Measuring the Impact of Bedroom Privacy on Social Networks in a Long-Term Care Facility for Hong Kong Older Adults: A Spatio-Social Network Analysis Approach
Abstract
:1. Introduction
1.1. Bedroom Privacy
1.2. Social Life in LTC Facilities
1.3. A Spatio-Social Network Analysis Approach
2. Materials and Methods
2.1. Settings
2.2. Assessing Bedroom Privacy
2.3. Measuring Social Networks
2.4. Data Collection
2.5. Analysis
3. Results
3.1. Bedroom Privacy
3.2. Feasibility of the Spatio-Social Network Analysis Approach
3.3. Residents’ Social Networks
3.3.1. Social Network Structure
3.3.2. Social Network Types
3.4. The Associations between Bedroom Privacy and Social Life
4. Discussion
4.1. Bedroom Occupancy
4.2. Visual Privacy
4.3. Visibility
4.4. Bedroom Adjacency
4.5. Transitional Spaces
5. Conclusions
6. Future Areas of Research
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
References
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Factor | Geometrical Indicators | References |
---|---|---|
Bedroom occupancy | How many people share the bedroom? (Five or more = 0; Four = 1; Three = 2; Two or less = 3) | [24,50] |
Bedroom adjacency | What type of space is the bedroom next to? (Public space = 0; Semi-public space = 1; Semi-private space = 2; Private space = 3) | [26,27] |
Transitional spaces | How many transitional spaces between the bedroom and common area? (None = 0; One = 1; Two = 2; Three or more = 3) | [1,28,29] |
Visibility | Can residents see the common areas? (Yes = 0; No = 1) | [30,31] |
Visual privacy | Can residents’ beds be seen from the common areas? (Yes = 0; No = 1) | [4,32] |
Three-Bedroom | Four-Bedroom (Corridor) | Four-Bedroom (Common) | Five-Bedroom | Total | |
---|---|---|---|---|---|
% of sample | 14.58% | 37.50% | 31.25% | 16.66% | 100% |
Gender | |||||
Male | 1 | 11 | 9 | 3 | 24 |
Female | 6 | 7 | 6 | 5 | 24 |
Total | 7 | 18 | 15 | 8 | 48 |
Architectural Factor | Three-Bedroom | Four-Bedroom (Corridor) | Four-Bedroom (Common) | Five-Bedroom |
---|---|---|---|---|
Bedroom occupancy | 2 | 1 | 1 | 0 |
Bedroom adjacency | 2 | 1 | 0 | 1 |
Transitional spaces | 2 | 1 | 0 | 2 |
Visual privacy | 1 | 1 | 0 | 1 |
Visibility | 0 | 1 | 1 | 0 |
Total | 7 | 5 | 2 | 4 |
Residents of | Number of Network Partners | Frequency of Interaction | Degree Centrality |
---|---|---|---|
Three-bedroom | 1.10 | 2.86 | 0.07 |
Four-bedroom (common) | 2.43 | 4.60 | 0.04 |
Four-bedroom (corridor) | 1.85 | 4.44 | 0.23 |
Five-bedroom | 2.79 | 2.75 | 0.06 |
Mean | 2.08 | 3.98 | 0.12 |
Cluster | Cluster 1. Diverse (Common Area) | Cluster 2. Diverse (Bedroom) | Cluster 3. Non-Roommate-Focused (Common Area) | Cluster 4. Roommate-Focused (Bedroom) | Cluster 5. Restricted (Bedroom) | Mean |
---|---|---|---|---|---|---|
Of sample | 10.42% | 20.83% | 22.92% | 29.17% | 16.67% | |
Gender | ||||||
Male | 90.00% | 60.00% | 18.18% | 57.14% | 25.00% | |
Female | 10.00% | 40.00% | 81.82% | 42.86% | 75.00% | |
Mean number of network partners by location | ||||||
Roommates in own bedrooms | 2.33 (0.21) | 2.93 (0.48) | 1.36 (0.77) | 2.59 (0.65) | 0.95 (0.44) | 2.03 |
Non-roommates in other bedrooms | 4.80 (1.48) | 4.50 (1.72) | 4.27 (1.56) | 3.71 (0.10) | 2.88 (1.96) | 4.03 |
Roommates in common areas | 0.68 (0.29) | 0.08 (0.07) | 0.07 (0.09) | 0.05 (0.10) | 0.01 (0.01) | 0.18 |
Non-roommates in common areas | 1.09 (0.47) | 1.21 (0.33) | 2.08 (0.61) | 0.56 (0.41) | 0.32 (0.34) | 1.05 |
Mean frequency of interacting with … | ||||||
Roommates in own bedrooms | 18.60 (1.67) | 22.60 (2.46) | 11.18 (6.06) | 20.00 (2.86) | 8.75 (2.76) | 16.23 |
Non-roommates in other bedrooms | 22.80 (9.78) | 27.80 (6.73) | 24.36 (9.56) | 17.36 (6.22) | 8.13 (5.91) | 20.09 |
