Precision Metrics: A Narrative Review on Unlocking the Power of KPIs in Radiology for Enhanced Precision Medicine
Abstract
:1. Introduction
1.1. Diagnostic and Interventional Radiology: An Overview
1.2. Advancing Healthcare: Integrating Radiology with Cutting-Edge Technologies
1.3. Elevating Radiology Quality: Integrating Key Performance Indicators for Precision Medicine
1.3.1. Advancements in Radiology and Their Impact on Quality
- In the broader field of radiology, studies conducted in the past five years account for 32.3% of the total volume (Figure S2).
- Concurrently, within the subset of radiology studies with a specific emphasis on quality, there has been a proportional rise, with these studies comprising 35.2% of the total research output (Figure S3).
1.3.2. The Role of Key Performance Indicators (KPIs) in Ensuring Radiology Quality
1.4. A Narrative Review of KPI Integration in Radiology: Research Necessities and Objectives
- Assess how KPIs contribute to improving diagnostic accuracy, operational efficiency, and patient satisfaction in radiology.(Key question: How do KPIs specifically contribute to improvements in diagnostic accuracy, operational efficiency, and patient satisfaction in radiology?)
- Examine the impact of emerging technologies, particularly AI, on the development and application of KPIs.(Key question: What is the impact of emerging technologies, particularly AI, on the development and effectiveness of KPIs in radiology?)
- Identify research opportunities and areas needing improvement related to KPIs in radiology.(Key question: What are the key research opportunities and areas for improvement in the use of KPIs within radiology?)
- Offer recommendations for optimizing KPIs to drive continuous quality improvement in radiological services.(Key question: What strategies can be recommended to optimize KPIs for driving continuous quality improvement in radiology?)
2. Methods
2.1. Search Strategies
- Radiology;
- Medical imaging;
- Diagnostic imaging;
- CT scan;
- MRI;
- X-ray;
- Ultrasound;
- Nuclear medicine;
- Radiologist;
- Imaging technology;
- Radiographer.
- Key performance indicators;
- KPI metrics;
- Performance measurement;
- Healthcare metrics;
- Data analytics;
- Performance indicators;
- Quality metrics;
- Efficiency metrics;
- Outcome measurement;
- Performance evaluation.
2.2. Assessment Criteria for Study Inclusion
2.3. Assessment Process
2.4. Managing Bias in This Narrative Review
2.5. Selected Studies
3. Results
- Section 3.1.1: Significance of Trend AnalysisSection 3.1.1 emphasizes the importance of examining these trends. It discusses why understanding the trends in KPI usage is crucial for improving the quality of radiology services. This part highlights the need to track how KPIs are evolving and how these metrics are being applied to enhance diagnostic accuracy, efficiency, and patient satisfaction.
- Section 3.1.2: Analysis of TrendsSection 3.1.2 delves into the trends themselves, analyzing the data collected from the PubMed searches. It looks at which KPIs are most commonly studied, how they are used, and what the findings suggest about the current state of the field. This section aims to paint a detailed picture of the landscape of KPI usage in radiology today.
- Section 3.1.3: Interpretation and ImplicationsSection 3.1.3 interprets the trends identified in the previous section and discusses their implications for the future of radiology. This part explores how these trends might influence future practices, what challenges might arise, and how the use of KPIs might need to adapt in response to new technologies or changing patient needs.
- Section 3.2.1: General Findings from the AnalysisSection 3.2.1 summarizes the general findings from this review, highlighting the key observations and categorizing them to provide a clear overview. This section gives a broad view of what this review uncovered about the current use of KPIs in radiology.
- Section 3.2.2: Addressing the Specific AimsSection 3.2.2 goes into detail on how this review addresses the four specific aims of this study, using key questions to guide the discussion.
- −
- Section 3.2.2.1 covers the first aim: Assessing how KPIs contribute to improving diagnostic accuracy, operational efficiency, and patient satisfaction in radiology.Key Question: How do KPIs specifically contribute to improvements in diagnostic accuracy, operational efficiency, and patient satisfaction in radiology?
- −
- Section 3.2.2.2 addresses the second aim: Examining the impact of emerging technologies, such as AI, on the development and application of KPIs.Key Question: What is the impact of emerging technologies, particularly AI, on the development and effectiveness of KPIs in radiology?
- −
- Section 3.2.2.3 discusses the third aim: Identifying research opportunities and areas needing improvement related to KPIs in radiology.Key Question: What are the key research opportunities and areas for improvement in the use of KPIs within radiology?
- −
- Section 3.2.2.4 focuses on the fourth aim: Offering recommendations for optimizing KPIs to drive continuous quality improvement in radiological services.Key Question: What strategies can be recommended to optimize KPIs for driving continuous quality improvement in radiology?
3.1. The Trends in the Studies on KPIs in the Field of Radiology
3.1.1. Why Analyzing Trends in PubMed Research on KPIs Is Crucial
3.1.2. Trends in PubMed Overview
3.1.3. Emerging Implications
3.2. Outcome from the Analysis
3.2.1. General Findings from the Analysis and Categorization
3.2.2. Detailed Answers to the Specific Aims
3.2.2.1. Answer to Specific Aim “Assess How KPIs Contribute to Improving Diagnostic Accuracy, Operational Efficiency, and Patient Satisfaction in Radiology”
3.2.2.2. Answer to Specific Aim “Examine the Impact of Emerging Technologies, Particularly AI, on the Development and Application of KPIs”
3.2.2.3. Answer to Specific Aim “Identify Research Opportunities and Areas Needing Improvement Related to KPIs in Radiology”
3.2.2.4. Answer to Specific Aim “Offer Recommendations for Optimizing KPIs to Drive Continuous Quality Improvement in Radiological Services”
3.3. Limitations and Considerations for Future Research
3.4. Synoptic Diagram of Results
4. Discussion
- The Evolution of Imaging Technologies: This includes the transition from traditional X-ray radiography to advanced modalities such as CT scans, MRIs, PET-CT, and PET-MRI. KPIs are crucial for assessing the performance and quality of these diverse imaging techniques.
- Radiological Safety: Emphasizes minimizing radiation exposure for patients and healthcare providers through stringent protocols, quality assurance programs, and regular safety audits. KPIs measure adherence to these safety standards.
- Integration of New Technologies: Focuses on the incorporation of innovative technologies like artificial intelligence (AI), augmented reality (AR), and virtual reality (VR). KPIs are essential for evaluating their impact on diagnostic accuracy, workflow efficiency, and user satisfaction.
- Telehealth and Digital Health: Covers the adoption of network technologies (but not as additions) for secure image sharing and the expansion of tele-radiology. KPIs evaluate the effectiveness of these digital health technologies in improving access to care and diagnostic efficiency.
- Roles of Radiologists and Radiographers: Highlights the importance of KPIs in optimizing the performance of radiologists and radiographers, focusing on diagnostic accuracy, image quality, patient satisfaction, and procedural efficiency.
- Strategic Initiatives by Associations: Examines how national and international scientific societies promote evidence-based practices, set training standards, and advocate for policy improvements. KPIs provide insights into the effectiveness of these initiatives.
- Section 4.3.1: Analyzes documents from scientific associations focused on digital health and telehealth, including applications relevant to radiology such as tele-radiology. This analysis helps understand how these technologies can be integrated into radiological practices and assessed through appropriate KPIs.
- Section 4.3.2: Reviews documents from scientific associations that concentrate on radiology and radiation protection. This subsection explores how KPIs can be applied to enhance radiological safety and quality assurance practices.
- Section 4.3.3: Outlines future development pathways where KPI definitions will be critical. This includes not only the ongoing integration of AI and advancements in health technology but also new developments in CAD/CAM integration, tele-radiology, and home-based radiology. The section also emphasizes the increasing importance of patient-centered care and economic factors in KPI development.
4.1. KPIs and the Key Areas of Radiology: From Technological Advances to Safety Protocols
4.2. Emerging Insights for Successful KPI Integration and Utilization
- Developing KPIs: Creating and refining KPI frameworks based on theoretical and empirical data.
- Testing and Validating: Evaluating the effectiveness and reliability of KPIs through rigorous research.
- Conducting Research: Exploring new methodologies and technologies to improve KPIs.
- Publishing Findings: Disseminating research to advance understanding and inform practice.
- Collaboration with Healthcare Providers: Ensuring that KPIs are adapted to fit clinical workflows and patient care practices.
