Literature DB >> 15359467

Mouse manipulation through single-switch scanning.

Susie Blackstien-Adler1, Fraser Shein, Janet Quintal, Shae Birch, Patrice L Tamar Weiss.   

Abstract

Given the current extensive reliance on the graphical user interface, independent access to computer software requires that users be able to manipulate a pointing device of some type (e.g., mouse, trackball) or be able to emulate a mouse by some other means (e.g., scanning). The purpose of the present study was to identify one or more optimal single-switch scanning mouse emulation strategies. Four alternative scanning strategies (continuous Cartesian, discrete Cartesian, rotational, and hybrid quadrant/continuous Cartesian) were selected for testing based on current market availability as well as on theoretical considerations of their potential speed and accuracy. Each strategy was evaluated using a repeated measures study design by means of a test program that permitted mouse emulation via any one of four scanning strategies in a motivating environment; response speed and accuracy could be automatically recorded and considered in view of the motor, cognitive, and perceptual demands of each scanning strategy. Ten individuals whose disabilities required them to operate a computer via single-switch scanning participated in the study. Results indicated that Cartesian scanning was the preferred and most effective scanning strategy. There were no significant differences between results from the Continuous Cartesian and Discrete Cartesian scanning strategies. Rotational scanning was quite slow with respect to the other strategies, although it was equally accurate. Hybrid Quadrant scanning improved access time but at the cost of fewer correct selections. These results demonstrated the importance of testing and comparing alternate single-switch scanning strategies.

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Year:  2004        PMID: 15359467     DOI: 10.1080/10400435.2004.10132072

Source DB:  PubMed          Journal:  Assist Technol        ISSN: 1040-0435


  1 in total

1.  A novel asynchronous access method with binary interfaces.

Authors:  Jorge Silva; Jorge Torres-Solis; Tom Chau; Alex Mihailidis
Journal:  J Neuroeng Rehabil       Date:  2008-10-29       Impact factor: 4.262

  1 in total

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