市場調查報告書
商品編碼
1470963
輻射劑量管理市場:按產品、模式、收益模式、應用和最終用戶分類 - 2024-2030 年全球預測Radiation Dose Management Market by Offering (Services, Software), Modality (Computed Tomography, Fluoroscopy & Interventional Imaging, Imaging), Revenue Model, Application, End-User - Global Forecast 2024-2030 |
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輻射劑量控制市場規模預計2023年為7.9602億美元,2024年達到9.0445億美元,預計2030年將達到19.994億美元,複合年成長率為14.06%。
使用電腦斷層掃描、X 光和核醫學的診斷影像的普及極大地促進了對輻射劑量管理解決方案的需求的增加。隨著此類手術的增加,越來越需要監測和控制患者接觸電離輻射的情況,以確保患者安全並遵守監管標準。整合輻射劑量管理系統使臨床醫生能夠在保持影像品質的同時最大限度地減少不必要的輻射暴露,從而最佳地使用這些技術。隨著公眾對與輻射暴露相關的潛在風險的了解越來越多,患者越來越擔心他們從多次影像處理中收到的累積輻射劑量。這種意識的不斷增強導致醫療保健提供者對透明度和嚴格劑量控制的要求不斷提高。衛生系統不斷尋找在不影響護理品質的情況下降低成本的方法。有效的輻射劑量管理有助於避免因劑量不當而導致的重新檢查,並減少與過度照射和不必要的影像檢查相關的額外費用。醫療保健中巨量資料和分析的整合正在創造一個機會,利用診斷成像部門產生的大量資料來實現更聰明的劑量管理。採用資料驅動的方法不僅可以提高患者的安全,還可以提高業務效率和行業標準基準。醫療資訊科技的擴展和醫療保健領域的數位化趨勢正在推動輻射劑量管理系統在電子健康記錄(EHR) 中的整合。這種整合有助於更好地追蹤、分析和報告輻射劑量,從而增加了對整體患者資料管理的需求。
主要市場統計 | |
---|---|
基準年[2023] | 7.9602億美元 |
預測年份 [2024] | 90445萬美元 |
預測年份 [2030] | 19.994 億美元 |
複合年成長率(%) | 14.06% |
產品軟體的發展可實現醫院的無縫診斷業務
輻射劑量管理服務專為醫療機構設計,用於監測和最佳化診斷和治療過程中向患者提供的輻射劑量。專注於病人安全和遵守監管標準。提供的服務包括現場評估、員工教育和培訓計劃、劑量追蹤和報告以及製定和實施劑量最佳化策略的綜合諮詢。另一方面,輻射劑量管理軟體解決方案提供先進的軟體解決方案,以在各種醫學影像處理中實現有效的輻射劑量管理。該軟體能夠準確追蹤、監測和報告輻射暴露,有助於改善患者照護和遵守劑量管理通訊協定。另一方面,整合輻射劑量管理系統結合了硬體和軟體組件,以實現無縫的輻射劑量管理體驗。它可以與現有的醫院資訊系統(HIS)、電子健康記錄(EMR)以及圖片存檔和通訊系統(PACS)整合,為劑量資料分析和管理提供中央樞紐。透過與現有工作流程整合降低複雜性並提高效率。獨立輻射劑量管理軟體滿足了設施對獨立於其他醫院系統運作的獨立輻射劑量管理軟體的要求。這些工具適用於各種醫療保健環境,因為它們具有高度可自訂性,不需要完整的系統整合,並且旨在滿足實踐的獨特需求。
模態 定期對不同模態品管檢查,採用精準定位,確保最小暴露,同時獲得可靠的診斷結果
電腦斷層掃描 (CT) 因其利用圍繞患者旋轉的 X 光創建詳細的身體截面影像的能力而廣為人知。 電腦斷層掃描對患者的總醫療輻射暴露影響很大,因此有效的輻射劑量管理非常重要。利用劑量調變、最佳通訊協定選擇和使用先進的影像重建軟體等技術來最大限度地減少劑量,同時保持影像品質。螢光透視和介入成像是提供即時成像來指導手術的技術。這些對於心臟病學、胃腸病學和整形外科等領域至關重要。這些程序的動態性質可能會導致患者和工作人員受到高累積輻射劑量。放射診斷包括用於診斷和監測各種醫療狀況的各種顯像模式。診斷成像的輻射劑量會根據測試類型和所使用的設備而變化。嚴格標準化成像通訊協定、定期維護設備以及遵守輻射防護法規對於曝光控制至關重要。放射科醫師的持續教育和培訓在最佳化劑量而不影響診斷效果方面也發揮著重要作用。乳房X光攝影是一種特殊的醫學影像診斷方法,利用低劑量X光對乳癌進行早期發現和診斷。乳房X光攝影的輻射劑量控制特別敏感,因為乳房組織對電離輻射敏感。數位乳房X光攝影和斷層合成等先進技術已發展,可提高影像質量,且輻射比傳統膠片系統更少。
收益模式:PPP(按次付費)模式更具成本效益,對病人有利。
在年度購買收益模式中,醫療機構為使用輻射劑量管理 (RDM) 系統支付一年的預付費用。此費用通常包括使用軟體的許可、維護和客戶支援服務。其目的是為預算目的提供可預測的成本。醫療保健提供者可以在合約期間不間斷地存取 RDM 工具,從而實現一致的輻射劑量監測和管理,從而受益匪淺。該模型適用於處理大量成像程序並需要穩定、連續的 RDM 解決方案的大型設施。另一方面,按程序付費模式是基於交易的,醫療機構根據使用 RDM 系統影像處理數量進行申請。這種方法提供了可變的成本結構,對於具有可變影像處理量的設施是有利的。它彈性且擴充性,因為成本與使用直接相關。