- Development of Implementation Strategies: Creating frameworks for the practical application of KPIs, including training and infrastructure adjustments.
- National and International Standardization: Aligning KPI standards across regions to ensure consistency and reliability, requiring coordination with national and international bodies.
- Continuous Monitoring and Adjustment: Regularly evaluating and refining KPIs based on real-world feedback and performance data.
- Standardization of KPIs: Developing and implementing standardized KPIs are essential for achieving consistency and reliability in diagnostic practices. Uniform guidelines help establish clear benchmarks, making it easier to track and compare performance across institutions globally. Walther et al. [25], Tanguay et al. [26], and Teichgräber et al. [29] advocate for this approach, which necessitates national and international collaboration to create and enforce these standards. National radiological societies and international organizations, such as the Radiological Society of North America (RSNA) and the European Society of Radiology (ESR), should spearhead these efforts to ensure widespread adoption and adherence.
- Integration of Advanced Technologies: The integration of advanced technologies, including artificial intelligence (AI) enhances KPI precision and provides real-time monitoring capabilities. This integration facilitates more accurate data collection and performance tracking. Fayemiwo et al. [28] highlight the importance of incorporating these technologies into KPI frameworks. National health organizations and international bodies should support initiatives that promote the integration of these technologies through grants, research collaborations, and shared technological platforms.
- Utilization of Performance Dashboards: Performance dashboards are instrumental in visualizing KPIs, offering real-time insights, and facilitating data-driven decision-making. Karami and Safdari [40] and Karami [44] demonstrate the effectiveness of these tools. The development and adoption of standardized performance dashboards could be promoted through international consortia and national radiology associations, which can provide guidelines and best practices for implementing these tools across various healthcare settings.
- Adoption of Quality Improvement Programs (QIPs): Quality improvement programs (QIPs) are vital for the continuous enhancement in radiological services. Patel et al. [38] and Pourmohammadi et al. [36] emphasize the need for regular assessment and refinement in KPIs through QIPs. National and international radiology organizations should advocate for the establishment of QIPs, provide training resources, and facilitate knowledge exchange to ensure effective implementation and continuous quality improvement.
- Focus on Patient-Centered Metrics: Aligning KPIs with patient outcomes and satisfaction is crucial for ensuring that quality improvement efforts are patient-focused. Nason et al. [32] and Heilbrun et al. [34] highlight the importance of this alignment. National health agencies and international organizations should lead initiatives that promote the development of patient-centered KPIs, ensuring that these metrics are integrated into clinical practice guidelines and quality assessment frameworks.
- Establishment of Monitoring and Feedback Mechanisms: Continuous monitoring and feedback are essential for identifying and addressing performance issues. Shultz et al. [41] and Raj et al. [35] underscore the significance of these mechanisms. National and international radiological societies should develop and support systems for ongoing monitoring and feedback, facilitating the early identification of performance issues and driving improvements across the field.
- Enhancement in Education and Training: Effective education and training impact the successful implementation of KPIs. Rubin et al. [39] emphasize the importance of up-to-date training and knowledge. National radiology boards and international educational organizations should prioritize the development of comprehensive training programs and resources, ensuring that radiologists and radiographers are equipped with the skills needed to implement and utilize KPIs effectively.
- Emphasis on Safety and Quality Assurance: Maintaining high safety and quality standards is essential for building patient trust and improving care. The European Society of Radiology [31] and Blakeley et al. [46] stress the need for a strong focus on safety and quality assurance. National and international initiatives should include rigorous safety and quality assurance programs, promoting adherence to best practices and ensuring continuous improvement in radiological services.
- Standardization and Integration: Ensuring KPIs are standardized and integrated requires coordinated actions from both national and international organizations to provide a cohesive framework for application.
- Advanced Technologies: Emphasizing the role of advanced technologies like AI can enhance the effectiveness of KPIs, but requires collaborative support and resources.
- Patient-Centered Focus: Aligning KPIs with patient outcomes ensures that improvements are directly beneficial to patient care.
- Continuous Improvement: Effective monitoring, feedback, education, and safety measures are crucial for the ongoing enhancement and successful integration of KPIs into healthcare systems.
4.3. A Guard to International Documents Provided by National and International Bodies
4.3.1. Focus on Digital Health and Telehealth Integration
4.3.2. Focus on Radiology Entities/Institutions
- Service’s Accessibility: Measures the ease with which patients can access radiology services, including appointment availability, scheduling efficiency, and convenience for patients.
- Exam Prescription Adequacy: Evaluates the appropriateness and quality of exam prescriptions based on guidelines and clinical needs.
- Exam Process: Focuses on the efficiency and effectiveness of the radiology exam process from start to finish, including wait times, exam duration, and report turnaround times.
- Report: Assesses the quality and completeness of radiology reports provided to referring physicians and patients.
- Results: Measures the impact of radiology services on patient outcomes, treatment decisions, and satisfaction.
- Safety: Focuses on patient safety measures during radiology procedures and radiation protection protocols.
- Contribution to the Institution: Evaluates how the radiology department contributes to the overall institution through administrative roles, leadership positions, and certifications.
- Patient Safety and Quality of Care: Metrics such as the number of falls and compliance rates with hand hygiene protocols.
- Customer Service: Assessment of patient, employee, and system-wide satisfaction with departmental services, often measured through patient satisfaction surveys.
- Operation Management and Utilization: The evaluation of operational efficiency, including patient throughput, resource utilization, and examination durations.
- Information Technology: Monitoring the state of information technology infrastructure, such as downtime durations for the Picture Archiving and Communication System (PACS).
- Innovation: Development of new programs and initiatives, reflected in metrics like the number of new patent applications.
- Education: The provision of training and credentialing for clinical and nonclinical staff, measured by the number of continuing education units awarded.
- Research: Measurement of research productivity within the department, including the number of research papers published.
- Financial Management: The evaluation of financial performance, such as gross revenue and technical relative value units.
4.3.3. Reflection on Future Directions
4.4. Synoptic Diagram of Discussion
4.5. Limitations
5. Conclusions and Future Research Directions
5.1. Conclusions
5.2. Future Research Directions and Limitations
- Access to Documents: The availability of certain documents was limited, particularly those not accessible through common scientific publication databases. Expanding access to diverse sources could enhance the scope and depth of future analyses.
- Web Searches: The use of web searches to gather documents provided a broad overview, but accessing additional detailed guidelines and practices could offer a more nuanced understanding.
- Multi-Level Contact: Establishing direct connections with scientific associations and organizations can enrich this review with more comprehensive documentation and insights.
