Article ID Journal Published Year Pages File Type
734889 Optics and Lasers in Engineering 2013 8 Pages PDF
Abstract

Lens distortion practically presents in a real optical imaging system causing non-uniform geometric distortion in the recorded images, and gives rise to additional errors in the displacement and strain results measured by two-dimensional digital image correlation (2D-DIC). In this work, the systematic errors in the displacement and strain results measured by 2D-DIC due to lens distortion are investigated theoretically using the radial lens distortion model and experimentally through easy-to-implement rigid body, in-plane translation tests. Theoretical analysis shows that the displacement and strain errors at an interrogated image point are not only in linear proportion to the distortion coefficient of the camera lens used, but also depend on its distance relative to distortion center and its magnitude of displacement. To eliminate the systematic errors caused by lens distortion, a simple linear least-squares algorithm is proposed to estimate the distortion coefficient from the distorted displacement results of rigid body, in-plane translation tests, which can be used to correct the distorted displacement fields to obtain unbiased displacement and strain fields. Experimental results verify the correctness of the theoretical derivation and the effectiveness of the proposed lens distortion correction method.

► The systematic errors of 2D-DIC due to lens distortion are investigated in detail. ► Theoretical analysis shows that the errors in DIC measurements are influenced by three factors. ► A linear least-squares algorithm is proposed to estimate the lens distortion coefficient. ► The estimated distortion coefficient is used to obtain unbiased displacement and strain fields.

Related Topics
Physical Sciences and Engineering Engineering Electrical and Electronic Engineering
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