Wearable Camera-Based Objective Screen Time and Its Combined Associations with Dietary and Physical Activity Factors in Relation to Childhood Obesity
Abstract
1. Introduction
2. Materials and Methods
2.1. Study Design and Participants
2.2. Assessment of Screen Time Exposure
2.3. Physical Activity Measurement
2.4. Dietary Intake and Behavior Measurement
2.5. Outcome Measurement
2.6. Covariates
2.7. Statistical Analysis
3. Results
4. Discussion
5. Conclusions
Supplementary Materials
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
Abbreviations
BF% | Percentage of body fat |
BMI | Body mass index |
CI | Confidence interval |
CNN | Convolutional neural network |
GAM | Generalized additive model |
HC | Hip circumference |
MVPA | Moderate-to-vigorous physical activity |
OR | Odds ratio |
ResNet | Residual network |
SD | standard error |
WC | Waist circumference |
WHO | World health organization |
WHtR | Weight-to-height ratio |
References
- Caprio, S.; Santoro, N.; Weiss, R. Childhood obesity and the associated rise in cardiometabolic complications. Nat. Metab. 2020, 2, 223–232. [Google Scholar] [CrossRef] [PubMed]
- Deal, B.J.; Huffman, M.D.; Binns, H.; Stone, N.J. Perspective: Childhood Obesity Requires New Strategies for Prevention. Adv. Nutr. 2020, 11, 1071–1078. [Google Scholar] [CrossRef]
- Chaput, J.P.; Janssen, I.; Spence, J.C. Time spent sedentary and active and cardiometabolic risk factors in children. JAMA 2012, 307, 2024. [Google Scholar] [CrossRef]
- World Health Organization. Guidelines on Physical Activity, Sedentary Behaviour and Sleep for Children Under 5 Years of Age. Available online: https://apps.who.int/iris/handle/10665/311664 (accessed on 9 September 2024).
- World Health Organization. WHO Guidelines on Physical Activity and Sedentary Behaviour. Available online: https://www.who.int/publications/i/item/9789240015128 (accessed on 9 September 2024).
- Nagata, J.M.; Ganson, K.T.; Iyer, P.; Chu, J.; Baker, F.C.; Pettee Gabriel, K.; Garber, A.K.; Murray, S.B.; Bibbins-Domingo, K. Sociodemographic Correlates of Contemporary Screen Time Use among 9- and 10-Year-Old Children. J. Pediatr. 2022, 240, 213–220.e212. [Google Scholar] [CrossRef]
- Song, Y.; Li, L.; Xu, Y.; Pan, G.; Tao, F.; Ren, L. Associations between screen time, negative life events, and emotional and behavioral problems among Chinese children and adolescents. J. Affect. Disord. 2020, 264, 506–512. [Google Scholar] [CrossRef]
- Sina, E.; Buck, C.; Veidebaum, T.; Siani, A.; Reisch, L.; Pohlabeln, H.; Pala, V.; Moreno, L.A.; Molnar, D.; Lissner, L.; et al. Media use trajectories and risk of metabolic syndrome in European children and adolescents: The IDEFICS/I.Family cohort. Int. J. Behav. Nutr. Phys. Act. 2021, 18, 134. [Google Scholar] [CrossRef] [PubMed]
- Shqair, A.Q.; Pauli, L.A.; Costa, V.P.P.; Cenci, M.; Goettems, M.L. Screen time, dietary patterns and intake of potentially cariogenic food in children: A systematic review. J. Dent. 2019, 86, 17–26. [Google Scholar] [CrossRef]
- Tooth, L.R.; Moss, K.M.; Mishra, G.D. Screen time and child behaviour and health-related quality of life: Effect of family context. Prev. Med. 2021, 153, 106795. [Google Scholar] [CrossRef]