Supplementary Materials
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
References
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Research Focus | Search Strategy |
---|---|
Basic Integration of KPIs in Radiology | (Radiology OR Medical imaging OR Diagnostic imaging OR CT scan OR MRI OR X-ray OR Ultrasound OR Nuclear medicine OR Radiologist OR Imaging technology OR Radiographer) AND (Key performance indicators OR KPI metrics OR Performance measurement OR Healthcare metrics OR Data analytics OR Performance indicators OR Quality metrics OR Efficiency metrics OR Outcome measurement OR Performance evaluation) |
Focus on Diagnostic Imaging and KPIs | (CT scan OR MRI OR X-ray OR Ultrasound OR Nuclear medicine) AND (Key performance indicators OR KPI metrics OR Performance measurement OR Quality metrics OR Efficiency metrics) |
Performance Measurement in Radiological Practices | (Radiology OR Diagnostic imaging OR Imaging technology) AND (Performance measurement OR Healthcare metrics OR Data analytics OR Performance evaluation) |
Quality Metrics in Radiology | (Radiology OR Medical imaging OR Diagnostic imaging OR Imaging technology) AND (Quality metrics OR Key performance indicators OR KPI metrics OR Outcome measurement) |
Evaluating Efficiency in Radiology | (CT scan OR MRI OR X-ray OR Ultrasound OR Nuclear medicine OR Radiologist) AND (Efficiency metrics OR Performance indicators OR Performance evaluation OR Data analytics) |
Comprehensive Review of KPIs and Radiology | (Radiology OR Medical imaging OR Diagnostic imaging OR CT scan OR MRI OR X-ray OR Ultrasound OR Nuclear medicine OR Radiologist OR Imaging technology OR Radiographer) AND (Key performance indicators OR KPI metrics OR Performance measurement OR Healthcare metrics OR Data analytics OR Quality metrics OR Efficiency metrics OR Outcome measurement OR Performance evaluation) |
Radiology and Outcome Measurement | (Radiology OR Diagnostic imaging OR Imaging technology) AND (Outcome measurement OR KPI metrics OR Quality metrics OR Performance indicators) |
Impact of KPIs on Radiological Workflow | (Radiology OR CT scan OR MRI OR X-ray OR Ultrasound) AND (Performance measurement OR KPI metrics OR Efficiency metrics OR Data analytics) |
Healthcare Metrics in Radiological Settings | (Radiology OR Imaging technology OR Medical imaging OR Diagnostic imaging) AND (Healthcare metrics OR Key performance indicators OR Quality metrics OR Performance evaluation) |
Evaluating Diagnostic Accuracy and KPIs | (Diagnostic imaging OR CT scan OR MRI OR X-ray OR Ultrasound) AND (Diagnostic accuracy OR Performance measurement OR KPI metrics OR Data analytics) |
Study | Key Points | The Role of KPIs in the Study |
---|---|---|
Harvey et al. (2023) [24] | The ransomware attack on the Irish health service in May 2021 had profound consequences, particularly for CTI and its affiliated clinical trial units. KPIs, such as patient referrals and trial recruitment, plummeted by 85% and 55%, respectively, underlining the severe disruption to clinical operations. The attack compromised critical radiology and radiotherapy systems across affected hospitals, highlighting vulnerabilities in healthcare IT infrastructure. These events underscore the critical imperative for enhanced cybersecurity measures to safeguard patient care continuity and the integrity of clinical trials against future cyber threats. | A questionnaire was distributed to the units within the CTI group; this examined KPIs for a period of 4 weeks before, during, and after the attack. |
Walther et al. (2023) [25] | In radiology, assessing the appropriateness of diagnostic imaging is crucial for quality care but lacks standardized measurement guidelines. The scoping review shows a significant variability in methodologies and criteria used across studies, highlighting the need for unified, rigorous approaches to establish reliable KPIs. | The scoping review aims to explore the definition, measures, methods, and data utilized in the analysis of appropriateness in diagnostic imaging research, a critical key performance indicator in radiology. |
Tanguay et al. (2023) [26] | AI software is advancing quickly in radiology, with ongoing development and validation alongside new applications. However, there is a critical need for standardized protocols to assess AI software before and after it enters clinical practice. This formalization is essential to ensure patient safety, seamless integration into clinical workflows, and efficient allocation of AI development resources. Proposed frameworks aim to establish clear communication with the AI industry, equipping healthcare decision-makers and radiologists with tools to evaluate software effectively and foster a radiologist-led validation network. | The KPIs play a crucial role in this study by providing measurable metrics to assess the performance and impact of AI software in radiology. |
Wihl et al. (2021) [27] | MDT meetings in cancer care aim to integrate comprehensive case information, but patient-related details are often under-represented, impacting decision-making. Researchers used a specific tool to assess case presentation quality and team contributions in three MDTs. Radiology information received the highest scores in MDT case discussions, emphasizing its critical role in informing clinical decisions for patients with brain tumors, soft tissue sarcomas, and hepatobiliary cancers. | The KPIs in this study serve to measure the effectiveness and quality of the decision-making processes within the MDT meetings in cancer care. |
Fayemiwo et al. (2021) [28] | This study utilized Deep Transfer Learning models, specifically fine-tuned VGG-16 and VGG-19 Convolutional Neural Networks, to classify COVID-19 from chest X-ray images with high accuracy. This underscores their significant role in enhancing radiological diagnostics during the pandemic, surpassing existing models in accuracy and reliability. | The KPIs involve accuracy metrics such as MCC and Kappa values, assessing the effectiveness of Deep Transfer Learning models (VGG-16 and VGG-19) in classifying COVID-19 from chest X-ray images. |
Teichgräber et al. (2021) [29] | The study developed a BSC for radiology that focuses on aligning strategic goals with the needs of referring physicians and the requirements of patients. Key components include a SWOT analysis to identify success factors, core values that emphasize high quality, and a structured value chain for radiology processes. The implementation included the creation of a strategy map to visualize cause-and-effect relationships and an automated KPI cockpit to continuously monitor and manage 18 daily and 10 annual KPIs to ensure strategic alignment and operational efficiency in radiology. | The KPIs play a central role in this study, as they serve as quantifiable metrics that measure the effectiveness and success of strategic goals in the radiology department. |
Al Shawan (2021) [30] | In this study, a mixed methods approach was used to assess quality improvement and provider perceptions at King Fahd Hospital, College of the University in Khobar, Saudi Arabia. The quantitative analysis showed that there were improvements in outliers in radiology reporting after accreditation. Providers perceived accreditation positively but expressed concerns about workload and potential bias in performance metrics, highlighting the need for continuous improvement in radiology procedures during accreditation cycles. | The KPIs play a crucial role in evaluating the effectiveness of the accreditation process and its impact on quality improvement at King Fahd Hospital of Khobar University. Specifically, the KPIs were instrumental in assessing 12 quality outcomes, including those related to radiology. |
European Society of Radiology (2020) [31] | The European Basic Safety Standards Directive 2013/59/Euratom [50] reshaped the legal framework for the use of ionizing radiation in medical imaging and radiotherapy and set strict safety and quality standards across Europe. Launched in 2014, the EuroSafe Imaging Initiative supports these objectives through comprehensive approaches such as the Guide to Clinical Audit in Radiology and the monitoring of KPIs that ensure continuous improvement and compliance with radiation protection guidelines. | The role of KPIs is to facilitate the continuous monitoring and evaluation of relevant parameters in radiology departments. |
Nason et al. (2020) [32] | This review highlights that radiologists play a central role in the regionalization of testis cancer care by ensuring standardized imaging protocols and accurate diagnostic assessments. The introduction of KPIs in radiology is essential to monitor the quality of imaging and support multidisciplinary team discussions for optimal patient management in centralized models of care. | The KPIs play a crucial role in assessing the quality and effectiveness of regionalized testis cancer care. |
Dick et al. (2021) [33] | In a global survey of radiology quality improvement programs conducted by the American College of Radiology’s International Economics Committee, different approaches were found in different countries. Common initiatives such as imaging adequacy and disease registries were widespread, while KPIs, peer reviews, and equipment accreditation were common, highlighting efforts to standardize and improve radiology practices worldwide. The study emphasized the need for further guidance from national and international bodies to promote consistency and optimize patient care in radiology. | In the study on quality improvement programs in radiology, KPIs play a crucial role as they were among the most frequently mentioned quality initiatives (83.3%). |
Heilbrun et al. (2020) [34] | In this observational study, the effects of residents in diagnostic radiology on turnaround times and total costs were analyzed. It was found that turnaround times are slower, but that after-hours care by residents is faster. The presence of residents has a significant impact on radiology workflows and the efficiency of patient care, highlighting the complexity of the relationship between training costs and operational outcomes in healthcare. | In the study, KPIs were used to assess the efficiency of radiology services and compare the performance of residents and attending physicians, providing important insights into the operational dynamics of a radiology department. |
