Human-Centered Design Optimization of VR Museums for Bronze Wine Vessels: A Systematic AHP–QFD Approach
Abstract
1. Introduction
2. Literature Review
2.1. VR in Cultural Heritage: From Visualization to Narrative Interpretation
2.2. Human-Centered Design and User Experience in Digital Museums
2.3. AHP–QFD Framework: A System Engineering Approach to Design Optimization
2.4. Dimensions and Metrics for Heritage Digitization
3. Methodology
3.1. Research Procedures
3.2. AHP Calculation of User Requirements Weights
3.2.1. Construction of the Initial Evaluation Framework
3.2.2. Construction of Pairwise Comparison Matrices and Weight Analysis
- Integrated Group Decision Judgment Matrix (Equation (1))
- 2.
- Calculation of Weight Vectors (Equation (2))
- 3.
- Calculation of the Maximum Eigenvalue (Equation (3))
- 4.
- Calculation of the Consistency Index (CI) (Equation (4))
- 5.
- Calculation and Verification of the Consistency Ratio (CR) (Equation (5))
3.3. Translating to Technical Specifications (QFD)
4. Empirical Case Study: VR Museums for Bronze Wine Vessels
4.1. AHP Results and Discussion
4.2. QFD Results and Discussion
4.2.1. Technical Implications of High-Weight Requirements
4.2.2. Quantitative Basis for the Allocation of Technical Resources
4.3. Strategic Prioritization: A Tri-Dimensional Design Optimization Framework
4.3.1. Technical Indicator Priority Ranking and Strategic Mapping
4.3.2. Technical Implementation Strategy: Interactive and Sensory Dimension
4.3.3. Semantic Translation Strategy: Atmosphere Construction and Visual Encoding
4.3.4. Effectiveness Enhancement Strategy: Narrative Empowerment and Emotional Connection
5. Conclusions
- User demands regarding the virtual display of cultural heritage were deconstructed into three progressive levels—technical, semantic, and effectiveness—leading to the establishment of a hierarchical model comprising 35 specific indicators. This framework transcends the singular measurement of technical performance, reorienting the focus toward the generation of meaning across the ‘perception–cognition–affect’ continuum; thus, a standardized evaluation pathway is established for the development of audience-centered digital museums.
- The Analytic Hierarchy Process (AHP) was employed to quantify user aspirations regarding the cultural significance of bronze wine vessels, identifying ‘Cultural Memory Inheritance (A6)’, ‘Artistic Expression (A4)’, and ‘Emotional Resonance (A7)’ as the core priorities within the user experience. Through the application of the Quality Function Deployment (QFD) House of Quality matrix, these high-priority requirements were precisely mapped onto key technical indicators, including ‘Cultural Feature Transformation (T17)’, ‘Story Logic Engine (T4)’, and ‘Visual Atmosphere Rendering (T13)’. The findings indicate that technical resource allocation should prioritize the accurate conveyance of cultural significance rather than the indiscriminate accumulation of technology. A value-driven design logic for the digitization of cultural heritage is thus established, emphasizing that technology must facilitate the multidimensional objectives of cultural authenticity, narrative depth, and emotional engagement.
- Three strategic clusters—‘Technical Implementation’, ‘Semantic Translation’, and ‘Effectiveness Enhancement’—were identified and are illustrated in Figure 12. The framework proposes a definitive set of indicators and a coordinated pathway, offering a replicable design methodology for complex cultural artifacts such as bronze wine vessels. By establishing clear priorities for resource allocation, this framework guides development teams to optimize key technologies that significantly enhance cultural identity and narrative depth, particularly under constrained resources. This advancement not only enhances the effectiveness of virtual museum design but also establishes a feasible optimization trajectory for subsequent digitalization initiatives in cultural heritage under national policy guidance.
- Integrating systems engineering tools (AHP-QFD) into Human–Computer Interaction (HCI) effectively mitigates cognitive discrepancies between users and developers. These findings anchor a replicable and evaluable design paradigm for digital curation, driving the industry’s transition from experience-led practices toward evidence-based, data- and model-driven methodologies.
