tuning properties relate statistically to its correlated noise patterns is a greater determinant of coding accuracy than is absolute noise strength(12-14). However, without simultaneous recordings from thousands of cortical neurons with shared sensory inputs, it is unknown whether correlated noise limits coding fidelity. Here we present a 16-beam, two-photon microscope to monitor activity across the mouse primary visual cortex, along with analyses to quantify the information conveyed by large neural ensembles. We found that, in the visual cortex, correlated noise constrained signalling for ensembles with 800-1,300 neurons. Several noise components of the ensemble dynamics grew proportionally to the ensemble size and the encoded visual signals, revealing the predicted information-limiting correlations(12-14). Notably, visual signals were perpendicular to the largest noise mode, which therefore did not limit coding fidelity. The information-limiting noise modes were approximately ten times smaller and concordant with mouse visual acuity(15). Therefore, cortical design principles appear to enhance coding accuracy by restricting around 90% of noise fluctuations to modes that do not limit signalling fidelity, whereas much weaker correlated noise modes inherently bound sensory discrimination.


A microscopy system that enables simultaneous recording from hundreds of neurons in the mouse visual cortex reveals that the brain enhances its coding capacity by representing visual inputs in dimensions perpendicular to correlated noise.


  
Stratospheric Initial Condition for Skillful Surface Prediction in the ECMWF Model 期刊论文
GEOPHYSICAL RESEARCH LETTERS, 2019, 46 (21) : 12556-12564
作者:  Choi, Jung;  Son, Seok-Woo
收藏  |  浏览/下载:20/0  |  提交时间:2020/02/17
S2S prediction  ECMWF ensemble prediction system  Stratospheric initial conditions  
Bias adjustment and ensemble recalibration methods for seasonal forecasting: a comprehensive intercomparison using the C3S dataset 期刊论文
CLIMATE DYNAMICS, 2019, 53: 1287-1305
作者:  Manzanas, R.;  Gutierrez, J. M.;  Bhend, J.;  Hemri, S.;  Doblas-Reyes, F. J.;  Torralba, V.;  Penabad, E.;  Brookshaw, A.
收藏  |  浏览/下载:16/0  |  提交时间:2019/11/27
Seasonal forecasting  C3S  Bias adjustment  Ensemble recalibration  Forecast quality  Reliability  Ensemble size  Hindcast length  
The ARPAL operational high resolution Poor Man's Ensemble, description and validation 期刊论文
ATMOSPHERIC RESEARCH, 2018, 203: 1-15
作者:  Corazza, Matteo;  Sacchetti, Davide;  Antonelli, Marta;  Drofa, Oxana
收藏  |  浏览/下载:12/0  |  提交时间:2019/04/09
Ensemble forecasting  Numerical weather prediction  Precipitation verification  Poor Man'  s Ensemble  Operational weather forecasting