The Emergence of the Contractor’s Innovation Capability at Project Level: An Agent-Based Modeling Approach
Abstract
:1. Introduction
2. Background
2.1. Innovation Capability
2.2. Knowledge Transfer in Construction Projects
3. Methods
3.1. Data Collection
3.2. Conceptual Model Development
- Innovation Demand
- Knowledge Sources
- Contractors
- Transfer Context
- Knowledge Distance
3.3. Selecting the Simulation Method
4. Description of Innovation Capability Emergence Model
4.1. Research Assumptions
4.2. Operational Processes
4.3. Model Parameter Settings
4.4. Behavior and Interaction Strategy Design
- (1)
- Contractor Behavior Strategy.
- (2)
- Behavior Strategies of Other Participating.
4.5. Model Validation
5. Results and Discussion
5.1. Impact of Innovation Demand
5.2. Impact of Innovation Environment
5.3. Impact of Contractor’s Absorption and Knowledge Integration Capabilities
5.4. The Impact of Organizational Synergy
6. Conclusions
Author Contributions
Funding
Data Availability Statement
Conflicts of Interest
References
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Variable Name | Variable Type | Variable Meaning | Setting Range |
---|---|---|---|
P_knowledge | number | The amount of knowledge contained in patch | [0–20] |
Strength_value | number | The ability of innovative entities to bear relevant costs | [0–200] |
Initial_sheep | number | Number of sheep in initial state | [0–30] |
Initial_knowledge | number | The initial knowledge level of the entities | [0–100] |
Strength_produce | number | Natural growth rate of strength | [0–0.5] |
Knowledge_produce | number | Knowledge creation rate of the entities | [0–0.5] |
Variable Name | Variable Type | Variable Meaning | Scale |
---|---|---|---|
Innovate_demand | category | The demand for innovation in engineering projects | On/off |
Move_cost | number | The cost of entities searching for knowledge | [0–10] |
Transfer_cost | number | Cost of knowledge transfer for innovative entities | [0–20] |
Absorb_value | number | The capability of innovation subject to absorb knowledge | [0–1] |
Transfer_value | number | The capability to integrate knowledge to achieve innovation | [0–1] |
Innovate_cost | number | The cost of innovation | [0–50] |
Innovate_gain | number | The benefits of innovation | [0–80] |
Synergy_value | number | The degree of synergy between innovation entities | [0–1] |
Combination | Variable | Setting | Variable | Setting |
---|---|---|---|---|
a | P_knowledge | 5 | Initial_knowledge | 20 |
Strength_value | 150 | Knowledge_produce | 0.2 | |
b | P_knowledge | 8 | Initial_knowledge | 40 |
Strength_value | 180 | Knowledge_produce | 0.4 | |
c | P_knowledge | 5 | Initial_knowledge | 40 |
Strength_value | 180 | Knowledge_produce | 0.2 | |
d | P_knowledge | 8 | Initial_knowledge | 20 |
Strength_value | 150 | Knowledge_produce | 0.4 |
Combination | Variable | Setting | Variable | Setting |
---|---|---|---|---|
a | Absorb_value | 0.4 | Transfer_value | 0.4 |
b | Absorb_value | 0.6 | Transfer_value | 0.4 |
c | Absorb_value | 0.4 | Transfer_value | 0.6 |
d | Absorb_value | 0.6 | Transfer_value | 0.6 |
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Feng, J.; Liu, B.; Tang, J.; Wang, Q. The Emergence of the Contractor’s Innovation Capability at Project Level: An Agent-Based Modeling Approach. Buildings 2023, 13, 2941. https://doi.org/10.3390/buildings13122941
Feng J, Liu B, Tang J, Wang Q. The Emergence of the Contractor’s Innovation Capability at Project Level: An Agent-Based Modeling Approach. Buildings. 2023; 13(12):2941. https://doi.org/10.3390/buildings13122941
Chicago/Turabian StyleFeng, Jing, Baijian Liu, Juanjuan Tang, and Qing’e Wang. 2023. "The Emergence of the Contractor’s Innovation Capability at Project Level: An Agent-Based Modeling Approach" Buildings 13, no. 12: 2941. https://doi.org/10.3390/buildings13122941
APA StyleFeng, J., Liu, B., Tang, J., & Wang, Q. (2023). The Emergence of the Contractor’s Innovation Capability at Project Level: An Agent-Based Modeling Approach. Buildings, 13(12), 2941. https://doi.org/10.3390/buildings13122941