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Active Learning for Computationally Efficient Distribution of Binary Evolution Simulations

delete2022-10-13
delete3
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OA
AI
K
Kyle A. Rocha *
J
Jeff J. Andrews
C
C. P. L. Berry
Z
Z. Doctor
A
Aggelos K. Katsaggelos
J
Juan Gabriel Serra Pérez
P
Pablo Marchant
V
Vicky Kalogera
S
Scott Coughlin
S
Simone S. Bavera
A
Aaron Dotter
T
Tassos Fragos
K
Konstantinos Kovlakas
D
Devina Misra
Z
Zepei Xing
E
Emmanouil Zapartas
DOI:10.3847/1538-4357/ac8b05delete
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Abstract

Abstract

En 中文
Binary stars undergo a variety of interactions and evolutionary phases, critical for predicting and explaining observations. Binary population synthesis with full simulation of stellar structure and evolution is computationally expensive, requiring a large number of mass-transfer sequences. The recently developed binary population synthesis code POSYDON incorporates grids of MESA binary star simulations that are interpolated to model large-scale populations of massive binaries. The traditional method of computing a high-density rectilinear grid of simulations is not scalable for higher-dimension grids, accounting for a range of metallicities, rotation, and eccentricity. We present a new active learning algorithm, psy-cris, which uses machine learning in the data-gathering process to adaptively and iteratively target simulations to run, resulting in a custom, high-performance training set. We test psy-cris on a toy problem and find the resulting training sets require fewer simulations for accurate classification and regression than either regular or randomly sampled grids. We further apply psy-cris to the target problem of building a dynamic grid of MESA simulations, and we demonstrate that, even without fine tuning, a simulation set of only similar to 1/4 the size of a rectilinear grid is sufficient to achieve the same classification accuracy. We anticipate further gains when algorithmic parameters are optimized for the targeted application. We find that optimizing for classification only may lead to performance losses in regression, and vice versa. Lowering the computational cost of producing grids will enable new population synthesis codes such as POSYDON to cover more input parameters while preserving interpolation accuracies.
Keywords:
MASSIVE CLOSE BINARIES
BLACK-HOLE BINARIES
POPULATION SYNTHESIS
STELLAR EVOLUTION
MODEL
CLASSIFICATION
PROGENITORS
STRATEGIES
REGRESSION
STARS

Journal

Astrophysical Journal cover
Astrophysical Journal
IF:
5.4
Papers:
8.3W
Citations:
32.0W

Organization

State University System of Florida cover
State University System of Florida
Scholars:
12.7W
Papers: 10.9W
Citations: 130
U
university of geneva
Scholars:
3.6W
Papers: 2.9W
Citations: 35
N
Northwestern University
Scholars:
6.1W
Papers: 5.3W
Citations: 3.9K
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