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Hyperspectral Unmixing

Hyperspectral Unmixing is a procedure that decomposes the measured pixel spectrum of hyperspectral data into a collection of constituent spectral signatures (or endmembers) and a set of corresponding fractional abundances. Hyperspectral Unmixing techniques have been widely used for a variety of applications, such as mineral mapping and land-cover change detection.

Source: An Augmented Linear Mixing Model to Address Spectral Variability for Hyperspectral Unmixing

Papers

Showing 2650 of 113 papers

TitleStatusHype
DTU-Net: A Multi-Scale Dilated Transformer Network for Nonlinear Hyperspectral Unmixing0
A General Framework for Group Sparsity in Hyperspectral Unmixing Using Endmember Bundles0
A consistent and flexible framework for deep matrix factorizations0
Effective Spectral Unmixing via Robust Representation and Learning-based Sparsity0
Transformer based Endmember Fusion with Spatial Context for Hyperspectral Unmixing0
Correntropy Maximization via ADMM - Application to Robust Hyperspectral Unmixing0
A laboratory-created dataset with ground-truth for hyperspectral unmixing evaluation0
Enhancing Pure-Pixel Identification Performance via Preconditioning0
Constrained Nonnegative Matrix Factorization for Blind Hyperspectral Unmixing incorporating Endmember Independence0
Extracting Optimal Solution Manifolds using Constrained Neural Optimization0
Fast and Robust Recursive Algorithms for Separable Nonnegative Matrix Factorization0
Fast and Structured Block-Term Tensor Decomposition For Hyperspectral Unmixing0
GAUSS: Guided Encoder-Decoder Architecture for Hyperspectral Unmixing with Spatial Smoothness0
Generalized Separable Nonnegative Matrix Factorization0
HYPERION: Hyperspectral Penetrating-type Ellipsoidal Reconstruction for Terahertz Blind Source Separation0
Deep Diffusion Models and Unsupervised Hyperspectral Unmixing for Realistic Abundance Map Synthesis0
Hyperspectral Image Generation with Unmixing Guided Diffusion Model0
A graph Laplacian regularization for hyperspectral data unmixing0
A Dual Symmetric Gauss-Seidel Alternating Direction Method of Multipliers for Hyperspectral Sparse Unmixing0
Hyperspectral Unmixing Based on Nonnegative Matrix Factorization: A Comprehensive Review0
Hyperspectral unmixing for Raman spectroscopy via physics-constrained autoencoders0
Hyperspectral Unmixing: Ground Truth Labeling, Datasets, Benchmark Performances and Survey0
Hyperspectral Unmixing Network Inspired by Unfolding an Optimization Problem0
Hyperspectral Unmixing of Agricultural Images taken from UAV Using Adapted U-Net Architecture0
Adaptive Multi-Order Graph Regularized NMF with Dual Sparsity for Hyperspectral Unmixing0
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