Investigation of Selected Baseline Removal Techniques as Candidates for Automated Implementation

Author:

Schulze Georg1,Jirasek Andrew1,Yu Marcia M. L.1,Lim Arnel1,Turner Robin F. B.1,Blades Michael W.1

Affiliation:

1. Michael Smith Laboratories, The University of British Columbia, 301-2185 East Mall, Vancouver, BC, Canada, V6T 1Z4 (G.S., A.J., R.F.B.T.); Department of Chemistry, The University of British Columbia, E257-2036 Main Mall, Vancouver, BC, Canada, V6T 1Z1 (A.J., M.M.L.Y., M.W.B.); Department of Physics and Astronomy, The University of British Columbia, 325-6224 Agricultural Road, Vancouver, BC, Canada, V6T 1Z1 (A.L.); and Department of Electrical and Computer Engineering, The University of British Columbia,...

Abstract

Observed spectra normally contain spurious features along with those of interest and it is common practice to employ one of several available algorithms to remove the unwanted components. Low frequency spurious components are often referred to as ‘baseline’, ‘background’, and/or ‘background noise’. Here we examine a cross-section of non-instrumental methods designed to remove background features from spectra; the particular methods considered here represent approaches with different theoretical underpinnings. We compare and evaluate their relative performance based on synthetic data sets designed to exemplify vibrational spectroscopic signals in realistic contexts and thereby assess their suitability for computer automation. Each method is presented in a modular format with a concise review of the underlying theory, along with a comparison and discussion of their strengths, weaknesses, and amenability to automation, in order to facilitate the selection of methods best suited to particular applications.

Publisher

SAGE Publications

Subject

Spectroscopy,Instrumentation

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