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Height-for-age and weight-for-age growth charts for Pakistani infants under six months: derived from a novel case
Muhammad Aasim1,2, Sohail Chand3
1NHRC, NIH (HRI) Research Centre, Shaikh Zayed Medical Complex, Lahore, Pakistan. aasim.phrc@gmail.com.
Insights
This study developed indigenous growth charts for Pakistani children aged 0-6 months using the Novel Case Selection Method and Multiple Indicator Cluster Survey data. The new charts show lower trajectories compared to WHO standards, offering a vital tool for child health monitoring.
Area of Science:
- Pediatrics
- Public Health
- Biostatistics
Background:
- Growing need for indigenous growth charts, especially for infants, following WHO multicenter growth study.
- Pakistan lacks indigenous growth charts for children under two, particularly exclusively breastfed infants (0-6 months).
- Data acquisition challenges in low-income countries necessitate efficient methods like the Multiple Indicator Cluster Survey (MICS).
Purpose of the Study:
- To propose methods for generating selection variables using the "Novel Case Selection Method."
- To select and fit appropriate statistical models to MICS data for developing standard growth charts.
- To create indigenous growth charts for Pakistani children aged 0-6 months.
Main Methods:
- Utilized data from the Multiple Indicator Cluster Survey (MICS-6) in Pakistan.
- Applied the "Novel Case Selection Method" to select 3,655 children aged 0-6 months from MICS-6.
- Employed the gamlss package (RefCurv_0.4.2) with Box Cox Power Exponential (BCPE) family and penalized splines (ps) for model fitting, optimizing with Bayesian Information Criterion (BIC) and Akaike Information Criteria (AIC).
Main Results:
- Selected 3,540 children for weight-for-age (W/A) and 3,515 for height-for-age (H/A) charts after data cleaning.
- The BCPE family with penalized splines (ps) provided the best fit for all four W/A and H/A curves (male/female).
- Indigenous fitted standard curves for Pakistan showed lower trajectories compared to WHO standards.
Conclusions:
- The study successfully developed indigenous growth charts for Pakistani infants using the Novel Case Selection Method and MICS data.
- The methodology offers a viable approach for creating tailored growth charts in low- and middle-income countries.
- The resulting charts provide valuable tools for policymakers and clinicians, awaiting further validation.
Background:
In the past two decades, there has been a growing recognition of the need to establish indigenous standards or reference growth charts, particularly following the WHO multicenter growth study in 2006. The availability of accurate and reliable growth charts is crucial for monitoring child health. The choice of an appropriate model for constructing growth charts depends on various data characteristics, including the distribution's tails and peak. While Pakistan has reported some reference growth charts, there is a notable absence of indigenous charts for children under two years of age, especially for infants aged 0-6 months who are exclusively breastfed. Additionally, acquiring data poses a significant challenge, particularly for low-income countries, as it demands substantial resources such as finances, time, and expertise. The Multiple Indicator Cluster Survey (MICS) constitutes a large-scale national survey conducted periodically in low-income countries under the auspices of UNICEF. In this study, we propose methods for generating selection variables utilizing the "Novel Case Selection Method," as previously published. Further our approach enables to select and fit appropriate model to the MICS data, selected, and to develop the standard growth charts.
Methods:
Out of the 11,478 children under 6 months of age included in MICS-6 (Pakistan), 3,655 children (1,831 males and 1,824 females) met the specified criteria and were selected using the "Novel Case Selection Method". The sample was distributed across provinces as follows: 841 (23.0%) from KPK, 1,464 (40.1%) from Punjab, 819 (22.4%) from Sindh, and 531 (14.5%) from Balochistan. This sample encompassed both rural (76.4%) and urban (23.6%) populations. Following data cleaning and outlier removal, a total of 3,540 records for weight (1,768 males and 1,772 females) and 3,515 records for height (1,759 males and 1,756 females) were ultimately available for the development of standard charts. The Bayesian Information Criterion (BIC) was employed to determine the optimal degrees of freedom for L, M, and S using RefCurv_0.4.2. Three families within the gamlss class-namely, Box Cox Cole and Green (BCCG), Box Cox T (BCT), and Box Cox Power Exponential (BCPE)-were applied, each with three smoothing techniques: penalized splines (ps), cubic splines (cs), and polynomial splines (poly). The best-fitted model was selected from these nine combinations based on the Akaike Information Criteria.
Results:
The Novel Case Selection Method yielded 3655 cases as per criteria. After cleaning the data, this method lead to selection of 3540 children for "weight for age" (W/A) and 3515 children for "height for age" (H/A). The "BCPE" family and "ps" as smoothing method proved to be best on AIC for all four curves, i.e. the W/A male, W/A female, H/A male, and H/A female. The optimum selected degrees of freedom for the curve "W/A", for both genders were (M = 1, L = 0, S = 0). The optimum degrees of freedom for H/A male were again (M = 1, L = 0, S = 0), but for females the selected degrees of freedom were (M = 1, L = 1, S = 1). The indigenous fitted standard curves for Pakistan were on lower trajectory in comparison to WHO standards.
Conclusion:
This study uses the Novel Case Selection Method with introduced algorithms to construct tailored growth charts for lower and middle-income countries. Leveraging extensive MICS data, the methodology ensures representative national samples. The resulting charts hold practical value and await validation from established data sources, offering valuable tools for policy makers and clinicians in diverse global contexts.
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