The Assessment of the Maturity of Informatization in Assembly-Building Projects Utilizing the CMM-CME Methodology, Taking a Project in China as an Illustration
Abstract
:1. Introduction
2. Literature Review
2.1. Assembly Building Project Informatization
2.2. Capability Maturity Model
3. Methodology
3.1. Research Framework
3.2. Classification of the Maturity Level
3.3. Construction of the Indicator System
3.3.1. Identification of Key Process Areas
3.3.2. Identification of Key Practices
3.3.3. Establishment of an Evaluation Indicator System
3.4. Construction of the Evaluation Model
3.4.1. Determination of Weights
3.4.2. Determination of Evaluation Criteria
3.4.3. Model Building
4. Case Study
4.1. Project Overview
4.2. Evaluation Process
5. Results and Discussion
5.1. Design Informatization
5.2. Production and Transportation Informatization
5.3. Construction Assembly Informatization
5.4. Informatization of Personnel, Material, and Machine Management
5.5. Environmental Management Informatization
5.6. Business Management Informatization
5.7. Engineering Collaborative Management Informatization
6. Conclusions
- (1)
- An evaluation index system for the informatization maturity of assembly-building projects is established. Utilizing the capability maturity model as a foundation, this research strives to establish the level of informatization maturity of assembly-building projects. Through a literature review and utilization of expert interviews and questionnaire surveys, this study finalizes an evaluation system comprising seven level 1 rating indicators and 28 rating level 2 indicators;
- (2)
- An evaluation model is developed for assessing the informatization maturity in assembly-building projects. Utilizing a comprehensive assignment method based on the ordinal relationship method and entropy weight method, the weight of each index is determined. Subsequently, the evaluation criteria for the maturity of informatization in assembly-building projects are formulated via examination of relevant standards and expert discussions. In conclusion, the evaluation model for the informatization maturity in assembly-building projects is developed using the evaluation criteria and the cloud matter element theory;
- (3)
- The Yangzijiang International Conference Center project is chosen for empirical investigation. The information maturity of this assembly building project is evaluated by applying the previously established index system and evaluation model. The comprehensive informatization maturity grade is of normative level and the evaluation outcomes align with the project’s actual operations, thereby validating the feasibility and effectiveness of the model.
Supplementary Materials
Author Contributions
Funding
Data Availability Statement
Conflicts of Interest
References
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Dimension | Key Process Areas | Hidden Meaning |
---|---|---|
Time | Design informatization (B1) | BIM forward design enhances efficiency and refinement through BIM technology cloud platforms |
Production and transportation informatization (B2) | Integrated application of BIM, IoT technology and GIS technology | |
Construction assembly informatization (B3) | Visualization and virtualization of progress and quality management | |
Subject | Informatization of personnel, material and machine management (B4) | Real-time monitoring of personnel, materials and equipment, transmission of monitoring data, and dissemination of early warnings |
Environmental management informatization (B5) | Visualization and monitoring of construction sites, automatic warnings, and proactive interventions | |
Business management informatization (B6) | Computerization of cost, contract, and procurement management informatization | |
Engineering collaborative management informatization (B7) | Establishment of an information platform to facilitate collaborative project administration |
Serial Number | Work Unit | Duties |
---|---|---|
1 | A software company in the construction industry | Product manager |
2 | China state construction corporation | Manager of informatization department |
3 | China state construction corporation | Project manager |
4 | Nanjing forestry university | Associate professor |
5 | Nanjing forestry university | Professor |
6 | A construction group | Manager of informatization department |
7 | A design institute | BIM designer |
Pre-Perfection | Post-Processing | Pre-Perfection | Post-Processing |
---|---|---|---|
1. Extent of application of BIM functionality [37] | The degree of application of BIM design performance (C11) | 26. Stockpile planning [38] | Material supervision informatization (C43) |
2. BIM collaborative design [39] | BIM collaborative design (C12) | 27. A system for engineering resource management [40] | |