- Brushe, M.E.; Haag, D.G.; Melhuish, E.C.; Reilly, S.; Gregory, T. Screen Time and Parent-Child Talk When Children Are Aged 12 to 36 Months. JAMA Pediatr. 2024, 178, 369–375. [Google Scholar] [CrossRef] [PubMed]
- Fang, K.A.-O.; Mu, M.; Liu, K.; He, Y. Screen time and childhood overweight/obesity: A systematic review and meta-analysis. Child Care Health Dev. 2019, 45, 744–753. [Google Scholar] [CrossRef] [PubMed]
- Saunders, T.J.; Vallance, J.K. Screen Time and Health Indicators Among Children and Youth: Current Evidence, Limitations and Future Directions. Appl. Health Econ. Health Policy 2017, 15, 323–331. [Google Scholar] [CrossRef] [PubMed]
- Cardoso-Leite, P.; Buchard, A.; Tissieres, I.; Mussack, D.; Bavelier, D. Media use, attention, mental health and academic performance among 8 to 12 year old children. PLoS ONE 2021, 16, e0259163. [Google Scholar] [CrossRef] [PubMed]
- Lowe, B.M.; Smith, M.; Jaine, R.; Stanley, J.; Gage, R.; Signal, L. Watching the watchers: Assessing the nature and extent of children’s screen time using wearable cameras. N. Z. Med. J. 2023, 136, 12–31. [Google Scholar]
- Thomas, G.A.-O.; Bennie, J.A.-O.; De Cocker, K.A.-O.; Dwi Andriyani, F.A.-O.; Booker, B.A.-O.; Biddle, S.A.-O. Using Wearable Cameras to Categorize the Type and Context of Screen-Based Behaviors Among Adolescents: Observational Study. JMIR Pediatr. Parent. 2022, 5, e28208. [Google Scholar] [CrossRef] [PubMed]
- Zhou, Q.; Wang, D.; Mhurchu, C.N.; Gurrin, C.; Zhou, J.; Cheng, Y.; Wang, H. The use of wearable cameras in assessing children’s dietary intake and behaviours in China. Appetite 2019, 139, 1–7. [Google Scholar] [CrossRef]
- Gemming, L.; Rush, E.; Maddison, R.; Doherty, A.; Gant, N.; Utter, J.; Ni Mhurchu, C. Wearable cameras can reduce dietary under-reporting: Doubly labelled water validation of a camera-assisted 24 h recall. Br. J. Nutr. 2015, 113, 284–291. [Google Scholar] [CrossRef]
- Kelly, P.; Marshall, S.J.; Badland, H.; Kerr, J.; Oliver, M.; Doherty, A.R.; Foster, C. An ethical framework for automated, wearable cameras in health behavior research. Am. J. Prev. Med. 2013, 44, 314–319. [Google Scholar] [CrossRef]
- Zhang, X.-J.; Lu, Y.-F.; Zhang, S.-H. Multi-task learning for food identification and analysis with deep convolutional neural networks. J. Comput. Sci. Technol. 2016, 31, 489–500. [Google Scholar] [CrossRef]
- Pan, X.; He, J.; Zhu, F. Muti-stage hierarchical food classification. In Proceedings of the 8th International Workshop on Multimedia Assisted Dietary Management, Ottawa, ON, Canada, 29 October 2023; pp. 79–87. [Google Scholar]
- Qiu, J.; Lo, F.P.-W.; Sun, Y.; Wang, S.; Lo, B. Mining discriminative food regions for accurate food recognition. arXiv 2022, arXiv:2207.03692. [Google Scholar] [CrossRef]
- Shao, Z.; He, J.; Yu, Y.-Y.; Lin, L.; Cowan, A.; Eicher-Miller, H.; Zhu, F. Towards the creation of a nutrition and food group based image database. arXiv 2022, arXiv:2206.02086. [Google Scholar] [CrossRef]
- Evenson, K.R.; Catellier, D.J.; Gill, K.; Ondrak, K.S.; McMurray, R.G. Calibration of two objective measures of physical activity for children. J. Sports Sci. 2008, 26, 1557–1565. [Google Scholar] [CrossRef] [PubMed]
- World Health Organization. Growth Reference Data for 5–19 Years. Available online: https://www.who.int/tools/growth-reference-data-for-5to19-years (accessed on 9 September 2024).