Raj et al. (2019) [35] | Radiology played a critical role in trauma management at CWM Hospital (Fiji), with significant challenges during off-hours due to the absence of an onsite CT radiographer. The study underscores the need for improvements in trauma call processes, suggesting onsite radiographer availability and enhanced trauma team training for better patient outcomes and operational efficiency. | The KPIs such as time to the CT scan and trauma team assembly benchmarks were pivotal in assessing operational efficiency and identifying areas for improvement in trauma care at CWM Hospital. |
Pourmohammadi et al. (2018) [36] | The study summarized the findings using the Best Fit Framework Synthesis Method, identifying efficiency/productivity, effectiveness, and finance as integral to the evaluation of hospital performance. Hospital performance management is complex and multidimensional, with each dimension having a particular importance. Selecting the most appropriate indicators is therefore the key to a comprehensive performance evaluation system. | The KPIs such as turnaround times and equipment utilization are pivotal for assessing radiology department performance within the broader institutional context. |
Obaro et al. (2018) [37] | CTC serves as a less invasive screening method for colorectal cancer, with detection rates for advanced adenomas comparable to colonoscopy. Large-scale European trials have confirmed CTC’s efficacy in population screening. To ensure successful implementation, clinical management pathways based on initial CTC findings are crucial. Additionally, ongoing research focuses on radiologist training, quality assurance, and cost-effectiveness evaluations. | The KPIs on CTC for colorectal cancer screening help assess and optimize factors like test accuracy, uptake, quality assurance, and cost-effectiveness, crucial for evaluating its effectiveness in population screening. |
Patel et al. (2017) [38] | In the study, the focus is on cultivating a quality culture within imaging services by integrating a quality improvement program. This program utilizes tools such as quality indicators, standard operating procedures, and Plan–Do–Study–Act cycles to identify and address process bottlenecks. The study identified seventeen KPIs spanning safety, process improvement, professional outcomes, and satisfaction. These findings underscore the significance of continuous quality improvement in diagnostic services to effectively meet the needs of both staff and end-users. | The KPIs play a critical role in assessing and monitoring the effectiveness of the quality improvement program across safety, process improvement, professional outcomes, and satisfaction domains, ensuring continuous quality enhancement in imaging services. |
Rubin et al. (2017) [39] | RadiologyInfo.org, a comprehensive public information portal, provides over 220 multimedia resources to educate patients and raise awareness about radiology’s crucial role in healthcare. The site’s strategic planning, informed by user surveys, stakeholder interviews, and usability testing, has led to significant improvements, including website redesign, integrated video content, and the establishment of a robust affiliate network. | The KPIs serve to measure and track progress towards enhancing patient-centered content and ensuring the sustainability of RadiologyInfo.org as a vital educational resource in radiology. |
Karami and Safdari (2016) [40] | In this study, a dashboard for medical imaging department performance indicators is developed and implemented. The process involved expert rating of indicators, determination of user interface requirements, and successful implementation of a prototype dashboard. The project identified 92 medical imaging department indicators and 53 main user interface requirements, emphasizing the significance of management information and data interoperability standards in designing effective radiology management dashboards. | The identified KPIs play a crucial role in measuring and visualizing the performance of the medical imaging department. They guide the development, implementation, and evaluation of the dashboard, ensuring effective management and operational insights. |
Schultz et al. (2016) [41] | Beaumont’s radiation safety program integrates a diverse range of services, including diagnostic radiology, nuclear medicine, interventional radiology, various radiation therapies, and research activities. By implementing seven KPIs, Beaumont leverages objective numerical data to establish benchmarks for evaluating and improving the effectiveness and quality of its radiation safety programs over more than a decade of systematic data collection and analyses. | The KPIs outlined in this study serve as objective benchmarks for assessing and comparing the effectiveness and quality of radiation safety programs across Beaumont’s multiple-hospital system. These KPIs facilitate continuous improvement efforts and ensure compliance with regulatory standards. |
Khalifa and Zabani (2016) [42] | King Faisal Specialist Hospital in Saudi Arabia developed 34 KPIs categorized into input, throughput, and output components to comprehensively monitor and improve ER performance. Radiology plays a crucial role in the ER performance metrics with KPIs focusing on the turnaround time for radiological services to support timely diagnoses and treatment. | The KPIs cover critical aspects such as patient acuity, wait times, staff ratios, turnaround times for essential services, and bed availability, aiming to enhance efficiency and patient outcomes in the ER setting. |
Harvey et al. (2016) [43] | This review highlights the significance of KPIs in healthcare QA, presenting a framework for structuring KPIs, methods for their identification and customization, and strategies for analyzing and communicating KPI data to enhance process improvement. Implementing a KPI-driven QA program not only improves patient care but also enables radiology operations to showcase measurable value to healthcare stakeholders. | The role of KPIs is to enable efficient monitoring, evaluation, and improvement in radiology service quality, facilitating alignment with healthcare quality norms and enhancing overall operational effectiveness and patient care outcomes. |
Karami (2016) [44] | This study presents a systematic approach to creating radiology dashboards, which involves identifying 92 KPIs for monitoring departmental performance and quality across services, clients, personnel, and financial aspects. The implementation of prototype dashboards showcases potential benefits in enhancing operational efficiency, productivity, and service quality within the radiology department, supporting informed decision-making and performance enhancement strategies. | The KPIs function as measurable metrics that inform the design, implementation, and evaluation of radiology dashboards, with the goal of improving operational performance, productivity, and service quality within the radiology department. |
Abujudeh et al. (2010) [45] | The KPIs are vital metrics used to assess organizational success, tailored to reflect the unique goals and strategies of each entity. In healthcare, including radiology, these metrics are essential for enhancing patient care outcomes and guiding the implementation of best practices aimed at achieving long-term organizational goals and visions. | The KPIs play a vital role by defining, evaluating, and guiding the success and progress of healthcare organizations. Their purpose is to help achieve long-term goals and enhance patient care outcomes. |
Blakeley et al. (2008) [46] | The study demonstrates that implementing a radiographer image reading service in a UK emergency department significantly increased image reading efficiency, reduced turnaround times, and positively impacted patient care and interdisciplinary collaboration, as evidenced by both quantitative and qualitative findings. | The KPIs were used to quantitatively assess the impact of the radiographer image reading service. These KPIs included image reading rates, turnaround times, and diagnostic accuracy. |
Koh et al. [47] | This study emphasizes the development and monitoring of key performance indicators (KPIs) in radiography to enhance quality and safety. Starting with subjective assessments post-supervision, it evolved to include 16 measurable KPIs by 2021. Audits, with a focus on data integrity and analyses, ensure robust performance evaluation. | Evolution from subjective assessments to 16 measurable KPIs; audits ensure rigorous data collection and compliance with targets; KPIs tailored for radiography and aligned with quality and safety standards. |
Sreedharan et al. [48] | The article discusses the implementation of KPI frameworks to evaluate institutional effectiveness in allied healthcare education. It underscores the importance of benchmarking and utilizing KPI dashboards for performance tracking across various healthcare disciplines. | Development of an institutional KPI framework; emphasis on benchmarking and utilization of KPI dashboards for tracking educational outcomes and program effectiveness. |
Lastrucci et al. [49] | It introduces the Skills’ Retention Monitoring (SRH) tool for optimizing radiographers’ work shifts and skill management. This tool uses KPIs to enhance skill monitoring, workload management, and organizational performance, supported by continuous quality improvement measures. | Application of KPIs in optimizing work shifts and skill management; use of KPIs to track competency, workload, and organizational performance; integration with CAWI for feedback and improvement. |
Study | Description | Field/Application of KPIs |
---|---|---|
Harvey et al. (2023) [24] | Impact of ransomware on clinical trial operations; monitoring patient referrals and trial recruitment rates using KPIs. | Cybersecurity in healthcare |