應用 輻射劑量管理在腫瘤學研究和治療上具有多種應用。
在心臟病學中,輻射劑量控制對於冠動脈攝影術、經皮冠狀動脈介入治療 (PCI) 和電生理學研究等診斷和介入手術至關重要。透過有效管理輻射劑量,醫療保健專業人員可以最大限度地降低輻射損傷的風險,同時確保高品質的影像,以幫助做出準確的診斷和治療決策。腫瘤學嚴重依賴放射線治療來根治性和安寧療護各種癌症。使用適當的輻射劑量管理,可以向癌細胞提供最大劑量的輻射,同時最大限度地減少對周圍健康組織的暴露。這對於實現治療效果並減少與放射治療相關的副作用和長期併發症的可能性至關重要。整形外科中的放射劑量控制對於需要透視的手術尤其重要,例如脊椎手術、關節關節重建和骨折融合術。準確的劑量管理可以保護患者免受不必要的輻射照射,並有助於減少治療期間可能需要多次診斷影像的患者的累積劑量。此外,放射線照相術(包括 X 光、電腦斷層掃描 (CT) 掃描和乳房X光攝影X 光照相術等成像方式)使用電離輻射在體內創建影像。放射照相中有效的輻射劑量管理遵循 ALARA(盡可能低)原則,並平衡診斷資訊的需求和盡量減少輻射暴露的需求,從而確保病人安全。
最終用途:先進的管理工具,專注於醫院劑量管理通訊協定的準確性和可重複性
在門診醫療中,輻射劑量控制在確保醫院外提供的診斷影像服務中的病人安全方面發揮著重要作用。這些設施通常包括診斷影像中心、門診診所和私人醫生辦公室,它們利用 X 光、電腦斷層掃描 (CT) 和螢光透視等診斷影像技術。準確追蹤和管理輻射劑量對於防止重複手術過程中不必要的暴露和維持高醫療標準至關重要。門診護理機構需要將劑量管理解決方案整合到工作流程中,以最大限度地減少患者等待時間並提供高效的服務。由於所執行的影像處理的數量和複雜性,醫院是輻射劑量管理最密集的環境。醫院配備了各種診斷影像設備,從常規 X 光到先進的介入放射學。這些環境中的輻射劑量管理需要強大的系統來追蹤和分析部門和患者群體的輻射暴露。當醫院實施劑量管理策略時,遵守監管標準、最佳化成像通訊協定以及確保患者和工作人員的安全是重要的考慮因素。研究機構和學術醫療中心通常處於醫學影像技術進步的最前沿,並參與利用影像技術的各種臨床試驗。在這樣的環境中,研究系統必須透過提供適合研究目標的詳細資料來支持研究活動,同時確保受試者的安全。學者和研究人員使用劑量管理工具來評估和開發輻射使用的最佳實踐,探索新的成像技術,並為全行業的標準制定做出貢獻。
區域洞察
由於其先進的醫療基礎設施和嚴格的病人安全法規,美國是輻射劑量管理的重要市場。診斷影像設備的使用不斷增加以及需要頻繁掃描的慢性疾病的流行也促進了市場需求。客戶購買行為傾向於與現有系統無縫整合的先進軟體解決方案,表現出對效率和擴充性的偏好。歐盟市場的特點是遵守嚴格的法規,例如歐洲指令 2013/59/Euratom,該指令要求盡量減少電離輻射暴露。歐盟內部對研發和創新的投資巨大,重點是開發在不影響診斷效果的情況下提高病患安全的技術。歐盟消費者的需求面向具有高互通性和資料保護標準的軟體解決方案。在中東和非洲國家,醫療基礎設施的發展不斷進步,KEYWORD解決方案的市場不斷擴大。對醫療保健系統的投資,加上醫療遊客的增加,需要先進的輻射劑量管理通訊協定。採購決策受到技術進步和售後服務的影響。在政府推動醫療改革的推動下,包括印度、中國、日本和澳洲在內的亞太國家的醫療保健業務正在快速成長。由於醫療保健設施的增加和需要醫療服務的中階的不斷壯大,輻射劑量管理的區域市場正在擴大。
FPNV定位矩陣
FPNV 定位矩陣對於評估輻射劑量管理市場至關重要。我們檢視與業務策略和產品滿意度相關的關鍵指標,以對供應商進行全面評估。這種深入的分析使用戶能夠根據自己的要求做出明智的決策。根據評估,供應商被分為四個成功程度不同的像限:前沿(F)、探路者(P)、利基(N)和重要(V)。
市場佔有率分析
市場佔有率分析是一種綜合工具,可以對輻射劑量管理市場中供應商的現狀進行深入而深入的研究。全面比較和分析供應商在整體收益、基本客群和其他關鍵指標方面的貢獻,以便更好地了解公司的績效及其在爭奪市場佔有率時面臨的挑戰。此外,該分析還提供了對該行業競爭特徵的寶貴見解,包括在研究基準年觀察到的累積、分散主導地位和合併特徵等因素。這種詳細程度的提高使供應商能夠做出更明智的決策並制定有效的策略,從而在市場上獲得競爭優勢。
1. 市場滲透率:提供有關主要企業所服務的市場的全面資訊。
2. 市場開拓:我們深入研究利潤豐厚的新興市場,並分析其在成熟細分市場的滲透率。
3. 市場多元化:提供有關新產品發布、開拓地區、最新發展和投資的詳細資訊。
4.競爭評估與資訊:對主要企業的市場佔有率、策略、產品、認證、監管狀況、專利狀況、製造能力等進行全面評估。
5. 產品開發與創新:提供對未來技術、研發活動和突破性產品開發的見解。
1.輻射劑量管理市場的市場規模與預測是多少?
2.在輻射劑量管理市場的預測期間內,有哪些產品、細分市場、應用和領域需要考慮投資?
