Explore Similar Technologies

Shaped-Charge Modification for Multiple Charge Outputs

LLNL researchers have developed an approach to manufacture the liner with an added variable mass component, which is used to precisely control and...

Method of direct polymerization and crosslinking of energetic materials to improve mechanical properties and performance

LLNL researchers have developed a method to of crosslinking, polymerizing or otherwise covalently coupling a subset of nitroaromatic and nitramine...

Method for Crosslinking Fluoropolymer High Explosive Binders

LLNL has developed a method that adds a polyamine based crosslinker and an acid receptor, based on MgO nanoparticles into a polymer bonded PBX, where...

Low Volume Fraction, Blast Enhancing Structural Scaffolds for High Explosive Charges

LLNL researchers uses Additive Manufacturing (AM) to create reinforcing scaffolds that can be integrated with High Explosives (HE) or solid rocket...

Rugged, power-efficient and compact system based on TDLAS for remote sensing of multiple gases in challenging environments

LLNL researchers have developed a TDLAS-based, standalone, real-time gas analyzer in a small form-factor for continuous or single-point monitoring. ...

3D GPR Image Registration Using 2D Max-Depth Projection Features

A set of images generated by multiple passes over the same area can be coherently integrated by this technology developed by LLNL researchers.  The...

3D GPR Image Registration Using 2D Max-Depth Projection Features

Contact
Reference Number
IL-13544
Technical Overview

Current practice for ground penetrating radar (GPR) is to collect and analyze 2D radar images since GPR produces 2D scans. LLNL researchers and others have produced multistatic GPRarrays that can capture 3D images that requires an advanced radar array system.

Description

A set of images generated by multiple passes over the same area can be coherently integrated by this technology developed by LLNL researchers.  The primary difficulty with coherently combining different passes is registering the images obtained from each pass, particularly if a pass only partially covers a given area.

LLNL’s novel technology is able to add images from multiple passes by comparing segments of three-dimensional image blocks, two dimensional slices through the blocks, or two-dimensional projections through the blocks.  The process to register and stitch together image blocks is as follows;

  1. Convert radar images to standardized form
  2. Select range of standardized image values and clip each image
  3. Apply a localized equalization technique
  4. Extract features from each block using histograms of oriented gradients (HOGs) or other techniques
  5. Match features between blocks to determine degree of overlap between blocks and the relationship between block coordinates
  6. Use coordinate relationship to transform blocks to a common coordinate system and add them together

 

ground-penetrating radar system developed for buried hazard detection
Development Status

Current stage of technology development:  TRL 6-8

LLNL has filed for patent protection on this invention and seeking to license this technology.

Advantages

LLNL’s 3D GPR Image Registration Using 2D Max-Depth Projection Features has numerous advantages over traditional Radar images such as:

  1. Produces 3D images
  2. Maximizes use of multiple pass overs
Potential Applications
  • Ground Penetrating Radar (GPR) image analysis
  • Radar Image analysis