Walther et al. (2023) [25] | Reviewing diagnostic imaging appropriateness; advocating for standardized KPIs to improve decision consistency in radiology. | Diagnostic imaging quality |
Tanguay et al. (2023) [26] | Evaluating AI software in radiology; proposing KPI frameworks for AI performance assessment pre- and post-deployment. | AI integration in radiology workflows |
Wihl et al. (2021) [27] | Assessing multidisciplinary team (MDT) meetings in cancer care; using KPIs to measure decision-making quality. | Cancer care quality |
Fayemiwo et al. (2021) [28] | Using Deep Transfer Learning for COVID-19 diagnoses from chest X-rays; assessing KPIs like accuracy metrics (MCC, Kappa). | AI in pandemic diagnostics |
Teichgräber et al. (2021) [29] | Implementing a Balanced Scorecard (BSC) for radiology; using KPIs to align strategic objectives and monitor operational efficiency. | Strategic management in radiology |
Al Shawan (2021) [30] | Impact of JCI accreditation on radiology quality; using KPIs to measure radiology, reporting outliers and provider perceptions. | Quality improvement in accreditation |
European Society of Radiology (2020) [31] | Compliance with radiation safety standards in European radiology; using KPIs to monitor safety and quality improvements. | Radiation safety and quality |
Nason et al. (2020) [32] | Standardizing imaging protocols in centralized cancer care; using KPIs to monitor imaging quality and team discussions. | Centralized cancer care quality |
Dick et al. (2021) [33] | Global survey of radiology quality improvement programs; highlighting KPIs like imaging adequacy and peer reviews. | Global radiology quality initiatives |
Heilbrun et al. (2020) [34] | Impact of radiology resident training on department efficiency; using KPIs to compare resident versus attending physician performance. | Radiology training impact |
Raj et al. (2019) [35] | Improving trauma management in Fiji; using KPIs like time to the CT scan to enhance emergency radiology services. | Emergency radiology efficiency |
Pourmohammadi et al. (2018) [36] | Evaluating hospital performance indicators; using KPIs like turnaround times and equipment utilization in radiology departments. | Hospital performance management |
Obaro et al. (2018) [37] | Implementing CT colonography for colorectal cancer screening; using KPIs to assess accuracy, uptake, and cost-effectiveness. | Colorectal cancer screening efficacy |
Patel et al. (2017) [38] | Integrating a quality improvement program (QIP) in imaging services; using KPIs across safety, process improvement, and satisfaction domains. | Quality improvement in imaging services |
Rubin et al. (2017) [39] | Impact of RadiologyInfo.org on patient education; using KPIs to measure website effectiveness and user engagement. | Patient education in radiology |
Karami and Safdari (2016) [40] | Developing performance dashboards for medical imaging departments; using KPIs to monitor service, client, personnel, and financial aspects. | Dashboard design for radiology management |
Schultz et al. (2016) [41] | Enhancing radiation safety programs at Beaumont Health; using KPIs to establish benchmarks and ensure compliance with safety standards. | Radiation safety program effectiveness |
Khalifa and Zabani (2016) [42] | Improving ER performance at King Faisal Specialist Hospital; using KPIs to optimize patient flow and radiology service turnaround times. | Emergency room efficiency |
Harvey et al. (2016) [43] | Structuring KPIs for healthcare quality assurance; using frameworks to analyze and improve radiology service quality and patient care outcomes. | Quality assurance in radiology |
Karami (2016) [44] | Designing radiology dashboards; using KPIs to enhance departmental performance across operational efficiency and service quality. | Radiology dashboard performance enhancement |
Abujudeh et al. (2010) [45] | Assessing KPIs in radiology quality initiatives; using metrics to guide organizational success and patient care improvements. | Quality initiatives in radiology |
Blakeley et al. (2008) [46] | Implementing radiographer-led image reading in UK emergency departments; using KPIs to measure efficiency gains and diagnostic accuracy improvements. | Emergency radiology service improvement |
Koh et al. [47] | Importance of using KPIs to enhance radiography performance, evolving from subjective assessments post-supervision to 16 measurable KPIs by 2021. Audits ensure rigorous data collection and analyses. | Radiography, quality improvement, safety |
Sreedharan et al. [48] | Emphasizes KPI development for assessing institutional effectiveness in allied healthcare education. Utilizes KPI dashboards for benchmarking and tracking performance. | Allied healthcare education, performance evaluation |
Lastrucci et al. [49] | Introduces SRH tool for radiographers to optimize work shifts, enhance skill monitoring, and improve organizational performance. Uses CAWI for feedback and emphasizes continuous quality improvement. | Healthcare workforce management, radiography |
Study | Contribution to Diagnostic Accuracy | Contribution to Operational Efficiency | Contribution to Patient Satisfaction |
---|---|---|---|
Harvey et al. [24] | N/A | KPIs assess and enhance operational resilience, being crucial post-cyberattack. | N/A |
Walther et al. [25] | Calls for standardized KPIs to ensure consistency and reliability in diagnostic imaging. | N/A | Aims to improve patient care through better diagnostic imaging practices. |
Tanguay et al. [26] | Establishes KPIs for evaluating AI performance, ensuring reliable diagnostic support. | Improves resource allocation and the integration of AI into workflows. | Enhances patient safety and care through reliable AI diagnostics. |
Wihl et al. [27] | Measures the quality of decision-making in MDT meetings, indirectly affecting diagnostic accuracy. | Identifies gaps in information and processes, improving efficiency. | Better decision-making improves patient outcomes and satisfaction. |
Fayemiwo et al. [28] | Demonstrates high diagnostic accuracy of deep learning models for COVID-19 classification. | N/A | Improved diagnostic accuracy enhances patient outcomes and confidence. |
Teichgräber et al. [29] | KPIs track clinical outcomes, improving diagnostic accuracy through structured monitoring. | Enhances transparency and productivity through the Balanced Scorecard approach. | Aligns practices with stakeholder expectations, improving patient satisfaction. |
Al Shawan [30] | Measures improvements in patient outcomes post-accreditation, indirectly affecting diagnostic accuracy. | Identifies operational efficiencies and challenges in quality improvement. | Enhances quality of care and patient safety through accreditation-driven improvements. |
European Society of Radiology [31] | Introduces KPIs for radiation protection, affecting diagnostic accuracy and safety. | KPIs help monitor and improve radiation safety practices, enhancing operational efficiency. | Ensures that safety standards are met, improving patient trust and satisfaction. |
Nason et al. [32] | Uses KPIs to track care quality and survival rates, impacting diagnostic practices indirectly. | Regionalization improves efficiency and reduces costs through centralized care. | Improves care quality and survival rates, enhancing patient satisfaction. |
Dick et al. [33] | KPIs for imaging appropriateness impact diagnostic accuracy. | Highlights variability in quality programs, suggesting a need for standardized practices. | Aims to standardize practices, indirectly improving patient care and satisfaction. |
Heilbrun et al. [34] | Uses turnaround time (TAT) as a KPI to measure and improve diagnostic report timing and accuracy. | Evaluates the cost and efficiency of resident training for departmental operations. | Faster and more accurate reporting improves patient care and satisfaction. |
Raj et al. [35] | KPIs for trauma call times can impact diagnostic and treatment accuracy in emergencies. | Identifies inefficiencies in trauma team processes, suggesting improvements. | Enhanced trauma response times improve patient outcomes and satisfaction. |
Pourmohammadi et al. [36] | KPIs assess effectiveness and safety, indirectly affecting diagnostic practices. | Evaluates efficiency, effectiveness, and financial aspects for comprehensive performance management. | Improved performance management can enhance patient care and satisfaction. |
Obaro et al. [37] | KPIs like test accuracy and quality assurance improve the effectiveness of CTC in cancer screening. | N/A | Better screening effectiveness and quality assurance improve patient outcomes and satisfaction. |
Patel et al. [38] | KPIs track diagnostic imaging services, indirectly impacting diagnostic accuracy. | Implements QIP to foster continuous improvement and operational efficiency. | Enhanced imaging services and quality improvement contribute to higher patient satisfaction. |
Rubin et al. [39] | Uses KPIs to assess the effectiveness of a public information portal, improving radiology education. | N/A | Educating the public through improved portal content enhances patient engagement and satisfaction. |
Karami and Safdari [40] | Performance dashboards with KPIs provide insights into diagnostic operations. | Enhances operational transparency and decision-making through visualized KPIs. | Improved management and transparency can lead to better patient experiences. |
Shultz et al. [41] | KPIs track radiation safety, indirectly affecting diagnostic accuracy. | Monitors and improves radiation safety practices and program effectiveness. | Better safety practices improve patient trust and satisfaction. |
Khalifa and Zabani [42] | KPIs for ER performance impact diagnostic and treatment accuracy in emergency care. | Improves ER operations through monitoring and managing performance indicators. | Efficient ER operations enhance patient flow and satisfaction. |
Harvey et al. [43] | KPIs for QA in radiology improve diagnostic accuracy by monitoring and responding to quality issues. | Enhances operational efficiency through structured QA frameworks. | Improved QA practices lead to better patient care and satisfaction. |
