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Supporting Undergraduate and Graduate Research

UD's Signal and Image Processing Lab is designed to support graduate and undergraduate research in the areas of signal and image processing. The lab provides office space for graduate students and has a number of workstations, camera systems and audio measurement and processing hardware.


Our Research

Research conducted in this lab includes a range of topics in the area of digital signal and image processing. Focus areas include super-resolution enhancement of digital video, medical image processing, image detector nonuniformity correction, atmospheric turbulence modeling and mitigation, and hyperspectral image processing.

Super-resolution

We're developing new methods for improving resolution and reducing aliasing in digital video by exploiting motion between frames. The algorithms use subpixel registration and novel image fusion/restoration techniques to produce "super-resolution" images from standard resolution input frames.

Computer-aided detection in medical images

To assist radiologists and improve lung screening, we're developing state-of-the-art computer-aided detection systems for automatically identifying pulmonary nodules on CT and chest radiographs. We also have algorithms for automated nodule segmentation and volume estimation. We refer to our CT CAD system as FlyerScan CT. We also have FlyerScan CXR for detecting lung nodules in chest X-ray images.

Scene-based nonuniformity correction

We've developed a number of algorithms for infrared focal plane arrays to correct for the nonuniformity in the photoresponses of the individual detectors. These methods operate with normal scene information, and do not rely on calibration sources.

Atmospheric turbulence mitigation

We're working with industry researchers at L3Harris Technologies to develop novel restoration methods to address degradations caused by atmospheric turbulence in terrestrial imaging. The degradations include severe geometric distortion and blurring.

Hyperspectral image processing

We've developed a novel statistical estimation framework for estimating the underlying high spatial-resolution hyperspectral scene using the observed low-resolution hyperspectral data and a correlated (and co-registered) high-resolution image from another sensor. We're also studying novel anomaly detection and change detection algorithms.


Lab Capabilities

Camera/Video Systems

  • FLIR Systems Infrared Camera
  • RGB and Grayscale Cameras
  • Computer-Controlled, Pan-and-Tilt Camera Pointing System
  • 50" Wall-Mounted Display

Audio Processing and Analysis

  • YMEC Real-Time Analyzer Software
  • MATLAB
  • Mackie 402-VLZ3 4-Channel Ultra-Compact Mixer
  • Two Behringer ECM8000 Microphones
  • Powered Studio Speakers
  • Casio Musical Keyboard