Radiosport & Contesting
Operating competitive high-rate HF competitions (CW Sprint, CQ WW, ARRL DX). Optimizing human-machine interfaces, ergonomics, and auditory focus during high-density multi-signal pileups.
High-performance amateur radio station focusing on high-speed CW radiosport, custom software-defined radio architecture, real-time digital signal processing, and low-noise directional antenna arrays.
Operating competitive high-rate HF competitions (CW Sprint, CQ WW, ARRL DX). Optimizing human-machine interfaces, ergonomics, and auditory focus during high-density multi-signal pileups.
High-speed Morse code communication, auditory stream segregation, and ultra-fast full break-in (QSK) keying. Research into how the human auditory cortex isolates overlapping CW tones in noise.
Architecting real-time DSP pipelines, low-latency audio transports, and advanced receiver signal processing. Research into wide dynamic range processing, sub-band filtering, and psychoacoustic AGC algorithms.
Modeling, constructing, and testing directional HF antenna arrays. Low-noise spatial receiving arrays (phased verticals, steerable loops) and impedance matching networks to optimize front-to-back signal-to-noise ratios.
A real-time WebAudio & DSP simulation lab designed to explore how the human ear perceives receiver Automatic Gain Control algorithms under challenging HF conditions: CW pileups, rapid Rayleigh flutter, and near-noise weak signal work.
Electromagnetics modeling and real-world field experimentation with phased arrays and steerable low-noise receiving loops. Exploring mutual coupling, spatial null-steering, and front-to-back ratio optimization for weak-signal HF reception.