Journal of Systems Engineering and Electronics ›› 2018, Vol. 29 ›› Issue (2): 321-335.doi: 10.21629/JSEE.2018.02.13
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Chao GENG1(), Shiyou QU1(), Yingying XIAO2,3,4,*(), Mei WANG2,3(), Guoqiang SHI2,3,4(), Tingyu LIN2,3,4(), Junjie XUE2(), Zhengxuan JIA2()
Received:
2017-04-27
Online:
2018-04-26
Published:
2018-04-27
Contact:
Yingying XIAO
E-mail:40892750@qq.com;jzrhitwh@sina.com;xiaoyingying504@126.com;517000314@qq.com;sunnyqiang737@163.com;lintingyu2003@sina.com;bitxue@foxmail.com;danny2006_2007@126.com
About author:
GENG Chao was born in 1979. He is a Ph.D. candidate in Economics and Management School of Harbin Institute of Technology at Weihai. His research interests are national innovation system, innovation diffusion, and cloud manufacturing, et al. E-mail: Supported by:
Chao GENG, Shiyou QU, Yingying XIAO, Mei WANG, Guoqiang SHI, Tingyu LIN, Junjie XUE, Zhengxuan JIA. Diffusion mechanism simulation of cloud manufacturing complex network based on cooperative game theory[J]. Journal of Systems Engineering and Electronics, 2018, 29(2): 321-335.
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Table 1
Initial simulation parameters"
Category | Parameter | Description | Range of values | Initialization |
Basic parameter | BA scale-free network size | 1 000 | — | |
Number of initial network nodes | 3 | — | ||
Number of connections between the newnode and the existing nodes | 2 | — | ||
Total evolution time steps of cloudmanufacturing network | 200 | — | ||
Ratio of enterprises with production tasks | 0.2 | — | ||
Maximum task intensity | 5 | — | ||
Service quality level of enterprise | randInt(1, 3) | — | ||
cos | Service cost of enterprise | rand(1, 2) | — | |
SDM strategy | Supply and demand matching strategy | 0-Deferred-acceptance strategy1-Immediate-acceptance strategy | 1 | |
IEG strategy | The ratio of demanders/providersinitially guided online | 0.1 | — | |
Guideline strategy | 0-Provider priority1-Demander priority | 1 | ||
Parameter relatedto PQIm | Initial quality of the platformMaximum quality of the platformLearning coefficient of the platform | 22 – 120.05 – 0.2 | —120.05 | |
Parameter relatedto EPH | Distribution of preferences ofenterprise i for the platform | Beta4 distribution of | — | |
alpha | Ratio of DATs | 0 – 1 | 0.5 | |
keytype | Ratio of KCPs | 0 – 1 | 1 | |
NEs parameter | Direct network effect strength | 1–5 | 1 | |
Indirect network effect strength | 1–5 | 1 | ||
localstrength | Local network effect strength | 1-5 | 1 |
Table 2
Comparison between CM and NM"
Framework | Operating mechanism | SDM strategy | |
CM | Widely connected throughresource service pool, centrallyoperated by operator | Complete resource schedulingand sharing through resourceservice pool | Matching throughout allenterprises; centralized resourceservice allocation by operator |
NM | Locally connected | Partial resource scheduling andsharing limited amongconnected enterprises | Matching locally among connectedenterprises; decentralized resourceservice allocation by enterprises |
Fig 3
Comparison of service utilization rate and demand satis-faction rate (CM parameter settings:$ \mathit{\boldsymbol{q_{\max } = 12}} $, $ \mathit{\boldsymbol{c = 0.05}} $, $ \mathit{\boldsymbol{{{{\rm{alpha}}}} = 0.5}} $, $ \mathit{\boldsymbol{{{{\rm{keytype}}}} = 1}} $, $ \mathit{\boldsymbol{d1 = 1}} $, $ \mathit{\boldsymbol{d2 = 2}} $, $ \mathit{\boldsymbol{{{{\rm{localstrenth}}}} = 1}} $, $ \mathit{\boldsymbol{S\mbox{-}DStra = 1}} $, $ \mathit{\boldsymbol{GuidStra = 1}} $)"
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