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Project Ernestine: Validating a GOMS Analysis for Predicting and Explaining Real-World Task Performance

 

作者: Wayne D. Gray,   Bonnie E. John,   Michael E. Atwood,  

 

期刊: Human–Computer Interaction  (Taylor Available online 1993)
卷期: Volume 8, issue 3  

页码: 237-309

 

ISSN:0737-0024

 

年代: 1993

 

DOI:10.1207/s15327051hci0803_3

 

出版商: Lawrence Erlbaum Associates, Inc.

 

数据来源: Taylor

 

摘要:

Project Ernestine served a pragmatic as well as a scientific goal: to compare the worktimes of telephone company toll and assistance operators on two different workstations and to validate a GOMS analysis for predicting and explaining real-world performance. Contrary to expectations, GOMS predicted and the data confirmed that performance with the proposed workstation was slower than with the current one. Pragmatically, this increase in performance time translates into a cost of almost $2 million a year to NYNEX. Scientifically, the GOMS models predicted performance with exceptional accuracy. The empirical data provided us with three interesting results: proof that the new workstation was slower than the old one, evidence that this difference was not constant but varied with call category, and (in a trial that spanned 4 months and collected data on 72,450 phone calls) proof that performance on the new workstation stabilized after the first month. The GOMS models predicted the first two results and explained all three. In this article, we discuss the process and results of model building as well as the design and outcome of the field trial. We assess the accuracy of GOMS predictions and use the mechanisms of the models to explain the empirical results. Last, we demonstrate how the GOMS models can be used to guide the design of a new workstation and evaluate design decisions before they are implemented.

 

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