ENSEMBLE SPARSE MODELS FOR IMAGE ANALYSIS AND RESTORATION

Patent №

US 9,875,428

Granted

2018-01-23

Filed 2015

Owner

ARIZONA BOARD OF REGENTS ON BEHALF OF ARIZONA STATE UNIVERSITY

Lab

AI components

4

ml · vision · evo · hardware

Assignment

Recorded

Dataset

AIPD

2023_r1 edition

Application

14772343

Methods and systems for recovering corrupted/degraded images using approximations obtained from an ensemble of multiple sparse models are disclosed. Sparse models may represent images parsimoniously using elementary patterns from a “dictionary” matrix. Various embodiments of the present disclosure involve simple and computationally efficient dictionary design approach along with low-complexity reconstruction procedure that may use a parallel-friendly table-lookup process. Multiple dictionaries in an ensemble model may be inferred sequentially using greedy forward-selection approach and can incorporate bagging/boosting strategies, taking into account application-specific degradation. Recovery performance obtained using the proposed approaches with image super resolution and compressive recovery can be comparable to or better than existing sparse modeling based approaches, at reduced computational complexity. By including ensemble models in hierarchical multilevel learning, where multiple dictionaries are inferred in each level, further performance improvements can be obtained in image recovery, without significant increase in computational complexity.

Machine learningVisionEvolutionary computationAI hardwareG06V 10/7715G06F 18/21345G06F 18/214G06F 18/28G06V 10/772G06V 10/467

AI classification

Vision1.00
Machine learning1.00
AI hardware1.00
Evolutionary computation0.97
Planning0.21
Natural language0.06
Speech0.00
Knowledge representation0.00

Ownership

ARIZONA BOARD OF REGENTS ON BEHALF OF ARIZONA STATE UNIVERSITY

assignment · 368220116

Assignors

RAMAMURTHY, KARTHIKEYAN, THIAGARAJAN, JAYARAMAN, SATTIGERI, PRASANNA, SPANIAS, ANDREAS

On an employer assignment, the assignors are typically the inventors.

From the same owner

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