DocumentCode :
9151
Title :
SVM-Based Techniques for Predicting Cross-Functional Team Performance: Using Team Trust as a Predictor
Author :
Lianying Zhang ; Xiang Zhang
Author_Institution :
Coll. of Manage. & Econ., Tianjin Univ., Tianjin, China
Volume :
62
Issue :
1
fYear :
2015
fDate :
Feb. 2015
Firstpage :
114
Lastpage :
121
Abstract :
Due to the characteristics of cross-functional teams, trust is crucial for cross-functional teams to enhance performance. However, as a significant factor, trust had been neglected in previous team performance models. In this paper, we investigate whether trust can be used as a predictor of cross-functional team performance by proposing a prediction model. The inputs of the model are both team structural and contextual (SC) factors, and project process (PP) factors, which are two major sources that form team trust. The output of the model is different levels of team performance, which consists of internal performance and external performance. The support vector machine techniques are used to establish the model. Results show that prediction accuracy is high (84.95%) when using both SC and PP factors as inputs, while PP factors have better prediction accuracy than SC factors on team performance and internal performance. It is suggested that team trust can be used as a good predictor of cross-functional team performance. In practice, this paper presents a better understanding of the relationship between trust and performance in cross-functional teams, and thus, enhances practitioners´ managerial skills. It also gives reference for managers to dynamically control and predict team performance during project period.
Keywords :
support vector machines; team working; SVM-based techniques; predicting cross-functional team performance; prediction model; predictor; project process factors; support vector machine; team performance models; team structural; team trust; Accuracy; Biological system modeling; IP networks; Kernel; Organizations; Predictive models; Support vector machines; Cross-functional team (CFTs); support vector machine (SVM); team performance (TP); trust;
fLanguage :
English
Journal_Title :
Engineering Management, IEEE Transactions on
Publisher :
ieee
ISSN :
0018-9391
Type :
jour
DOI :
10.1109/TEM.2014.2380177
Filename :
7004820
Link To Document :
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