3.輻射劑量控制市場的技術趨勢和法規結構是什麼?
4.輻射劑量管理市場主要廠商的市場佔有率為何?
5.進入輻射劑量控制市場的適當形式和策略手段是什麼?
[184 Pages Report] The Radiation Dose Management Market size was estimated at USD 796.02 million in 2023 and expected to reach USD 904.45 million in 2024, at a CAGR 14.06% to reach USD 1,999.40 million by 2030.
The proliferation of diagnostic imaging procedures using CT scans, X-rays, and nuclear medicine has significantly contributed to the increased demand for radiation dose management solutions. As the volume of these procedures rises, there is a heightened need to monitor and control patient exposure to ionizing radiation, ensuring both patient safety and compliance with regulatory standards. Integrating radiation dose management systems helps clinicians optimize the use of these technologies by minimizing unnecessary exposure while maintaining image quality. As the public becomes more informed about the potential risks associated with radiation exposure, patients are increasingly concerned about the cumulative radiation dose received from multiple imaging procedures. This awareness has led to more demand for transparency and stringent dose management practices among healthcare providers. Health systems are continuously seeking ways to reduce costs without compromising the quality of care. Efficient radiation dose management can help in avoiding repeat examinations due to incorrect dosage, thereby decreasing the additional expenses associated with over-exposure and unnecessary imaging studies. With the integration of big data and analytics in healthcare, there is an opportunity to utilize the extensive data generated by imaging departments for smarter dose management. The adoption of data-driven approaches not only enhances patient safety but also improves operational efficiencies and benchmarking against industry standards. The expansion of health information technologies and the growing trend of digitalization in healthcare encourages the integration of radiation dose management systems within electronic health records (EHRs). This integration fosters better tracking, analysis, and reporting of radiation doses, catering to the growing need for holistic patient data management.