6. Limitations and Future Prospects
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
Appendix A
| Primary Indicators | Secondary Indicators | Tertiary Indicator | Indicator Description |
|---|---|---|---|
| Technical Level | A1 Interaction Logic | B1-1 Interactive Intuitiveness | Interaction is intuitive and requires no learning. |
| B1-2 Timeliness of operational feedback | Immediate and clear feedback after operation. | ||
| B1-3 Diverse visiting paths | Offers a variety of exploration routes to suit different preferences. | ||
| B1-4 Convenient visiting routes | The route is reasonably designed to reach the target efficiently. | ||
| B1-5 Play smoothly and without dizziness | Smooth operation, smooth action, no vertigo. | ||
| A2 Multi-sensory Experience | B2-1 Multi-angle stereoscopic vision | The model is realistic and supports free angle observation of details. | |
| B2-2 Auditory atmosphere creation | The sound effect matches the scene and effectively sets off the atmosphere. | ||
| B2-3 Wearable haptic design | The device can simulate tactile sensations such as grasping and touching. | ||
| B2-4 Human gesture recognition | Supports natural interaction with gestures. | ||
| B2-5 Expression of immersion | The whole feels immersive. | ||
| A3 System Functions | B3-1 System stability and performance | Stable operation, no lag or crash. | |
| B3-2 Cross-platform compatibility | Can run stably on different VR devices. | ||
| B3-3 Sustainable updates | Facilitate the addition of new content or features in the future. | ||
| B3-4 Maintainability | Easy troubleshooting and routine maintenance. | ||
| B3-5 Multi-interactive technology integration | Good integration of voice, gesture and other interactive technologies. | ||
| Semantic Level | A4 Artistic Expression | B4-1 Aesthetic style unification | The overall visual style is unified and in line with cultural characteristics. |
| B4-2 Interface design aesthetics | The interface is beautiful and user-friendly. | ||
| B4-3 Wine vessel pattern restoration | The decoration of the vessel is depicted finely, accurately, and beautifully. | ||
| B4-4 Scene art atmosphere | The scene light and shadow and composition create an appropriate artistic conception. | ||
| B4-5 Material texture expression | Bronze, lacquerware and other materials are visually realistic. | ||
| A5 Cultural Information Transmission | B5-1 Depth and system of knowledge | The cultural knowledge of bronze wine vessels is deep, the logic is clear, and the structure is complete. | |
| B5-2 Narrative Presentation of Information | Ability to package information into vivid stories that are easy to understand. | ||
| B5-3 Intuitive and Effective Process Guidance | The guidance is clear and straightforward to help users have a smooth experience. | ||
| B5-4 Educational value | Knowledge is naturally transmitted in the experience, which is full of educational significance. | ||
| B5-5 Cultural identity | Content can evoke emotional resonance and enhance cultural identity. | ||
| Effectiveness Level | A6 Cultural Memory Inheritance | B6-1 Historical and cultural accuracy | The content is in line with historical facts and accurate. |
| B6-2 Restoration of cultural symbols | The realistic and accurate reproduction of representative cultural symbols. | ||