Karami [44] | Dashboards with KPIs provide detailed insights into diagnostic operations and performance. | Optimizes departmental performance and service quality through KPI monitoring. | Better performance and service quality improve patient satisfaction. |
Abujudeh [45] | KPIs assess and improve diagnostic performance and organizational success. | Supports strategic goals and operational improvements through tailored KPIs. | Enhancing operational efficiency and care quality improves patient satisfaction. |
Blakeley et al. [46] | KPIs show significant improvements in diagnostic accuracy with radiographer-led services. | Enhances ER efficiency through improved image reading services. | Improved diagnostic services and team collaboration lead to higher patient satisfaction. |
Koh et al. [47] | Develops specific KPIs for radiography, improving diagnostic accuracy and system competency. | Enhances operational efficiency through rigorous KPI audits and compliance monitoring. | Better compliance and performance measures improve patient satisfaction. |
Sreedharan et al. [48] | KPIs assess effectiveness in allied healthcare, indirectly affecting diagnostic accuracy. | Establishes KPI frameworks for improved institutional performance and efficiency. | Improved institutional performance can enhance patient satisfaction through better care quality. |
Lastrucci et al. [49] | KPIs monitor skill retention and competencies, impacting diagnostic performance indirectly. | Optimizes work shifts and resource allocation through performance monitoring. | Better management of radiographer competencies and shifts improves patient care and satisfaction. |
Study | Emerging Technologies | Key Focus | Impact on KPIs |
---|---|---|---|
Fayemiwo et al. [28] | Artificial Intelligence (AI) | Deep Transfer Learning frameworks for COVID-19 classification | Enhances diagnostic accuracy for COVID-19 using chest X-rays; KPIs such as Matthews Correlation Coefficient (MCC) measure AI performance. |
Tanguay et al. [26] | Artificial Intelligence (AI) | Framework for evaluating AI software in radiology | Standardizes KPIs to assess AI performance, focusing on patient safety, clinical relevance, and operational efficiency. |
Lastrucci et al. [49] | Artificial Intelligence (AI) | Skills’ Retention Monitoring (SRH) tool for radiographers | Enhances skill tracking and work shift optimization; AI integration can supports KPI tracking and operational performance improvements. |
Nason et al. [32] | Telemedicine | Centralization of cancer care and telemedicine utilization | Improves KPIs related to patient access and timeliness by reducing geographical and administrative barriers. |
Teichgräber et al. [29] | HT (Hight technology) and Standardization (Balanced Scorecard) | Development of a Balanced Scorecard (BSC) for radiology departments | Aligns strategic objectives with performance metrics; enhances transparency and accountability through standardized KPIs. |
Al Shawan [30] | HT and Standardization (JCI Accreditation) | Impact of Joint Commission International (JCI) accreditation on hospital quality | Uses KPIs to track improvements in patient outcomes and operational efficiency post-accreditation. |
Harvey et al. [24] | Cybersecurity | Impact of cyberattacks on cancer trial operations | Highlights the need for resilient KPIs to safeguard against disruptions and enhance operational resilience. |
Walther et al. [25] | HT and Standardization | Variability in diagnostic imaging KPIs | Advocates for uniform guidelines to improve consistency and quality in radiology practices. |
Shultz et al. [41] | HT in Radiation Safety | Evaluation of radiation safety programs | Utilizes KPIs to track and improve safety practices through continuous monitoring and data analyses. |
Patel et al. [38] | HT and Quality Improvement Programs | Implementation of a quality improvement program (QIP) in diagnostic imaging services | Identifies measurable KPIs to foster continuous quality improvement across various domains. |
Study Reference | Key Findings | Emerging Opportunities |
---|---|---|
Harvey et al. [24] | Vulnerability of clinical trials to cyber threats; need for resilient KPIs. | Implementing preparedness plans and resilient KPI frameworks in clinical trial operations. |
Walther et al. [25] | Opportunities for developing standardized KPIs to enhance diagnostic imaging quality and address variability in criteria. | Development of uniform guidelines and robust KPI frameworks for diagnostic imaging in radiology practices. |
Tanguay et al. [26] | KPIs to evaluate AI software performance in radiology. | Defining AI software types and use cases, integrating structured KPIs for AI technologies. |
Wihl et al. [27] | Multidisciplinary team (MDT) meetings in cancer care assessed KPIs. Leadership skills correlated with case presentation quality. | KPIs for MDT showed effectiveness. |
Fayemiwo et al. [28] | A Deep Transfer Learning framework for COVID-19 classification using chest X-ray images has been developed. | Integrate KPIs in diagnostic protocols fostering collaborative AI research for advanced medical imaging technology. |
Teichgräber et al. [29] | Introduction of Balanced Scorecard (BSC) for clinical radiology; 18 KPIs for monitoring. | Adoption of BSC frameworks for strategic alignment and continuous improvement in radiology departments. |
Al Shawan [30] | Impact evaluation of JCI accreditation on quality improvement at a hospital. | Systematic use of KPIs to monitor accreditation outcomes and sustain high standards in healthcare delivery. |
European Society of Radiology [31] | Development of performance indicators for radiation protection in radiology departments. | Continuous monitoring and dashboard visualization of KPIs for enhancing radiation safety practices. |
Nason et al. [32] | Benefits and challenges of centralizing cancer care using KPIs. | Implementing “networks of excellence” models and leveraging telemedicine for improved cancer care outcomes. |
Dick et al. [33] | Global survey on quality improvement programs in radiology; variability in KPI implementation. | Need for national and international guidance to standardize quality programs and optimize patient care in radiology. |
Heilbrun et al. [34] | Cost and efficiency impacts of training radiology residents using TAT as a KPI. | Using TAT as a KPI to assess training costs and optimize departmental efficiency. |
Raj et al. [35] | Evaluation of trauma call system performance using KPIs like time to the CT scan. | Continuous refinement in trauma care processes based on KPI monitoring. |
Pourmohammadi et al. [36] | Synthesis of performance evaluation indicators for public hospitals. | Tailoring KPIs to specific evaluation models and organizational goals for comprehensive hospital management. |
Obaro et al. [37] | Development of KPIs for ER performance; emphasis on patient flow management. | Implementing efficient ER operations through defined KPIs and patient flow metrics. |
Harvey et al. [43] | Importance of KPI-driven QA programs in radiology for quality and efficiency. | Structuring QA frameworks with relevant KPIs to enhance service quality and stakeholder confidence. |
Karami [44] | Design protocol for radiology dashboards using 92 identified KPIs. | Optimizing radiology performance through effective dashboard design and data-driven insights. |
Abujudeh [45] | Role of KPIs in quality initiatives for radiology departments. | Implementing radiology-specific KPIs to support strategic goals and improve patient care outcomes. |
Blakeley et al. [46] | Impact of radiographer-led image reading services on ER efficiency and patient care. | Enhancing ER efficiency and interdisciplinary teamwork through radiographer-led services monitored by KPIs. |
Koh et al. [47] | Evolution of KPIs for radiographers; improvements in quality and safety. | Monitoring compliance and performance improvements through rigorous KPI audits and benchmarks. |
Sreedharan et al. [48] | Framework for KPIs in allied healthcare education to assess institutional effectiveness. | Benchmarking and utilizing KPI dashboards for continuous improvement in allied healthcare education. |
Lastrucci et al. [49] | Introduction of the Skills’ Retention Monitoring (SRH) tool for radiographers; optimizing work shifts. | Enhancing healthcare service delivery and professional development through KPI-based tool deployment. |
Study Reference | Area | Emerging Suggestions for Further Research |
---|---|---|
Harvey et al. [24] | Standardization of KPI Frameworks | Explore the development of universal KPI templates adaptable across diverse healthcare settings. Investigate the impact of standardized KPIs on decision-making and performance benchmarking in global healthcare contexts. |
Walther et al. [25] | Integration of AI Evaluation | Develop standardized KPIs specifically tailored for evaluating AI algorithms in different medical specialties. Investigate the long-term efficacy and clinical outcomes of AI integration guided by robust KPI frameworks. |
Tanguay et al. [26] | Effectiveness of Accreditation Programs | Investigate the evolving role of KPIs in JCI accreditation processes to enhance ongoing quality improvement initiatives. Assess the impact of accreditation on patient outcomes and healthcare quality using refined KPI metrics. |
Wihl et al. [27] | Enhancement in Radiation Protection Practices | Explore innovative KPIs for real-time monitoring of radiation exposure and safety protocols. Investigate the effectiveness of new technologies in enhancing radiation safety guided by advanced KPI frameworks. |
Fayemiwo et al. [28] | Optimization of Cancer Care Centralization | Investigate KPI-driven strategies to optimize centralized cancer care models for improved patient outcomes and healthcare efficiency. Assess the impact of standardized KPIs on equity and access to specialized cancer treatments. |
Teichgräber et al. [29] | Global Standardization of Quality Improvement Programs | Develop a framework for globally standardized KPIs to harmonize quality improvement efforts across diverse healthcare systems. Investigate cross-country variations in KPI implementation and their impact on healthcare outcomes and patient safety. |