- Lo, K.; Wong, M.; Khalechelvam, P.; Tam, W. Waist-to-height ratio, body mass index and waist circumference for screening paediatric cardi--metabolic risk factors: A meta-analysis. Obes. Rev. 2016, 17, 1258–1275. [Google Scholar] [CrossRef] [PubMed]
- WS/T 611—2018; High Waist Circumference Screening Threshold Among Children and Adolescents Aged 7~18 Years. National Health Commission of the People’s Republic of China: Beijing, China, 2018.
- Dong, H.; Yan, Y.; Liu, J.; Cheng, H.; Zhao, X.; Shan, X.; Huang, G.; Mi, J.; Mi, J.; Liu, J.; et al. Reference centiles for evaluating total body fat development and fat distribution by dual-energy x-ray absorptiometry among children and adolescents aged 3–18 years. Clin. Nutr. 2021, 40, 1289–1295. [Google Scholar] [CrossRef]
- WS/T 586—2018; Screening for Overweight and Obesity Among School-Age Children and Adolescents. National Health Commission of the People’s Republic of China: Beijing, China, 2018.
- Zhai, Y.; Sulayiman, X.; Li, W.; Shen, C.; Zhao, W.; Shi, X. The relationship between socioeconomic status and overweight and obesity among elementary school children in China. Zhonghua Yu Fang Yi Xue Za Zhi [Chin. J. Prev. Med.] 2013, 47, 945–948. [Google Scholar] [PubMed]
- Bakour, C.; Mansuri, F.; Johns-Rejano, C.; Crozier, M.; Wilson, R.; Sappenfield, W. Association between screen time and obesity in US adolescents: A cross-sectional analysis using National Survey of Children’s Health 2016–2017. PLoS ONE 2022, 17, e0278490. [Google Scholar] [CrossRef]
- Haghjoo, P.; Siri, G.; Soleimani, E.; Farhangi, M.A.; Alesaeidi, S. Screen time increases overweight and obesity risk among adolescents: A systematic review and dose-response meta-analysis. BMC Prim. Care 2022, 23, 161. [Google Scholar] [CrossRef]
- Ghasemirad, M.; Ketabi, L.; Fayyazishishavan, E.; Hojati, A.; Maleki, Z.H.; Gerami, M.H.; Moradzadeh, M.; Fernandez, J.H.O.; Akhavan-Sigari, R. The association between screen use and central obesity among children and adolescents: A systematic review and meta-analysis. J. Health Popul. Nutr. 2023, 42, 51. [Google Scholar] [CrossRef]
- Nagata, J.A.-O.; Iyer, P.; Chu, J.; Baker, F.C.; Pettee Gabriel, K.; Garber, A.K.; Murray, S.A.-O.; Bibbins-Domingo, K.; Ganson, K.A.-O. Contemporary screen time modalities among children 9–10 years old and binge-eating disorder at one-year follow-up: A prospective cohort study. Int. J. Eat. Disord. 2021, 54, 887–892. [Google Scholar] [CrossRef]
- Huo, J.; Kuang, X.; Xi, Y.; Xiang, C.; Yong, C.; Liang, J.; Zou, H.; Lin, Q.A.-O. Screen Time and Its Association with Vegetables, Fruits, Snacks and Sugary Sweetened Beverages Intake among Chinese Preschool Children in Changsha, Hunan Province: A Cross-Sectional Study. Nutrients 2022, 14, 4086. [Google Scholar] [CrossRef]