| B6-3 Cultural narrative and storytelling | Present the cultural connotation vividly in a storytelling way. | ||
| B6-4 Historical scenes are presented | The virtual scene can realistically reproduce the historical environment and atmosphere. | ||
| B6-5 Bronze wine vessel cultural characteristics | It can highlight the unique cultural characteristics and charm of bronzes. | ||
| A7 Emotional Resonance | B7-1 Self-achievement | Sense of accomplishment can be generated after completing the task. | |
| B7-2 Pleasant emotions | The experience process brings a relaxed, enjoyable feeling. | ||
| B7-3 User Communication and Sharing | The experience is attractive and willing to be shared. | ||
| B7-4 Story and emotional linkage | Stories or scenes can resonate emotionally. | ||
| B7-5 Memory retention | After the end, the content and feelings are deeply remembered. |
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| Attribute | Description |
|---|---|
| Total Experts | 10 experts from Mainland China and Taiwan |
| Institution Type | Academic institutions (5), museums (2), corporate enterprises (2), and research institutes (1) |
| Disciplinary Fields | Digital media design (3), cultural heritage conservation (2), human–computer interaction (HCI) (2), VR technology development (2), and user experience (UX) design (1) |
| Professional Experience | Minimum of 10–20 years of practical or research experience in relevant fields |
| Regional Distribution | Distributed across multiple regions, including Shanghai, Beijing, Shenzhen, Sichuan Province, and Taiwan |
| Scale | Definition |
|---|---|
| 1 | Equal Importance: Both elements contribute equally to the objective. |
| 3 | Moderate Importance: Slight preference for one element over another. |
| 5 | Strong Importance: Clear preference for one element over another. |
| 7 | Very Strong Importance: Strong dominance of one element over another. |
| 9 | Extreme Importance: Absolute dominance of one element over another. |
| 2,4,6,8 | Intermediate Values: Judgments between two adjacent scales. |
| Reciprocals of 1–9 | Indicate the mirrored comparative importance when the order of the two elements is reversed. |
| Parameters | A | A1 | A2 | A3 | A4 | A5 | A6 | A7 |
|---|---|---|---|---|---|---|---|---|
| λmax | 7.0362 | 5.0386 | 5.0386 | 5.0074 | 5.0115 | 5.0313 | 5.0142 | 5.0249 |
| CI | 0.0060 | 0.0096 | 0.0097 | 0.0018 | 0.0029 | 0.0078 | 0.0036 | 0.0062 |
| RI | 1.32 | 1.12 | 1.12 | 1.12 | 1.12 | 1.12 | 1.12 | 1.12 |
| CR | 0.0046 | 0.0086 | 0.0086 | 0.0016 | 0.0026 | 0.0070 | 0.0032 | 0.0056 |
| Primary Indicator | Secondary Indicator | Secondary Weight | Tertiary Indicator | Tertiary Weight | Composite Weight | Overall Rank | Secondary Indicator Rank |
|---|---|---|---|---|---|---|---|
| Technical Level | A1 Interaction Logic | 0.1610 | B1-1 | 0.2287 | 0.0368 | 9 | 4 |
| B1-2 | 0.1536 | 0.0247 | 21 | ||||
| B1-3 | 0.0901 | 0.0145 | 29 | ||||
| B1-4 | 0.1801 | 0.0290 | 15 | ||||
| B1-5 | 0.3475 | 0.0559 | 1 | ||||
| A2 Sensory Experience | 0.1041 | B2-1 | 0.1822 | 0.0190 | 25 | 6 | |
| B2-2 | 0.1691 | 0.0176 | 27 | ||||
| B2-3 | 0.1173 | 0.0122 | 33 | ||||
| B2-4 | 0.1788 | 0.0186 | 26 | ||||
| B2-5 | 0.3526 | 0.0367 | 10 | ||||
