Cautiously optimistic: paediatric critical care nurses' perspectives on data-driven algorithms in low-resource

Margot Rakers1,2, Daniel Mwale3, Lieke de Mare4

  • 1Department of Public Health and Primary Care, Leiden University Medical Center, Albinusdreef 2, Leiden, 2333 ZA, The Netherlands.

PubMed

Insights

Nurses in low-resource settings (LRS) see potential in data-driven algorithms to predict patient deterioration and improve critical care. User-centered design is key for developing effective, integrated monitoring systems.

Area of Science:

  • Critical Care Nursing
  • Health Informatics
  • Human-Computer Interaction

Background:

  • Paediatric critical care nurses in low-resource settings (LRS) face challenges in early detection of patient deterioration.
  • Data-driven algorithms in patient monitors can optimize scarce resources and improve care delivery.
  • Poor algorithm design and workflow integration hinder the successful implementation of monitoring systems.

Purpose of the Study:

  • To explore nurses' perspectives on data-driven algorithms for patient monitoring in LRS.
  • To inform the development of a user-friendly interface for continuous vital signs monitoring.
  • To guide the integration of algorithms into critical care systems in resource-limited environments.

Main Methods:

  • Human-centered design methods, including contextual inquiry and semi-structured interviews, were employed in Malawi.
  • Co-creation methods and prototyping were used to design a user interface prototype.
  • Qualitative content analysis was used to analyze data from workflow observations and interviews.

Main Results:

  • Nurses highlighted workload, patient prioritization, and guardian interaction as key themes.
  • Predictive algorithms are valued for anticipating deterioration, requiring integration of algorithm output, monitoring data, and clinical condition.
  • Nurses preferred familiar scoring systems with color codes and visual representations of score changes, emphasizing trust, usability, and context specificity.

Conclusions:

  • Nurses in LRS perceive data-driven algorithms as beneficial for predicting patient deterioration and enhancing critical care.
  • Translating nurses' perspectives into design strategies is crucial for effective algorithm development and implementation.
  • Actionable pre-implementation recommendations were developed for deploying data-driven algorithms in LRS.
Abstract

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