- Janssen, X.; Basterfield, L.; Parkinson, K.N.; Pearce, M.S.; Reilly, J.K.; Adamson, A.J.; Reilly, J.J. Non-linear longitudinal associations between moderate-to-vigorous physical activity and adiposity across the adiposity distribution during childhood and adolescence: Gateshead Millennium Study. Int. J. Obes. 2019, 43, 744–750. [Google Scholar] [CrossRef]
Variables | Children with Normal Weight (N = 26) | Children with Obesity (N = 26) | 95% CI for Mean Difference | p-Value |
---|---|---|---|---|
Mean ± SD or N (%) | Mean ± SD or N (%) | |||
Age (years) | 9.78 ± 0.44 | 9.75 ± 0.45 | −0.21, 0.28 | 0.774 |
Gender (%) | - | - | ||
Male | 13 (50) | 13 (50) | ||
Female | 13 (50) | 13 (50) | ||
Socioeconomic status | ||||
Green’s score | 55.28 ± 6.50 | 53.67 ± 7.33 | −2.30, 5.51 | 0.413 |
Birth weight (kg) | 3.34 ± 0.37 | 3.49 ± 0.38 | −0.36, 0.06 | 0.151 |
Mother’s BMI (kg/m2) | 22.32 ± 2.40 | 25.68 ± 3.51 | −5.04, −1.68 | <0.001 |
Children’s BMI (kg/m2) | 16.47 ± 1.49 | 25.11 ± 1.95 | −9.62, −7.68 | <0.001 |
Weight (cm) | 32.14 ± 4.01 | 51.31 ± 6.23 | −22.10, −16.24 | <0.001 |
Height (cm) | 139.53 ± 4.80 | 142.75 ± 5.52 | −6.10, −0.33 | 0.030 |
Waist circumference (cm) | 60.76 ± 5.26 | 82.71 ± 6.11 | −25.13, −18.78 | <0.001 |
Hip circumference (cm) | 72.13 ± 4.67 | 88.77 ± 4.50 | −19.19, −14.08 | <0.001 |
WHtR | 0.44 ± 0.03 | 0.58 ± 0.03 | −0.16, −0.13 | <0.001 |
BF % | 15.99 ± 6.51 | 36.14 ± 3.78 | −23.13, −17.16 | <0.001 |
Dietary intake | ||||
Energy (kcal) | 1965.85 ± 606.09 | 1942.33 ± 452.95 | −275.12, 322.17 | 0.875 |
Protein (g) | 89.62 ± 40.79 | 77.70 ± 21.03 | −6.31, 30.15 | 0.194 |
Protein intake proportion (%) | - | 0.258 | ||
<17.6% | 13 (50) | 18 (69) | ||
≥17.6% | 13 (50) | 8 (31) | ||
Carbohydrates (g) | 266.40 ± 82.28 | 275.80 ± 67.98 | −51.47, 32.68 | 0.656 |
Fat (g) | 63.43 ± 23.40 | 61.85 ± 25.77 | −12.13, 15.30 | 0.818 |
Dietary behavior | ||||
Average duration per meal (min) | 13.01 ± 3.85 | 13.68 ± 5.35 | −3.27, 1.94 | 0.609 |
Average edible weight of food consumed per meal (g) | 354.10 ± 113.26 | 354.97 ± 82.74 | −56.24, 54.51 | 0.975 |
Average eating speed per meal (g/min) | 28.66 ± 9.98 | 28.96 ± 11.80 | −6.39, 5.79 | 0.920 |
Proportion of meals with screen (%) | 0.20 ± 0.22 | 0.25 ± 0.22 | −0.18, 0.07 | 0.404 |
Proportion of meals with social interaction (%) | 0.89 ± 0.13 | 0.79 ± 0.18 | 0.02, 0.19 | 0.022 |
Screen behavior | ||||
Screen time (min/day) | 83.15 ± 36.86 | 94.91 ± 35.44 | −31.90, 8.38 | 0.247 |
Screen time (%) | - | 0.090 | ||
<1.3 h | 14 (67) | 7 (33) | ||
