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Dual-Prior Guided Null-Space Learning with Mixture-of-Splines for Arbitrary Medical Slice Super-Resolution

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Arbitrary slice super-resolution reconstructs isotropic volumes from anisotropic clinical acquisitions by synthesizing intermediate slices at arbitrary scales. However, treating this ill-posed inverse problem as unconstrained residual-based regression risks hallucinating anatomically implausible structures or altering the originally observed data. To address both concerns, this paper presents the Dual-Prior Null-space Learning (DP-NSL) framework, which reformulates the task as a constrained recovery process guided by two complementary priors. A Measurement-Consistent Projection (MCP) enforces a Deterministic Observation Prior: the reconstruction undergoes an exact orthogonal projection that reproduces every acquired slice with zero error, confining all learned details to the unobservable null space. Within this null space, a Mixture-of-Splines (MoS) module imposes a Geometric Continuity Prior by dynamically mixing B-spline experts of different analytic orders, allowing each anatomical region to be modeled with a content-aware level of continuity. To promote spatial coherence, a Local Spatial Consistency Decoder (LSCD) further injects local inductive bias. Experiments on three CT and one MRI benchmark show that DP-NSL outperforms existing approaches while strictly preserving measurement consistency. Code is available at https://github.com/DeepMed-Lab-ECNU/Medical-Image-Reconstruction.

Haofei Song, Siyuan Xu, Xintian Mao, Shaojie Guo, Qingli Li, Yan Wang• 2026

Related benchmarks

TaskDatasetResultRank
MRI Super-resolutionIXI
PSNR40.17
42
MRI Super-resolutionIXI (test)
PSNR47.54
39
Slice Super-ResolutionColon
PSNR42.96
36
Super-ResolutionLiver
PSNR33.72
36
Super-ResolutionColon
PSNR34.05
36
Slice Super-ResolutionColon (test)
PSNR42.55
27
Slice Super-ResolutionLiver (test)
PSNR42.49
27
Slice Super-ResolutionHepatic Vessels (test)
PSNR43.4
27
Super-ResolutionHepatic Vessels
PSNR35.2
24
SegmentationKiTS19
Dice Similarity Coefficient (DSC)0.8581
16
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