3. BIM precast splitting [41] | Split design of prefabricated components (C13) | 28. Monitoring the safety operations of large equipment [42] | Informatization of machinery and equipment safety monitoring (C44) |
4. BIM modeling depth [43] | BIM modeling accuracy (C14) | 29. Management of scaffolding engineering informatization safety [44] | |
5. BIM deepening design [1] | 30. Monitoring on-site for informatization regarding noise and dust [45,46] | Environmental monitoring informatization (C51) | |
6. BIM software data interactivity [47] | BIM software data interactivity (C15) | 31. Linkage applications for dust reduction, noise reduction, and haze reduction [48] | |
7. Standardized and universal design of components [49] | Standardized design of components (C16) | 32. Identification of construction waste vehicles [36] | Informatization of construction waste regulation (C52) |
8. Intelligent component production line [50] | Informatization of production equipment (C21) | 33. Identification and classification and construction waste [36] | |
9. BIM-based scheduling [18] | Component production scheduling informatization (C22) | 34. Platforms for the monitoring and management of construction waste [36] | |
10. Component transportation costs, route optimization [51] | Informatization of the component transportation program (C23) | 35. Project cost data acquisition model [36] | Cost management informatization (C61) |
11. IoT technology for component information collection and quality traceability [52] | Informatization of component traceability (C24) | 36. An analysis model for price indicator correlation [36] | |
12. Visualization of technical briefings [53] | Construction assembly plan informatization (C31) | 37. Visualization and analysis of project cost [36] | |
13. Construction site dynamic layout simulation [54] | 38. Platforms for cloud procurement service [36] | Procurement management informatization (C62) | |
14. 4D virtual build construction solution optimization [55] | 39. Contract informatization management [56] | Contract management informatization (C63) | |
15. Progress simulation optimization [21] | 40. Platform for engineering collaborative management [57] | Informatization of an engineering collaborative management platform (C71) | |
16. Deformation monitoring informatization [11] | Informatization of construction assembly monitoring (C32) | 41. System integration capabilities [36] | |
17. Automated monitoring of deep foundation pits and adjacent edges [58] | 42. Real-time information collection for collaborative management [5] | Real-time information collection for collaborative management (C72) | |
18. Intelligent grouting and lifting equipment [59,60] | Construction equipment informatization (C33) | 43. Methods of data acquisition [20] | Informatization of data collection methods (C73) |
19. Robotic applications such as construction, surveying [24] | 44. Automatic data processing [36] | Data processing informatization (C74) | |
20. Training and education of VR safety [61] | Informatization of personnel security management (C41) | 45. Interactivity of hardware and software [47] | Interactivity of hardware and software (C75) |
21. Personnel security behavior monitoring [62] | 46. Information management for cloud deployment (cloud computing) [36] | Cloud deployment information management (C76) | |
22. System for determining the real name of laborers [63] | Labor monitoring informatization (C42) | ||
23. Attendance management [36] | |||
24. Wage regulation [36] | |||
25. Statistical analysis of labor force data [36] |
Level 1 Indicators | G1 Method | Entropy Weight Method | Combined Weigh | Secondary Indicators | G1 Method | Entropy Weight Method | Combined Weigh |
---|---|---|---|---|---|---|---|
B1 | 0.2145 | 0.1946 | 0.2050 | C11 | 0.1072 | 0.1215 | 0.1136 |
C12 | 0.1192 | 0.1485 | 0.1324 | ||||
C13 | 0.1527 | 0.2110 | 0.1789 | ||||
C14 | 0.1721 | 0.1485 | 0.1615 | ||||
C15 | 0.2331 | 0.2219 | 0.2281 | ||||
C16 | 0.2157 | 0.1485 | 0.1855 | ||||
B2 | 0.1798 | 0.1946 | 0.1869 | C21 | 0.2931 | 0.1430 | 0.2420 |
C22 | 0.2261 | 0.4726 | 0.3100 | ||||
C23 | 0.2094 | 0.2414 | 0.2203 | ||||
C24 | 0.2714 | 0.1430 | 0.2277 | ||||
B3 | 0.2088 | 0.1946 | 0.2020 | C31 | 0.3041 | 0.2879 | 0.2967 |
C32 | 0.3144 | 0.2879 | 0.3022 | ||||
C33 | 0.3551 | 0.4241 | 0.3869 | ||||
B4 | 0.1072 | 0.1344 | 0.1202 | C41 | 0.3168 | 0.0601 | 0.2372 |
C42 | 0.2204 | 0.3693 | 0.2666 | ||||
C43 | 0.1849 | 0.0759 | 0.1511 | ||||
C44 | 0.2779 | 0.4947 | 0.3451 | ||||
B5 | 0.0762 | 0.0733 | 0.0748 | C51 | 0.5000 | 0.6712 | 0.5651 |
C52 | 0.5000 | 0.3288 | 0.4349 | ||||
B6 | 0.0845 | 0.0741 | 0.0795 | C61 | 0.3418 | 0.2426 | 0.3031 |
C62 | 0.3418 | 0.5158 | 0.4096 | ||||
C63 | 0.3165 | 0.2416 | 0.2873 | ||||
B7 | 0.1291 | 0.1344 | 0.1316 | C71 | 0.2343 | 0.1938 | 0.2157 |
C72 | 0.1502 | 0.1427 | 0.1468 | ||||
C73 | 0.1722 | 0.1535 | 0.1636 | ||||
C74 | 0.1296 | 0.1535 | 0.1406 | ||||
