Developing a dual-wavelength full-waveform terrestrial laser scanner to characterize forest canopy structure

  • F.M. Danson
  • , R. Gaulton
  • , R.P. Armitage
  • , M. Disney
  • , O. Gunawan
  • , P. Lewis
  • , G. Pearson
  • , A.F. Ramirez

Research output: Contribution to journalArticlepeer-review

114 Citations (Scopus)

Abstract

The development of a dual-wavelength full-waveform terrestrial laser scanner to measure the three-dimensional structure of forest canopies is described, and field measurements used to evaluate and test the instrument measurement characteristics. The Salford Advanced Laser Canopy Analyser (SALCA) measures the full-waveform of backscattered radiation at two laser wavelengths, one in the near-infrared (1063 nm) and one in the shortwave infrared (1545 nm). The instrument is field-portable and measures up to nine million waveforms, at the two wavelengths, across a complete hemisphere above the instrument. SALCA was purpose-built to measure structural characteristics of forest canopies and this paper reports the first results of field-based data collection using the instrument. Characteristics of the waveforms, and waveform data processing are outlined, applications of dual wavelength measurements are evaluated, and field deployment of the instrument at a forest test site described. Preliminary instrument calibration results are presented and challenges in extracting useful information on forest structure are highlighted. Full-waveform multiple-wavelength terrestrial laser scanners are likely to provide more detailed and more accurate forest structural measurement in the future. This research demonstrates how SALCA provides a key step to develop, test and apply this new technology in a range of forest-related problems.
Original languageEnglish
Pages (from-to)7-14
JournalAgricultural and Forest Meteorology
Volume198-199
DOIs
Publication statusPrint publication - 12 Aug 2014

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