≥1.3 h | 12 (39) | 19 (61) | ||
Time spent on television (min/day) | 10.73 ± 9.76 | 19.66 ± 19.78 | −17.70, −0.16 | 0.046 |
Time spent on phone (min/day) | 5.65 ± 5.18 | 5.64 ± 7.13 | −3.47, 3.49 | 0.997 |
Time spent on computer (min/day) | 66.0 ± 32.2 | 69.0 ± 27.7 | −19.69, 13.82 | 0.727 |
Time spent on tablet (min/day) | 0.73 ± 0.58 | 0.64 ± 0.44 | −0.19, 0.38 | 0.512 |
Physical activity | ||||
Physical activity time (min/day) | 242.59 ± 51.38 | 264.17 ± 53.25 | −50.73, 7.56 | 0.143 |
MVPA time ≥ 1 h/day (%) | - | - | ||
No | 24 (50) | 24 (50) | ||
Yes | 2 (50) | 2 (50) | ||
MVPA time proportion (%) | 0.16 ± 0.04 | 0.15 ± 0.04 | −0.01, 0.04 | 0.207 |
MVPA time proportion (%) | - | 0.154 | ||
<16% | 13 (41) | 19 (59) | ||
≥16% | 13 (65) | 7 (35) |
Model a | Obesity | WHtR ≥ 0.50 | WC ≥ 90th | BF% ≥ 75th | ||||||||
---|---|---|---|---|---|---|---|---|---|---|---|---|
OR | 95% CI | p-Value | OR | 95% CI | p-Value | OR | 95% CI | p-Value | OR | 95% CI | p-Value | |
1 | 3.17 | 0.99, 10.10 | 0.051 | 2.57 | 0.82, 8.04 | 0.104 | 2.11 | 0.68, 6.51 | 0.194 | 3.98 | 1.09, 14.58 | 0.037 |
2 | 3.62 | 1.02, 12.93 | 0.047 | 2.75 | 0.81, 9.40 | 0.106 | 2.28 | 0.68, 7.66 | 0.181 | 4.54 | 1.09, 18.86 | 0.037 |
3 | 4.25 | 1.09, 16.53 | 0.037 | 3.26 | 0.88, 12.08 | 0.077 | 2.52 | 0.71, 9.00 | 0.154 | 6.14 | 1.29, 29.10 | 0.022 |
Variable | Unadjusted Model | Adjusted Model b | ||||
---|---|---|---|---|---|---|
OR | 95% CI | p-Value | OR | 95% CI | p-Value | |
More protein intake a | 0.44 | 0.14, 1.38 | 0.161 | 0.42 | 0.13, 1.39 | 0.155 |
More proportion of meals with screen | 2.58 | 0.84, 7.91 | 0.098 | 2.55 | 0.80, 8.15 | 0.114 |
Less proportion of meals with social interaction | 2.71 | 0.85, 8.64 | 0.091 | 2.73 | 0.82, 9.08 | 0.102 |
More MVPA time | 0.79 | 0.21, 3.02 | 0.734 | 0.63 | 0.14, 2.89 | 0.549 |
Less MVPA proportion | 2.71 | 0.85, 8.64 | 0.091 | 2.94 | 0.84, 10.30 | 0.091 |
Screen time and protein intake proportion | ||||||
Less screen time + More protein intake | Ref. | Ref. | ||||
Less screen time + Less protein intake | 3.33 | 0.47, 23.47 | 0.227 | 4.29 | 0.56, 33.06 | 0.163 |
More screen time + More protein intake | 4.80 | 0.68, 33.80 | 0.115 | 5.76 | 0.75, 44.04 | 0.091 |
More screen time + Less protein intake | 7.43 | 1.23, 45.01 | 0.029 | 9.57 | 1.31, 70.14 | 0.026 |
Screen time and proportion of meals with screen | ||||||
Less screen time + Less proportion of meals with screen | Ref. | Ref. | ||||
Less screen time + More proportion of meals with screen | 1.87 | 0.28 12.46 | 0.515 | 2.01 | 0.29, 13.83 | 0.477 |
More screen time + Less proportion of meals with screen | 2.50 | 0.52, 11.93 | 0.251 | 2.69 | 0.53, 13.61 | 0.231 |