C75 | 0.2128 | 0.1938 | 0.2041 | ||||
C76 | 0.1009 | 0.1627 | 0.1293 |
Indicator | Initial Level | Development Level | Normative Level | Continuous Optimization Level |
---|---|---|---|---|
C11 | 0–3 | 3–6 | 6–10 | 10–15 |
C31 | 0–0.05 | 0.05–0.01 | 0.01–0.15 | 0.15–0.3 |
Qualitative indicator | 0–25 | 25–50 | 50–75 | 75–100 |
Level 1 Indicators | Part of the Informatization Technology Key Points Combing |
---|---|
B1 | Model design and analysis; BIM multi-functional applications: including drawing review, pit simulation, material usage statistics, roaming, structural deepening simulation, collision checking, finishing scheme, and low carbon scheme comparison; EVS (earth and environmental sciences 3D visualization) for the analysis and visualization of pits |
B2 | TEKLA (structural steel detailing) for automated model undercutting; laser scanning to realize point cloud model roof undercutting; and whole process BIM component progress control |
B3 | Multi-sensor structural health inspection; roof structure morphology topology optimization; GIS+inclined photography for earth balance; construction site fabric simulation; and steel structure lifting simulation, quality, and safety inspection |
B4 | Personnel information management system; QR code personnel management system; WIFI+ safety education subsystem; intelligent AI recognition system (open flame, not wearing helmet, not wearing reflective clothing, crossing the boundary); multi-person VR safety education and experience system; tower hook monitoring system, construction elevator safety monitoring system; unloading platform load early warning system; tower safety monitoring system; and organ master system. |
B5 | Online surveillance for environmental protection; automatic monitoring of dust reduction linkage and dust spraying; surveillance of noise and nighttime construction violations; and automatic capture of unrinsed vehicles (data access to the regulatory platform) |
B6 | BIM modeling to compile a formal list to be submitted to commercial procurement |
B7 | BIM collaboration platform; enterprise cloud storage |
Secondary Indicators | Assessed Value | Secondary Indicators | Assessed Value | Secondary Indicators | Assessed Value | Secondary Indicators | Assessed Value |
---|---|---|---|---|---|---|---|
C11 | 14 | C22 | 72 | C42 | 66.9 | C63 | 66.5 |
C12 | 84.5 | C23 | 76 | C43 | 51.7 | C71 | 81.8 |
C13 | 70.9 | C24 | 85.3 | C44 | 84.4 | C72 | 68.2 |
C14 | 71 | C31 | 0.12 | C51 | 91.5 | C73 | 67.9 |
C15 | 72 | C32 | 89.5 | C52 | 61.5 | C74 | 73.5 |
C16 | 66.5 | C33 | 66.7 | C61 | 69 | C75 | 74.5 |
C21 | 71 | C41 | 71.4 | C62 | 66.9 | C76 | 75.5 |
Serial Number | Initial Level | Development Level | Normative Level | Continuous Optimization Level |
---|---|---|---|---|
C11 | (1.5, 1.274, 0.1) | (4.5, 1.274, 0.1) | (8.0, 1.699, 0.1) | (12.5, 2.123, 0.1) |
C12 | (12.5, 10.617, 0.5) | (37.5, 10.617, 0.5) | (62.5, 10.617, 0.5) | (87.5, 10.617, 0.5) |
C13 | (12.5, 10.617, 0.5) | (37.5, 10.617, 0.5) | (62.5, 10.617, 0.5) | (87.5, 10.617, 0.5) |
C14 | (12.5, 10.617, 0.5) | (37.5, 10.617, 0.5) | (62.5, 10.617, 0.5) | (87.5, 10.617, 0.5) |
C15 | (12.5, 10.617, 0.5) | (37.5, 10.617, 0.5) | (62.5, 10.617, 0.5) | (87.5, 10.617, 0.5) |
C16 | (12.5, 10.617, 0.5) | (37.5, 10.617, 0.5) | (62.5, 10.617, 0.5) | (87.5, 10.617, 0.5) |
Serial Number | Initial Level | Development Level | Normative Level | Continuous Optimization Level |
---|---|---|---|---|
C11 | 0.0000 | 0.0000 | 0.0020 | 0.7792 |
C12 | 0.0000 | 0.0001 | 0.1124 | 0.9658 |
C13 | 0.0000 | 0.0070 | 0.7316 | 0.2948 |
C14 | 0.0000 | 0.0069 | 0.7259 | 0.2988 |
C15 | 0.0000 | 0.0052 | 0.6703 | 0.3439 |
C16 | 0.0000 | 0.0240 | 0.9314 | 0.1416 |
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Chen, Y.; Meng, T.; Zhang, Z.; Xu, B. The Assessment of the Maturity of Informatization in Assembly-Building Projects Utilizing the CMM-CME Methodology, Taking a Project in China as an Illustration. Buildings 2024, 14, 918. https://doi.org/10.3390/buildings14040918
Chen Y, Meng T, Zhang Z, Xu B. The Assessment of the Maturity of Informatization in Assembly-Building Projects Utilizing the CMM-CME Methodology, Taking a Project in China as an Illustration. Buildings. 2024; 14(4):918. https://doi.org/10.3390/buildings14040918
Chicago/Turabian StyleChen, Yongxia, Tianlong Meng, Zhichen Zhang, and Binjie Xu. 2024. "The Assessment of the Maturity of Informatization in Assembly-Building Projects Utilizing the CMM-CME Methodology, Taking a Project in China as an Illustration" Buildings 14, no. 4: 918. https://doi.org/10.3390/buildings14040918
APA StyleChen, Y., Meng, T., Zhang, Z., & Xu, B. (2024). The Assessment of the Maturity of Informatization in Assembly-Building Projects Utilizing the CMM-CME Methodology, Taking a Project in China as an Illustration. Buildings, 14(4), 918. https://doi.org/10.3390/buildings14040918