Al Shawan [30] | Efficiency in Radiology Training Programs | Investigate novel KPI metrics to assess the long-term impact of radiology residency programs on healthcare quality and patient outcomes. Develop KPI-driven strategies to enhance educational efficiency and clinical preparedness in radiology. |
European Society of Radiology [31] | Refinement in Emergency Care Protocols | Explore KPI-driven approaches to refine trauma care protocols for enhanced emergency department efficiency and patient outcomes. Investigate the role of advanced technologies in optimizing KPIs for trauma care management and response. |
Nason et al. [32] | Enhancement in Public Hospital Management | Investigate innovative KPI metrics to enhance public hospital management strategies and improve healthcare accessibility. Assess the impact of KPI-driven interventions on healthcare equity and patient satisfaction in public hospital settings. |
Dick et al. [33] | Advancements in Screening Technologies | Investigate the efficacy of new KPIs in evaluating emerging screening technologies for early disease detection and prevention. Develop KPI frameworks to assess the long-term impact of screening programs on population health metrics. |
Heilbrun et al. [34] | Continuous Quality Improvement in Imaging Services | Explore novel KPI indicators to drive continuous quality improvement initiatives in imaging services. Investigate the correlation between advanced KPI metrics and enhanced patient outcomes in diagnostic imaging. |
Raj et al. [35] | Public Engagement in Radiology Education | Investigate innovative KPIs to assess the impact of public engagement initiatives on healthcare literacy and patient outcomes. Develop KPI-driven educational strategies to enhance public awareness and involvement in radiology education. |
Pourmohammadi et al. [36] | Development of Performance Dashboards | Investigate advanced KPI metrics for developing user-friendly dashboards in medical imaging. Assess the effectiveness of KPI-driven dashboard designs in enhancing operational efficiency and strategic planning. |
Obaro et al. [37] | Strengthening Radiation Safety Programs | Investigate novel KPI indicators to strengthen radiation safety programs and protocols in healthcare facilities. Assess the impact of advanced KPI metrics on reducing radiation-related risks and improving patient and staff safety outcomes. |
Harvey et al. [43] | Optimization of Emergency Room Operations | Investigate KPI-driven strategies to optimize emergency room operations and patient care pathways. Develop advanced KPI metrics to enhance emergency department efficiency and resource utilization in healthcare settings. |
Karami [44] | Quality Assurance in Radiology Operations | Investigate innovative KPIs for quality assurance in radiology operations to improve service delivery and patient care outcomes. Develop KPI-driven strategies for addressing quality gaps and optimizing clinical workflows in radiological practices. |
Abujudeh [45] | Dashboard Design for Operational Insights | Investigate advanced KPI metrics for designing intuitive dashboards that support data-driven decision-making in healthcare management. Assess the impact of KPI-driven dashboard designs on enhancing operational efficiency and strategic planning. |
Blakeley et al. [46] | Promotion of Quality Initiatives in Radiology Departments | Investigate novel KPI indicators to promote quality initiatives and enhance performance metrics in radiology departments. Assess the effectiveness of KPI-driven strategies in achieving clinical excellence and patient-centered care outcomes. |
Koh et al. [47] | Enhancement in Radiographer-Led Services | Investigate advanced KPI metrics to evaluate the impact of radiographer-led services on patient care and healthcare efficiency. Develop KPI-driven strategies to optimize interdisciplinary collaboration and enhance service delivery in radiology. |
Sreedharan et al. [48] | Monitoring and Improving Radiography Performance | Investigate novel KPI indicators for monitoring radiography performance and optimizing clinical workflows. Develop KPI-driven interventions to enhance radiographic imaging quality and patient care outcomes in healthcare settings. |
Lastrucci et al. [49] | Evaluation of Allied Healthcare Education | Investigate innovative KPIs for evaluating the impact of allied healthcare education on student outcomes and workforce readiness. Develop KPI-driven strategies to enhance educational effectiveness and promote continuous improvement in allied healthcare curricula. |
Recommendation | Study/Studies | Key Points |
---|---|---|
Develop and Implement Standardized KPIs | Walther et al. [25], Tanguay et al. [26], Teichgräber et al. [29] | Standardize KPIs to ensure consistency and reliability in diagnostic imaging. Uniform guidelines help in setting clear benchmarks and goals. |
Integrate Advanced Technologies | Fayemiwo et al. [28] | Use technologies like AI to enhance KPI precision and real-time performance monitoring. Provides more precise data for better tracking. |
Utilize Performance Dashboards | Karami and Safdari [40], Karami [44] | Employ dashboards for real-time insights and the visualization of KPIs. Helps in identifying trends and making informed decisions. |
Adopt Quality Improvement Programs | Patel et al. [38], Pourmohammadi et al. [36] | Regularly assess and refine KPIs through structured quality improvement initiatives. Ensures systematic addressal of performance issues. |
Focus on Patient-Centered Metrics | Nason et al. [32], Heilbrun et al. [34] | Prioritize KPIs that impact patient outcomes and satisfaction directly. Align quality improvement efforts with patient needs and expectations. |
Establish Monitoring and Feedback Mechanisms | Shultz et al. [41], Raj et al. [35] | Implement continuous monitoring and feedback systems to identify and address performance issues early. Crucial for ongoing improvements. |
Enhance Education and Training | Rubin et al. [39] | Use KPIs to assess educational tools and ensure that staff are up to date with the latest practices. Effective training impacts KPI implementation and service quality. |
Emphasize Safety and Quality Assurance | European Society of Radiology [31], Blakeley et al. [46] | Maintain high standards in safety and quality assurance. Builds patient trust and satisfaction, crucial for quality improvement. |
Study | Limitation | Potential Impact | Suggestions for Future Research |
---|---|---|---|
Walther et al. [25] | Focus on standardized KPIs in specific settings | Results may be context-specific | Explore applicability across diverse healthcare environments |
Tanguay et al. [26] | Varied methodological approaches | Inconsistencies in KPI measurement | Develop and apply standardized KPI measurement techniques |
Patel et al. [38] | Emphasis on specific KPIs and quality improvement programs | Limited view on broader KPI effectiveness | Integrate findings from a wider range of outcomes and implementations |
Rubin et al. [39] | Publication bias towards positive results | May reflect an optimistic view of KPI effectiveness | Include studies with varied results for a balanced perspective |
Fayemiwo et al. [28] | Focus on deep learning models for specific conditions | Results may not generalize to other diagnostic areas | Examine applicability of findings to different diagnostic technologies |
Shultz et al. [41] | Specific focus on radiation safety | May not address broader KPI aspects | Broaden research to include other KPI areas beyond radiation safety |
Nason et al. [32] | Conducted in high-tech, urban settings | May not be applicable to smaller or rural facilities | Assess KPI effectiveness in various healthcare settings |
Harvey et al. [24] | Emphasis on KPIs post-cyberattack | Findings may be specific to cybersecurity contexts | Explore KPI effectiveness in general operational settings |
Wihl et al. [27] | Measures decision-making quality in specific teams | Limited generalizability to other teams or settings | Investigate the impact of decision-making quality in diverse team settings |
Karami [44] | Performance dashboards in specific contexts | May not be applicable to all radiology departments | Explore broader applications of performance dashboards across departments |
Khalifa and Zabani [42] | ER performance focus | Results may be specific to emergency care | Study KPI impact in non-emergency radiological services |
Aspect | Details |
---|---|
1. Imaging Practice Evolution | - Historical Focus: Initially centered on X-ray radiography. |
- Evolution: Expanded to include traditional radiology, CT scans, and integration with DICOM and Radiology Information Systems. | |
- Current Modalities: Includes DICOM-compliant techniques such as ultrasound, MRI, gamma-ray-based methods like scintigraphy and PET scans, and hybrid methods like PET-CT and PET-MRI [51,52]. | |
KPIs: Track performance and quality of various imaging modalities. Key indicators include diagnostic accuracy rates, image quality, equipment uptime, and the efficiency of image acquisition and processing. KPIs ensure that advancements in imaging technologies meet high standards and that new techniques are effectively integrated into clinical practice. | |
2. Radiological Safety | - Radiation Exposure: Focus on minimizing exposure to patients and healthcare providers [31]. |
- Quality Assurance: Includes robust protocols, equipment calibration, and regular audits. | |
- Training: Continuous education on radiation protection. | |
KPIs: Measure adherence to safety protocols, such as radiation dose levels, frequency of safety audits, compliance with protective measures, and staff training completion rates. KPIs help ensure that safety standards are maintained and identify areas for improvement in radiation protection practices. | |
3. Integration of Innovative Technologies | - Technologies: Incorporates AR, VR, and AI in radiology [52]. |
- Applications: AR and VR enhance visualization for surgical planning and education. AI improves image analyses and clinical decision-making. | |
