Challenge for Chinese BIM Software Extension Comparison with International BIM Development
Abstract
:1. Introduction
2. Materials and Methods
2.1. Literature Review Strategy Based on Bibliometrics
2.2. Research Plan on the Promotion Policies of BIM Software in China
- (1)
- Targeted Interviews: Representative departments in provinces and cities such as Wuhan in Hubei, Changsha in Hunan, Guangzhou in Guangdong, and Chengdu in Sichuan were selected for group interviews.
- (2)
- Online Surveys: For application enterprises that could not be interviewed on-site, we expanded the research scope through online questionnaires to collect more extensive data. The research content covered the following aspects:
- ■
- The situation of local housing and construction departments in formulating and implementing policies for promoting domestic BIM software.
- ■
- The current status and needs of design units, construction units, production units, consulting units, and owner units in the application of BIM technology.
- ■
- The role and contribution of academic groups and industry associations in promoting the development of BIM technology.
3. Results
3.1. Overview of Existing Research
3.2. Software Supply Situation
3.3. Software Application Market
4. Discussion
4.1. International Comparison of BIM Software
4.1.1. Advantages
4.1.2. Disadvantages
4.1.3. Analysis of Key Influencing Factors
- Formulate and implement standard specifications;
- Establish a review platform;
- Promote Chinese software;
- Explore the value of data;
- Ensure data consistency;
- Strengthen talent cultivation;
- Establish incentive mechanisms;
- Promote software maturity and ecosystem construction.
4.2. BIM Technology Future Promotion Recommendations
5. Conclusions
- In the implementation planning of promoting and applying BIM software in China, the government, software users, and software developers should leverage their respective strengths and complement resources and expertise to create a synergistic effect, collectively advancing the development and popularization of BIM software in China.
- By adopting a strategy of piloting projects, gradually expanding promotion, and eventually achieving comprehensive popularization, the application of BIM technology can steadily progress.
- The government should intensify policy incentives, improve regulations, and enhance promotion to foster the development and application of BIM software in China.
- Software users should effectively utilize management and incentive measures, harnessing the role of owners and feedback on requirements or issues, to promote the practical application of BIM software in real projects in China.
- Software developers need to continuously improve software with the support of the government and users, assist homeowners in business expansion and problem-solving proactively, provide higher-quality technical services to meet market demands, and enhance the competitiveness of BIM software in China.
- The adoption and promotion of BIM technology in China face bottlenecks, requiring more theoretical research and practical exploration. Attention should be paid to international research trends and strengthening international cooperation.
- Measures such as piloting projects, education and training, and industry-academia collaboration, among others, can cultivate talents in BIM technology to promote the widespread application and healthy development of BIM software in China.
Author Contributions
Funding
Conflicts of Interest
References
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Number | Chinese Institution | Publication Quantity | Authors | Research Direction |
---|---|---|---|---|
1 | Hong Kong Polytechnic University | 9 | Li X. Y. | Policy Intervention on BIM Technology Application |
2 | Southeast University | 7 | Yang L. | Automation Modeling of BIM Applications |
3 | Hong Kong University of Science and Technology | 6 | Lu W. S. | Automation Modeling of BIM Applications |
4 | China Academy of Building Research | 5 | Zongyi Zheng. | Architectural Design |
5 | University of Hong Kong | 5 | ChengJack C. P. | Automation Modeling of BIM Applications |
6 | Birmingham City University | 5 | Lu X. Z. | Building Information Modeling (BIM) and Virtual Reality (VR) |
7 | Xi’an Jiaotong-Liverpool University | 5 | He G. Y. | VDC/BIM Technology |
8 | Georgia Institute of Technology | 5 | Boyd D. | BIM Digitization |
9 | University of South Australia | 5 | Ugliotti F. M. | BIM Intelligent Data Modeling |
10 | Politecnico di Milano | 5 | Kim J. | BIM Building Element Classification |
11 | National BIM Industry Technology | 4 | Rong W. | BIM Project Practice and Application |
12 | School of Management, Shenyang | 4 | Hefeng T. | BIM Education |
13 | University of Naples Federico ii | 4 | Zhang S. J. | Automatic Application of Safety Rules to BIM |
14 | School of Civil Engineering and Architecture | 3 | Yungui L. | Application of BIM in the Construction Field |
15 | Liaoning Vocational College of | 3 | Guorong L. | Development of BIM |
16 | Swinburne University of Technology | 2 | Liang Z. | Evaluation of BIM Applications |
17 | Guangxi Vocational and Technical | 2 | Honguang Z. | Application of BIM Technology in Technical Teaching |
18 | Anhui Construction Engineering | 2 | Weihong Z. | Application of BIM Technology |
19 | School of Management Engineering | 2 | Zhansheng L. | Application of BIM Technology in Construction Projects |
20 | School of Civil Engineering | 2 | Ziru Z. | Application of BIM Technology |
Country | Representative | Advantages | Disadvantages |
---|---|---|---|
Chinese BIM Software | Guoli BIMBase, PKPM-BIM, PKPM-PC, Glodon Digital Tech Co., Ltd., BIMMAKE, C-True Malong, Hongye, Luban, Prime, Swirrl | Ensuring data security Operating habits that better meet the requirements of Chinese designers Embedded local standards within the software High level of support from the software company, with timely localization services Reasonable software pricing | Low maturity level of the software, significant gaps in capabilities for complex buildings, large-scale projects, and irregular modeling. Insufficient development of the Chinese software ecosystem, resulting in the inability to bridge the gap with international achievements. |
