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Neural Operator-Grounded Continuous Tensor Function Representation and Its Applications

About

Recently, continuous tensor functions have attracted increasing attention, because they can unifiedly represent data both on mesh grids and beyond mesh grids. However, since mode-$n$ product is essentially discrete and linear, the potential of current continuous tensor function representations is still locked. To break this bottleneck, we suggest neural operator-grounded mode-$n$ operators as a continuous and nonlinear alternative of discrete and linear mode-$n$ product. Instead of mapping the discrete core tensor to the discrete target tensor, proposed mode-$n$ operator directly maps the continuous core tensor function to the continuous target tensor function, which provides a genuine continuous representation of real-world data and can ameliorate discretization artifacts. Empowering with continuous and nonlinear mode-$n$ operators, we propose a neural operator-grounded continuous tensor function representation (abbreviated as NO-CTR), which can more faithfully represent complex real-world data compared with classic discrete tensor representations and continuous tensor function representations. Theoretically, we also prove that any continuous tensor function can be approximated by NO-CTR. To examine the capability of NO-CTR, we suggest an NO-CTR-based multi-dimensional data completion model. Extensive experiments across various data on regular mesh grids (multi-spectral images and color videos), on mesh girds with different resolutions (Sentinel-2 images) and beyond mesh grids (point clouds) demonstrate the superiority of NO-CTR.

Ruoyang Su, Xi-Le Zhao, Sheng Liu, Wei-Hao Wu, Yisi Luo, Michael K. Ng• 2026

Related benchmarks

TaskDatasetResultRank
Point Cloud CompletionFrog point cloud
NRMSE0.028
30
Point Cloud CompletionMario point cloud
NRMSE0.043
30
Point Cloud CompletionRabbit point cloud
NRMSE0.04
30
Color Video CompletionBird color video sequence
PSNR25.382
28
Color Video CompletionForeman color video sequence
PSNR32.94
28
Color Video CompletionHorse color video sequence
PSNR32.075
28
Image CompletionSentinel-2 T30UYV (test)
PSNR37.077
28
Image CompletionSentinel-2 T32TQR (test)
PSNR36.971
28
Image CompletionSentinel-2 T33TUL (test)
PSNR38.1
28
MSI CompletionCloth MSI database
PSNR45.579
28
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