KPIs: Evaluate the impact of these technologies on clinical outcomes. Indicators include diagnostic accuracy improvements, user satisfaction, integration smoothness, and the efficiency of workflows enhanced by these technologies. KPIs help assess how well innovative tools are improving diagnostic processes and patient care. | |
4. Role of Artificial Intelligence (AI) | - AI Integration: AI aids in image interpretation and diagnoses [53]. |
- Performance Evaluation: AI systems are evaluated through KPIs. | |
- Future Potential: AI could automate routine tasks and enhance overall performance. | |
KPIs: Track AI performance metrics such as detection accuracy, false positive/negative rates, turnaround times, and improvements in diagnostic workflows. KPIs ensure that AI systems are effectively enhancing diagnostic capabilities and operational efficiency. | |
5. Digital Health and Tele-radiology | - Technologies: Adoption of secure networks for .for image sharing and tele-radiology for remote interpretation [54]. |
- Benefits: Enhances access to expertise and continuity of care, especially in remote areas. | |
KPIs: Measure effectiveness through indicators such as image transfer times, diagnostic report turnaround, tele-radiology consultation success rates, and patient outcomes. KPIs assess how well digital health technologies improve access to care and the efficiency of remote diagnostics. | |
6. Roles of Radiologists and Radiographers | - Radiologists: Interpret images, diagnose, and guide patient management [4]. |
- Radiographers: Acquire images, ensure patient safety, and comfort. | |
KPIs: Focus on performance metrics such as diagnostic accuracy rates, image quality, patient satisfaction, procedural efficiency, and professional development progress. KPIs help optimize the roles and effectiveness of radiologists and radiographers, ensuring high-quality patient care and professional growth. | |
7. Strategic Initiatives by Associations | - Role of Associations: Promote evidence-based practices, set training standards, and advocate for policy improvements [31]. |
- Objectives: Support innovation, quality improvement, and collaboration. | |
KPIs: Evaluate the impact of strategic initiatives through metrics such as adherence to new guidelines, research advancements, training program effectiveness, and policy changes. KPIs provide insights into the effectiveness of initiatives and their impact on the field of radiology. |
Recommendation | Details | Action Needed | Stakeholders |
---|---|---|---|
1. Standardization of KPIs | Develop and implement uniform KPI standards to ensure consistency and reliability across institutions. | National and international radiology societies to create and enforce standardized guidelines. | RSNA, ESR, national radiological societies |
2. Integration of Advanced Technologies | Incorporate AI to enhance KPI precision and real-time monitoring capabilities. | Support and promote initiatives for integrating these technologies through grants and research. | National health organizations, international bodies |
3. Utilization of Performance Dashboards | Use dashboards for real-time visualization and data-driven decision-making. | Promote standardized performance dashboards and provide best practice guidelines for their implementation. | International consortia, national radiology associations |
4. Adoption of Quality Improvement Programs (QIPs) | Implement QIPs for continuous KPI refinement and service enhancement. | Advocate for QIPs, provide training, and facilitate knowledge exchange. | National and international radiology organizations |
5. Focus on Patient-Centered Metrics | Align KPIs with patient outcomes and satisfaction to enhance quality improvement efforts. | Develop and integrate patient-centered KPIs into clinical practice guidelines. | National health agencies, international organizations |
6. Establishment of Monitoring and Feedback Mechanisms | Create systems for ongoing monitoring and feedback to address performance issues. | Develop systems for continuous monitoring and feedback to drive improvements. | National and international radiological societies |
7. Enhancement in Education and Training | Provide comprehensive and up-to-date training to ensure effective KPI implementation. | Prioritize development of training programs and resources for radiologists and radiographers. | National radiology boards, international educational organizations |
8. Emphasis on Safety and Quality Assurance | Maintain high safety and quality standards to build patient trust and improve care. | Include rigorous safety and quality assurance programs in initiatives. | National and international bodies |
9. Addressing Emerging Challenges | Adapt KPIs to new challenges such as CAD-CAM technology for radiotherapy, home-based radiology, and tele-radiology. | Collaborate to develop and refine KPI frameworks to meet new demands and innovations. | National and international radiological communities |
Entity (National/International) | Position on KPIs |
---|---|
WHO (World Health Organization) [56] | Emphasizes demonstrating telehealth benefits during healthcare service transitions. Proposes short-term, medium-term, and long-term KPIs including increased teleconsultations, patient savings, and remote monitoring [56]. |
ATA (American Telemedicine Association) [57] | Focuses on balancing clinical excellence with operational efficiency in telehealth. Addresses challenges in remote care quality and suggests solutions like clinical dashboards and real-time quality reports [57]. |
ACP (American College of Physicians) [58] | Advocates for telehealth-specific KPIs based on in-person care quality principles. Stresses reliable performance measures tailored to telehealth environments and equity considerations [58]. |
NHS (National Health Service—UK) [59] | Provides KPIs for Integrated Urgent Care (IUC), integrating telehealth for optimized healthcare delivery. Metrics include call abandonment rates, response times, and remote consultations [59]. |
Dubai Health Authority [60] | Establishes procedures for reporting telehealth KPIs to enhance patient quality and safety. KPIs include Access and Quality metrics like patient waiting times, population coverage, and patient and staff satisfaction [60] |
Entity/Brief Document Description | Position on KPIs |
---|---|
ACR’s Economics Committee on Value-Based Payment Models [65] | Emphasizes the integration of value-based metrics in radiology practice. This includes incentivizing quality over quantity of services, aligning with healthcare reforms such as the Affordable Care Act (ACA) to improve patient outcomes and reduce costs. |
European Society of Radiology Concept Paper [64] | Identifies factors for high-quality radiological practice and suggests KPI applications. Key factors include appropriateness of imaging requests, adherence to radiation protection measures, quality of radiology reports, patient–staff interactions, and ongoing professional education and research. |
ESR Document on KPIs Related to Radiation Protection [31] | Provides an overview focusing on KPIs related to radiation protection and broader implications. Discusses metrics for monitoring compliance with radiation safety guidelines, reducing radiation exposure through protocol adherence, and fostering a culture of safety within radiology departments. |
NHS UK Document on Radiology Reporting [70] | Highlights variation in KPI adoption among NHS trusts and importance of timely reporting. Discusses challenges and strategies for managing radiology reporting backlogs, emphasizing the role of KPIs in improving operational efficiency and patient care. |
JCAHO Guidelines on KPIs in Healthcare [71] | Defines KPIs as critical tools for monitoring healthcare quality and performance. Recommends integrating KPIs with institutional objectives to track progress effectively across clinical, managerial, and support functions within radiology departments. |
College of Radiographers and Royal College of Radiologists Document (UK) [74] | Discusses applications of KPIs across various aspects of imaging services. Covers patient and caregiver support, workforce management, equipment and facility standards, clinical safety protocols, service organization, and collaboration with other healthcare services. |
ACR and European Society of Radiology Global Summit on Radiological Quality and Safety [69] | Stresses the role of KPIs in enhancing quality and safety in radiology. Highlights include establishing comprehensive quality and safety programs, integrating patient feedback into service improvements, and leveraging KPIs to measure and improve radiology department performance. |
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Lastrucci, A.; Wandael, Y.; Barra, A.; Miele, V.; Ricci, R.; Livi, L.; Lepri, G.; Gulino, R.A.; Maccioni, G.; Giansanti, D. Precision Metrics: A Narrative Review on Unlocking the Power of KPIs in Radiology for Enhanced Precision Medicine. J. Pers. Med. 2024, 14, 963. https://doi.org/10.3390/jpm14090963
Lastrucci A, Wandael Y, Barra A, Miele V, Ricci R, Livi L, Lepri G, Gulino RA, Maccioni G, Giansanti D. Precision Metrics: A Narrative Review on Unlocking the Power of KPIs in Radiology for Enhanced Precision Medicine. Journal of Personalized Medicine. 2024; 14(9):963. https://doi.org/10.3390/jpm14090963
Chicago/Turabian StyleLastrucci, Andrea, Yannick Wandael, Angelo Barra, Vittorio Miele, Renzo Ricci, Lorenzo Livi, Graziano Lepri, Rosario Alfio Gulino, Giovanni Maccioni, and Daniele Giansanti. 2024. "Precision Metrics: A Narrative Review on Unlocking the Power of KPIs in Radiology for Enhanced Precision Medicine" Journal of Personalized Medicine 14, no. 9: 963. https://doi.org/10.3390/jpm14090963
APA StyleLastrucci, A., Wandael, Y., Barra, A., Miele, V., Ricci, R., Livi, L., Lepri, G., Gulino, R. A., Maccioni, G., & Giansanti, D. (2024). Precision Metrics: A Narrative Review on Unlocking the Power of KPIs in Radiology for Enhanced Precision Medicine. Journal of Personalized Medicine, 14(9), 963. https://doi.org/10.3390/jpm14090963