International BIM Software | Autodesk, Bentley, Trimble, Dassault | The software has reached a relatively mature stage of development, with significant advantages in modeling large-scale and complex buildings. There are a wide variety of software products available with a longstanding history of use, leading to a strong software ecosystem. The software demonstrates a relatively high level of maturity and offers a wide range of features. | The software has reached a mature stage, but lacks sufficient local support and resources, leading to slow functional updates. Due to core reasons, the software runs slowly and faces challenges in modeling irregular shapes. Implementation of Chinese standards and regulations does not align with the habits of Chinese users, resulting in low levels of localization. |
External Factors | Strength | Weakness | |
---|---|---|---|
Internal Factors | Ensuring Data Security; Adhering to the Habits of Chinese Designers; Compliance with Chinese Engineering Construction Standards. | Insufficient Supply of Software Talent in China; Weak Independent Innovation Capabilities, Lacking Core Technology; Lack of Competitiveness in Chinese BIM Application Software. | |
Opportunities | Utilization Factors | Utilization Factors | |
The overall environment of the software industry is improving; Government support policies are continuously strengthening; There is a huge demand in the Chinese software market. | Provide strong supportive policies and laws for the promotion of Chinese BIM software; Promote mature Chinese BIM software; Start with conventional construction and focus on cities with sound industries; Involve multiple parties in establishing the Chinese BIM software industry alliance. | Establish a comprehensive standard system to match Chinese BIM software; Develop software based on an independent and controllable Chinese BIM data platform to enhance R&D capabilities. | |
Threats | Development Factors | Elimination Factors | |
Weak software foundation; Insufficient investment in R&D; International products taking the lead, forming an application ecosystem. | Prioritize breakthroughs in areas where some Chinese BIM software is already maturely applied; Drive the application of Chinese BIM software through the establishment of a BIM review system and an engineering big data platform. | Market uncertainty factors; Create a better market environment for Chinese BIM software to eliminate market uncertainty. |
Category of Issues | Key Issues | Influencing Factors |
---|---|---|
Policies and Regulations | Policy Levers | Review Platform Government Establishment of Standards and Regulations Legal Standardization |
First Promote Software | More mature and secure Chinese software | |
Pilot Project Pilot City | Conventional construction (requires noun explanation) City with advanced construction technology and sound industry | |
Talent cultivation | Establishment Competition Software Training | |
Universities and Software Enterprises Joint Establishment | ||
Incentive system | Award-winning | |
Market demand | Value of BIM data | AI combined with intelligent construction |
Include BIM data costs in the project budget | ||
Uncover the value of BIM data scenarios. | ||
BIM data runs through the entire lifecycle of engineering projects. | Establish data standards for planning, design, review, construction, completion, and operation maintenance at each stage (requirements for data in each phase, standardized data format, consistency of BIM data circulated at each stage). | |
During the project, compliance and standard conformity checks were carried out (suitable for integration with AI technology). | ||
Establishment of an intelligent review platform (ensuring consistency and compliance of data in all processes, and uniformity in graphical models). | ||
Establishing a sound BIM standard | Building Information Modeling Design Application Standards | |
Standard for Building Information Model Operation and Maintenance Application | ||
Standard for the Application of Building Information Models in Digital Cities | ||
Completion and Delivery Standards for Building Information Modeling | ||
Building Information Model Data Interface Standard | ||
Building Information Model Review Standards | ||
Building Information Model Cost Estimating Standards | ||
Building Information Modeling Cost Standards | ||
Standard for Application of Prefabricated Building Information Model | ||
Green Building Information Modeling Application Standard | ||
Promote industry collaboration. | Establish Industry Alliances (Achieve Industry Consensus; Propose BIM Software Improvement Recommendations) | |
Industry association organizes the China BIM software application competition; universities cultivate relevant talents. | ||
Software Development | Advanced BIM software from China | Prefab, green building, engineering quantities |
Develop efficient BIM software in China. | Combining AI with Intelligent Construction | |
Initiate Specialized Research Projects | ||
Organize training for assessing the maturity of BIM software in China and certifying software application capabilities | ||
Enhance software functionality | ||
Enhancing Software Collaboration | Discussing the development strategy of BIM software in China. | |
Host a promotional event for Chinese BIM software; all project participants are invited to attend | ||
Promoting Software Maturity | Establishing industry alliances to promote the optimization of BIM software in China. | |
Enhance communication between Chinese BIM software application companies and development companies. | ||
Establishing relevant research topics | ||
Software Ecosystem | Develop software on a Chinese software platform. | |
Design units and the government establish a gene bank. | ||
Course opening; hosting competitions, textbooks, papers. |
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Share and Cite
Wang, Y.; Zhao, B.; Nie, Y.; Jiang, L.; Zhang, X. Challenge for Chinese BIM Software Extension Comparison with International BIM Development. Buildings 2024, 14, 2239. https://doi.org/10.3390/buildings14072239
Wang Y, Zhao B, Nie Y, Jiang L, Zhang X. Challenge for Chinese BIM Software Extension Comparison with International BIM Development. Buildings. 2024; 14(7):2239. https://doi.org/10.3390/buildings14072239
Chicago/Turabian StyleWang, Yao, Bin Zhao, Ying Nie, Li Jiang, and Xiaolong Zhang. 2024. "Challenge for Chinese BIM Software Extension Comparison with International BIM Development" Buildings 14, no. 7: 2239. https://doi.org/10.3390/buildings14072239
APA StyleWang, Y., Zhao, B., Nie, Y., Jiang, L., & Zhang, X. (2024). Challenge for Chinese BIM Software Extension Comparison with International BIM Development. Buildings, 14(7), 2239. https://doi.org/10.3390/buildings14072239