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FACTO: Function-space Adaptive Constrained Trajectory Optimization for Robotic Manipulators

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This paper introduces Function-space Adaptive Constrained Trajectory Optimization (FACTO), a new trajectory optimization algorithm for both single- and multi-arm manipulators. Trajectory representations are parameterized as linear combinations of orthogonal basis functions, and optimization is performed directly in the coefficient space. The constrained problem formulation consists of both an objective functional and a finite-dimensional objective defined over truncated coefficients. To address nonlinearity, FACTO uses a Gauss-Newton approximation with exponential moving averaging, yielding a smoothed quadratic subproblem. Trajectory-wide constraints are addressed using coefficient-space mappings, and an adaptive constrained update using the Levenberg-Marquardt algorithm is performed in the null space of active constraints. Comparisons with optimization-based planners (CHOMP, TrajOpt, GPMP2) and sampling-based planners (RRT-Connect, RRT*, PRM) show the improved solution quality and feasibility, especially in constrained single- and multi-arm scenarios. The experimental evaluation of FACTO on Franka robots verifies the feasibility of deployment.

Yichang Feng, Xiao Liang, Minghui Zheng• 2026

Related benchmarks

TaskDatasetResultRank
Unconstrained Motion PlanningKitchen
Success Rate94
13
Single-arm task-constrained robot motion planningkitchen_constr
Success Rate90
10
Single-arm task-constrained robot motion planningtable_under_pick_constr
Success Rate96
10
Dual-arm coordination motion planningtable_under_pick unconstrained (test)
Success Rate92.5
9
Dual-arm motion planningDual-arm table scene
Success Rate92.5
9
Single-arm motion planningtable_under_pick single-arm planning scene
Success Rate98
9
Single-arm unconstrained motion planningbookshelf small
Success Rate98
9
Single-arm unconstrained motion planningbookshelf_tall
Success Rate98
9
Single-arm unconstrained motion planningbookshelf thin
Success Rate100
9
Unconstrained Motion Planningtable_pick
Success Rate99
9
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