None, being away from others | 2.00 (3.94) | 2.50 (3.37) | 1.55 (1.57) | 0.50 (0.94) | 0.13 (0.35) | 1.33 |
Roommates in common areas | 11.60 (3.65) | 1.50 (1.78) | 4.09 (3.33) | 1.00 (1.52) | 0.63 (0.74) | 3.76 |
Non-roommates in common areas | 13.40 (4.04) | 11.20 (2.78) | 14.82 (4.29) | 5.36 (3.34) | 2.13 (2.70) | 9.38 |
Bedroom | Three-Bedroom | Four-Bedroom (Corridor) | Four-Bedroom (Common) | Five-Bedroom | |
---|---|---|---|---|---|
Cluster Type | |||||
Diverse (in common area) | 0 (0.0%) | 5 (27.8%) | 0 (0.0%) | 0 (0.0%) | |
Diverse (in bedroom) | 0 (0.0%) | 2 (11.1%) | 7 (46.7%) | 1 (12.5%) | |
Non-roommate-focused (in common area) | 1 (14.3%) | 6 (33.3%) | 3 (20.0%) | 1 (12.5%) | |
Roommate-focused (in bedroom) | 2 (28.6%) | 3 (16.7%) | 5 (33.3%) | 4 (50.0%) | |
Restricted (in bedroom) | 4 (57.1%) | 2 (11.1%) | 0 (0.0%) | 2 (25.0%) | |
Total | 7 | 18 | 15 | 8 |
Dependent Variables | Overall Privacy | Bedroom Occupancy | Visual Privacy | Visibility | Bedroom Adjacency | Transitional Spaces |
---|---|---|---|---|---|---|
Degree centrality | −0.305 * (0.035) | 0.055 (0.709) | −0.343 * (0.017) | 0.381 ** (0.008) | −0.349 * (0.015) | −0.414 ** (0.003) |
Number of network partners according to location | ||||||
Roommates in bedrooms | −0.087 (0.558) | −0.498 ** (<0.001) | 0.191 (0.193) | 0.056 (0.704) | −0.087 (0.555) | 0.08 (0.587) |
Non-roommates in bedrooms | −0.225 (0.125) | 0.045 (0.759) | −0.222 (0.13) | 0.489 ** (<0.001) | −0.304 * (0.036) | −0.404 ** (0.004) |
Roommates in common areas | −0.321 * (0.026) | 0.027 (0.856) | −0.380 ** (0.008) | 0.169 (0.251) | −0.315 * (0.029) | −0.317 * (0.028) |
Non-roommates in common areas | −0.173 (0.241) | 0.035 (0.812) | −0.188 (0.201) | 0.266 (0.067) | −0.209 (0.155) | −0.259 (0.075) |
Frequency of contact with … | ||||||
Roommates in bedrooms | 0.091 (0.54) | −0.132 (0.372) | 0.203 (0.167) | 0.102 (0.489) | 0.055 (0.711) | 0.061 (0.679) |
Non-roommates in bedrooms | −0.252 (0.084) | −0.118 (0.423) | −0.182 (0.217) | 0.358 * (0.012) | −0.298 * (0.04) | −0.307 * (0.034) |
Roommates in common areas | −0.241 (0.098) | 0.151 (0.304) | −0.337 * (0.019) | 0.274 (0.059) | −0.27 (0.064) | −0.351 * (0.014) |
Non-roommates in common areas | −0.321 * (0.026) | 0.033 (0.826) | −0.345 * (0.016) | 0.402 ** (0.005) | −0.367 * (0.01) | −0.428 ** (0.002) |
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Yang, A.C.H.; Chaudhury, H.; Ho, J.C.F.; Lau, N. Measuring the Impact of Bedroom Privacy on Social Networks in a Long-Term Care Facility for Hong Kong Older Adults: A Spatio-Social Network Analysis Approach. Int. J. Environ. Res. Public Health 2023, 20, 5494. https://doi.org/10.3390/ijerph20085494
Yang ACH, Chaudhury H, Ho JCF, Lau N. Measuring the Impact of Bedroom Privacy on Social Networks in a Long-Term Care Facility for Hong Kong Older Adults: A Spatio-Social Network Analysis Approach. International Journal of Environmental Research and Public Health. 2023; 20(8):5494. https://doi.org/10.3390/ijerph20085494
Chicago/Turabian StyleYang, Aria C. H., Habib Chaudhury, Jeffrey C. F. Ho, and Newman Lau. 2023. "Measuring the Impact of Bedroom Privacy on Social Networks in a Long-Term Care Facility for Hong Kong Older Adults: A Spatio-Social Network Analysis Approach" International Journal of Environmental Research and Public Health 20, no. 8: 5494. https://doi.org/10.3390/ijerph20085494
APA StyleYang, A. C. H., Chaudhury, H., Ho, J. C. F., & Lau, N. (2023). Measuring the Impact of Bedroom Privacy on Social Networks in a Long-Term Care Facility for Hong Kong Older Adults: A Spatio-Social Network Analysis Approach. International Journal of Environmental Research and Public Health, 20(8), 5494. https://doi.org/10.3390/ijerph20085494