Papers › Amortized Synthesis of Constrained Configurations Using a Differentiable Surrogate

Amortized Synthesis of Constrained Configurations Using a Differentiable Surrogate

16 Jun 2021NeurIPS 2021 12arXiv:2106.09019archive 2025-07-28

Xingyuan Sun, Tianju Xue, Szymon Rusinkiewicz, Ryan P. Adams

In design, fabrication, and control problems, we are often faced with the task of synthesis, in which we must generate an object or configuration that satisfies a set of constraints while maximizing one or more objective functions. The synthesis problem is typically characterized by a physical process in which many different realizations may achieve the goal. This many-to-one map presents challenges to the supervised learning of feed-forward synthesis, as the set of viable designs may have a complex structure. In addition, the non-differentiable nature of many physical simulations prevents efficient direct optimization. We address both of these problems with a two-stage neural network architecture that we may consider to be an autoencoder. We first learn the decoder: a differentiable surrogate that approximates the many-to-one physical realization process. We then learn the encoder, which maps from goal to design, while using the fixed decoder to evaluate the quality of the realization. We evaluate the approach on two case studies: extruder path planning in additive manufacturing and constrained soft robot inverse kinematics. We compare our approach to direct optimization of the design using the learned surrogate, and to supervised learning of the synthesis problem. We find that our approach produces higher quality solutions than supervised learning, while being competitive in quality with direct optimization, at a greatly reduced computational cost.

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AutoEncoder xingyuansun/amorsyn/amortized_synthesis/model.py official repository ran · metamorphic tier: deterministic MIT (permissive) · c178a4353f51a3e1 · report
MLPModel xingyuansun/amorsyn/amortized_synthesis/model.py official repository ran · metamorphic tier: deterministic MIT (permissive) · 614d82580b54bf8c · report
l2_dis xingyuansun/amorsyn/amortized_synthesis/model.py official repository ran · fixture could not drive it fingerprinted MIT (permissive) · 0e328896e1984b19 · report
normalize_path_tensor xingyuansun/amorsyn/amortized_synthesis/model.py official repository ran · fixture could not drive it MIT (permissive) · 86e7593fd8c2f223 · report
rb_to_ratio xingyuansun/amorsyn/amortized_synthesis/model.py official repository ran · honoured contract fingerprinted MIT (permissive) · 175bbab87fe86568 · report
resample xingyuansun/amorsyn/amortized_synthesis/model.py official repository ran · fixture could not drive it fingerprinted MIT (permissive) · aeb1590fd6e95aa7 · report
soft_robot_limit xingyuansun/amorsyn/amortized_synthesis/model.py official repository ran · metamorphic tier: well formed MIT (permissive) · c58e30e6cf9c4292 · report

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