Papers › On Neural Networks as Infinite Tree-Structured Probabilistic Graphical Models

On Neural Networks as Infinite Tree-Structured Probabilistic Graphical Models

27 May 2023arXiv:2305.17583archive 2025-07-28

Boyao Li, Alexander J. Thomson, Houssam Nassif, Matthew M. Engelhard, David Page

Deep neural networks (DNNs) lack the precise semantics and definitive probabilistic interpretation of probabilistic graphical models (PGMs). In this paper, we propose an innovative solution by constructing infinite tree-structured PGMs that correspond exactly to neural networks. Our research reveals that DNNs, during forward propagation, indeed perform approximations of PGM inference that are precise in this alternative PGM structure. Not only does our research complement existing studies that describe neural networks as kernel machines or infinite-sized Gaussian processes, it also elucidates a more direct approximation that DNNs make to exact inference in PGMs. Potential benefits include improved pedagogy and interpretation of DNNs, and algorithms that can merge the strengths of PGMs and DNNs.

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engelhard-lab/dnn_treepgm officialmentioned in papertfMIT report

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cont_bern_log_norm engelhard-lab/dnn_treepgm/model.py official repository unverified MIT (permissive) · d34f7dd289b54567 · report
covertype engelhard-lab/dnn_treepgm/datagen.py official repository unverified MIT (permissive) · 9fe2624d6c30505c · report
get_pdf_dataset engelhard-lab/dnn_treepgm/synthetic.py official repository unverified MIT (permissive) · c9160cab40cffc68 · report
make_digit engelhard-lab/dnn_treepgm/datagen.py official repository unverified MIT (permissive) · cecdb4590b47072c · report
make_moon engelhard-lab/dnn_treepgm/datagen.py official repository unverified MIT (permissive) · 8182061f5e947d2b · report
normal_logpdf engelhard-lab/dnn_treepgm/model.py official repository unverified MIT (permissive) · 8f3c00e6c1d9e951 · report
sampling engelhard-lab/dnn_treepgm/synthetic.py official repository unverified MIT (permissive) · 3599f178c703e331 · report

Tasks

Gaussian Processes

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Methods

PGM

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