| A3 System Functions | 0.0675 | B3-1 | 0.3255 | 0.0220 | 24 | 7 | |
| B3-2 | 0.1516 | 0.0102 | 34 | ||||
| B3-3 | 0.1114 | 0.0075 | 35 | ||||
| B3-4 | 0.2048 | 0.0138 | 31 | ||||
| B3-5 | 0.2066 | 0.0139 | 30 | ||||
| Semantic Level | A4 Artistic Expression | 0.1687 | B4-1 | 0.2894 | 0.0488 | 4 | 2 |
| B4-2 | 0.1709 | 0.0288 | 16 | ||||
| B4-3 | 0.1025 | 0.0173 | 28 | ||||
| B4-4 | 0.2614 | 0.0441 | 6 | ||||
| B4-5 | 0.1757 | 0.0296 | 14 | ||||
| A5 Cultural Information Transmission | 0.1508 | B5-1 | 0.2319 | 0.0350 | 11 | 5 | |
| B5-2 | 0.2576 | 0.0388 | 8 | ||||
| B5-3 | 0.1792 | 0.0270 | 19 | ||||
| B5-4 | 0.1752 | 0.0264 | 20 | ||||
| B5-5 | 0.1561 | 0.0235 | 22 | ||||
| Effectiveness Level | A6 Cultural Memory Inheritance | 0.1809 | B6-1 | 0.2699 | 0.0488 | 3 | 1 |
| B6-2 | 0.1931 | 0.0349 | 12 | ||||
| B6-3 | 0.2176 | 0.0394 | 7 | ||||
| B6-4 | 0.1898 | 0.0343 | 13 | ||||
| B6-5 | 0.1297 | 0.0235 | 23 | ||||
| A7 Emotional Resonance | 0.1671 | B7-1 | 0.1701 | 0.0284 | 17 | 3 | |
| B7-2 | 0.1626 | 0.0272 | 18 | ||||
| B7-3 | 0.0786 | 0.0131 | 32 | ||||
| B7-4 | 0.2998 | 0.0501 | 2 | ||||
| B7-5 | 0.2889 | 0.0483 | 5 |
| Strategic Level | Technical Indicators | Importance Weight | Total Weights | Rank |
|---|---|---|---|---|
| Technical Implementation Strategy (TIS) | Intelligent Interaction System (T2) | 5.16% | 20.41% | 9 |
| Multimodal Interaction Mode (T19) | 4.98% | 10 | ||
| Spatial Audio Systems (T11) | 4.23% | 11 | ||
| Free Viewing Angle control (T20) | 3.05% | 14 | ||
| System Performance Optimization (T3) | 2.99% | 15 | ||
| Semantic Translation Strategy (STS) | Visual Atmosphere Rendering (T13) | 6.82% | 32.22% | 2 |
| High-Precision 3D Modeling (T1) | 6.57% | 4 | ||
| PBR Material Map Accuracy (T6) | 6.45% | 5 | ||
| UI System Design (T7) | 5.69% | 8 | ||
| Knowledge System Structure (T16) | 3.43% | 12 | ||
| User Behavior Guidance (T10) | 3.26% | 13 | ||
| Effectiveness Enhancement Strategy (EES) | Cultural Feature Transformation (T17) | 8.37% | 27.53% | 1 |
| Narrative Logic Engine (T4) | 6.67% | 3 | ||
| Global Illumination and Ray Tracing (T9) | 6.27% | 6 | ||
| Emotional Link Design (T18) | 6.22% | 7 |
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© 2026 by the authors. Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license.
Share and Cite
Fang, W.-T.; Chen, R.; Guo, W.; Wang, S.; Wu, J.; Lin, R. Human-Centered Design Optimization of VR Museums for Bronze Wine Vessels: A Systematic AHP–QFD Approach. Appl. Sci. 2026, 16, 4908. https://doi.org/10.3390/app16104908
Fang W-T, Chen R, Guo W, Wang S, Wu J, Lin R. Human-Centered Design Optimization of VR Museums for Bronze Wine Vessels: A Systematic AHP–QFD Approach. Applied Sciences. 2026; 16(10):4908. https://doi.org/10.3390/app16104908
Chicago/Turabian StyleFang, Wen-Ting, Ranzi Chen, Wenbo Guo, Shiao Wang, Jun Wu, and Rungtai Lin. 2026. "Human-Centered Design Optimization of VR Museums for Bronze Wine Vessels: A Systematic AHP–QFD Approach" Applied Sciences 16, no. 10: 4908. https://doi.org/10.3390/app16104908
APA StyleFang, W.-T., Chen, R., Guo, W., Wang, S., Wu, J., & Lin, R. (2026). Human-Centered Design Optimization of VR Museums for Bronze Wine Vessels: A Systematic AHP–QFD Approach. Applied Sciences, 16(10), 4908. https://doi.org/10.3390/app16104908

