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Characterization of high healthcare utilizer groups using administrative data from an electronic medical record
Sheryl Hui-Xian Ng1, Nabilah Rahman1, Ian Yi Han Ang2
1Centre for Health Services and Policy Research, Saw Swee Hock School of Public Health, National University of Singapore and National University Health System, Singapore, Singapore.
Insights
High utilizers (HUs) are diverse and can be segmented by cost and utilization. Segmentation reveals distinct patient needs and persistence patterns, guiding tailored healthcare interventions.
Area of Science:
- Healthcare Management
- Health Services Research
- Patient Segmentation
Background:
- High utilizers (HUs) represent a small patient group with disproportionately high healthcare resource use.
- Identifying persistent HUs is crucial as many interventions fail due to regression to the mean.
- This study segments a hospital population into HU groups using cost and utilization metrics.
Purpose of the Study:
- To segment a hospital-based patient population into distinct high utilizer (HU) groups.
- To analyze the characteristics and persistence patterns of different HU subgroups.
- To inform targeted healthcare policy and interventions for diverse patient needs.
Main Methods:
- Identified index visits for adult patients at an Academic Medical Centre (2006-2012).
- Extracted and aggregated cost, length of stay (LOS), and specialist outpatient clinic (SOC) visits within one year.
- Defined HUs as exceeding the 90th percentile for any metric, creating seven HU groups and one Non-HU group.
Main Results:
- 388,162 patients were analyzed; Cost-LOS-SOC HUs showed highest multi-morbidity and persistence.
- Common conditions varied by group: cardiovascular/cerebrovascular/pneumonia for Cost-LOS/Cost-LOS-SOC, mental health for LOS/LOS-SOC.
- HUs were more likely to persist than Non-HUs, particularly those with high SOC utilization.
Conclusions:
- High utilizers are a diverse group, segmentable by cost and utilization metrics.
- Segmentation reveals differences in demographics, disease profiles, and persistence, enabling tailored care.
- Prioritizing high SOC users for further analysis can improve identification of diverse patient needs and care gaps.
Background:
High utilizers (HUs) are a small group of patients who impose a disproportionately high burden on the healthcare system due to their elevated resource use. Identification of persistent HUs is pertinent as interventions have not been effective due to regression to the mean in majority of patients. This study will use cost and utilization metrics to segment a hospital-based patient population into HU groups.
Methods:
The index visit for each adult patient to an Academic Medical Centre in Singapore during 2006 to 2012 was identified. Cost, length of stay (LOS) and number of specialist outpatient clinic (SOC) visits within 1 year following the index visit were extracted and aggregated. Patients were HUs if they exceeded the 90th percentile of any metric, and Non-HU otherwise. Seven different HU groups and a Non-HU group were constructed. The groups were described in terms of cost and utilization patterns, socio-demographic information, multi-morbidity scores and medical history. Logistic regression compared the groups' persistence as a HU in any group into the subsequent year, adjusting for socio-demographic information and diagnosis history.
Results:
A total of 388,162 patients above the age of 21 were included in the study. Cost-LOS-SOC HUs had the highest multi-morbidity and persistence into the second year. Common conditions among Cost-LOS and Cost-LOS-SOC HUs were cardiovascular disease, acute cerebrovascular disease and pneumonia, while most LOS and LOS-SOC HUs were diagnosed with at least one mental health condition. Regression analyses revealed that HUs across all groups were more likely to persist compared to Non-HUs, with stronger relationships seen in groups with high SOC utilization. Similar trends remained after further adjustment.
Conclusion:
HUs of healthcare services are a diverse group and can be further segmented into different subgroups based on cost and utilization patterns. Segmentation by these metrics revealed differences in socio-demographic characteristics, disease profile and persistence. Most HUs did not persist in their high utilization, and high SOC users should be prioritized for further longitudinal analyses. Segmentation will enable policy makers to better identify the diverse needs of patients, detect gaps in current care and focus their efforts in delivering care relevant and tailored to each segment.
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