More screen time + More proportion of meals with screen | 6.00 | 1.26, 28.55 | 0.024 | 6.40 | 1.22, 33.61 | 0.028 |
Screen time and proportion of meals with social interaction | ||||||
Less screen time + More proportion of meals with social interaction | Ref. | Ref. | ||||
Less screen time + Less proportion of meals with social interaction | 1.00 | 0.16, 6.26 | 1.000 | 0.93 | 0.14, 6.20 | 0.937 |
More screen time + More proportion of meals with social interaction | 1.14 | 0.18, 7.28 | 0.888 | 1.12 | 0.17, 7.42 | 0.906 |
More screen time + Less proportion of meals with social interaction | 6.00 | 1.08, 33.38 | 0.041 | 5.90 | 1.01, 34.59 | 0.049 |
Screen time and MVPA time | ||||||
Less screen time + More MVPA time | Ref. | Ref. | ||||
Less screen time + Less MVPA time | 0.00 | 0.00, Inf | - | 0.00 | 0.00, Inf | - |
More screen time + More MVPA time | 2.48 | 0.70, 8.74 | 0.159 | 2.77 | 0.70 10.95 | 0.147 |
More screen time + Less MVPA time | 3.43 | 0.65, 18.22 | 0.148 | 4.19 | 0.66 26.40 | 0.127 |
Screen time and MVPA proportion | ||||||
Less screen time + More MVPA proportion | Ref. | Ref. | ||||
Less screen time + Less MVPA proportion | 1.87 | 0.28, 12.46 | 0.515 | 2.18 | 0.30, 15.56 | 0.439 |
More screen time + More MVPA proportion | 2.50 | 0.35, 18.04 | 0.364 | 3.31 | 0.38, 29.15 | 0.281 |
More screen time + Less MVPA proportion | 4.44 | 1.08, 18.36 | 0.039 | 5.21 | 1.11, 24.43 | 0.037 |
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Liu, Y.; Wang, K.-X.; Zhou, Y.-X.; Yan, S.-Y.; Hebestreit, A.; Wang, H.-J. Wearable Camera-Based Objective Screen Time and Its Combined Associations with Dietary and Physical Activity Factors in Relation to Childhood Obesity. Nutrients 2025, 17, 2990. https://doi.org/10.3390/nu17182990
Liu Y, Wang K-X, Zhou Y-X, Yan S-Y, Hebestreit A, Wang H-J. Wearable Camera-Based Objective Screen Time and Its Combined Associations with Dietary and Physical Activity Factors in Relation to Childhood Obesity. Nutrients. 2025; 17(18):2990. https://doi.org/10.3390/nu17182990
Chicago/Turabian StyleLiu, Yi, Ke-Xin Wang, Yu-Xi Zhou, Shi-Yu Yan, Antje Hebestreit, and Hai-Jun Wang. 2025. "Wearable Camera-Based Objective Screen Time and Its Combined Associations with Dietary and Physical Activity Factors in Relation to Childhood Obesity" Nutrients 17, no. 18: 2990. https://doi.org/10.3390/nu17182990
APA StyleLiu, Y., Wang, K.-X., Zhou, Y.-X., Yan, S.-Y., Hebestreit, A., & Wang, H.-J. (2025). Wearable Camera-Based Objective Screen Time and Its Combined Associations with Dietary and Physical Activity Factors in Relation to Childhood Obesity. Nutrients, 17(18), 2990. https://doi.org/10.3390/nu17182990