KEY MARKET STATISTICS | |
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Base Year [2023] | USD 796.02 million |
Estimated Year [2024] | USD 904.45 million |
Forecast Year [2030] | USD 1,999.40 million |
CAGR (%) | 14.06% |
Product: Advancement in the softwares offer the seamless diagnostic operations in the hospitals
Radiation dose management services are designed to help healthcare facilities monitor and optimize the radiation doses administered to patients during diagnostic and therapeutic procedures. The focus is on patient safety and compliance with regulatory standards. Services offered include on-site assessments, staff education and training programs, dose tracking and reporting, and comprehensive consultancy to develop and implement dose optimization strategies. Meanwhile, radiation dose management software solutions offers a suite of advanced software solutions to facilitate effective radiation dose management across various medical imaging procedures. This software ensures accurate tracking, monitoring, and reporting of radiation exposure, contributing to improved patient care and adherence to dose management protocols. Meanwhile, an integrated radiation dose management system combines hardware and software components for a seamless radiation dose management experience. They are capable of interfacing with existing hospital information systems (HIS), electronic medical records (EMR), and picture archiving and communication systems (PACS), providing a centralized hub for dose data analysis and management. By integrating with existing workflows, they help reduce complexity and improve efficiency. Standalone radiation dose management software facilitates the requirement of facilities seeking specialized standalone radiation dose management software that can operate independently of other hospital systems. These tools are flexible and customizable, designed to meet the unique needs of practice without requiring full system integration, making them suitable for a variety of healthcare settings.
Modality: Regular quality control checks of different modalities, accurate positioning employed to ensure minimal exposure while achieving reliable diagnostic results
Computed Tomography (CT) is widely known for its ability to create detailed cross-sectional images of the body, utilizing x-rays that rotate around the patient. Hence, effective radiation dose management is critical, as CT scans can contribute significantly to the total medical radiation exposure of patients. Techniques such as dose modulation, optimal protocol selection, and utilization of advanced software for image reconstruction are utilized to minimize dose while maintaining image quality. Fluoroscopy and interventional imaging are techniques that provide real-time imaging to guide procedures. They are integral in fields such as cardiology, gastroenterology, and orthopedics. Due to their dynamic nature, these procedures can result in high cumulative radiation doses to patients and staff. Diagnostic radiography encompasses a range of imaging modalities used to diagnose and monitor various medical conditions. Radiation dose in diagnostic imaging hinges on the type of examination and the equipment used. Rigorous standardization of imaging protocols, regular equipment maintenance, and adherence to radiation protection regulations are imperative for managing exposure. Continuous education and training for radiographers also play a vital role in optimizing doses without compromising diagnostic efficacy. Mammography is a specialized medical imaging modality that uses low-dose x-rays specifically for the early detection and diagnosis of breast cancer. Radiation dose management in mammography is particularly sensitive due to the vulnerability of breast tissue to ionizing radiation. Advanced techniques, such as digital mammography and tomosynthesis, have been developed to enhance the image quality with less radiation compared to traditional film-based systems.
Revenue Model: Pay-Per-Procedure model is more cost-effective and beneficial to the radiation dose management
Under the annual purchase revenue model, healthcare facilities pay an upfront fee to access the Radiation Dose Management (RDM) system for a year. This fee typically includes a license to use the software, along with maintenance and customer support services. The aim is to provide a predictable expense for budgeting purposes. Healthcare providers benefit from uninterrupted access to RDM tools throughout the subscription period, which allows for consistent monitoring and management of radiation doses. This model is well-suited for larger institutions that handle a high volume of imaging procedures and require a stable, ongoing RDM solution. Meanwhile, the Pay-Per-Procedure model is transaction-based, where healthcare institutions are billed based on the number of imaging procedures performed that utilize the RDM system. This approach offers a variable cost structure, which can be advantageous for facilities with fluctuating volumes of imaging procedures. It provides flexibility and scalability, as costs are directly correlated with usage.
Application: Radiation dose management has diverse applications in Oncological research and treatments.
In cardiology, radiation dose management is crucial during diagnostic and interventional procedures such as coronary angiography, percutaneous coronary intervention (PCI), and electrophysiological studies. By effectively managing the radiation dose, health professionals can minimize the risk of radiation-induced damage while ensuring high-quality imaging that aids in accurate diagnosis and treatment decision-making. Oncology relies heavily on radiation therapy for both curative and palliative treatment of various cancers. Proper radiation dose management ensures that the maximum dose of radiation is delivered to cancer cells while minimizing exposure to surrounding healthy tissues. This is vital in achieving therapeutic effectiveness and reducing the likelihood of side effects and long-term complications associated with radiation therapy. Radiation dose management in orthopedics is particularly important during procedures that require fluoroscopy such as spinal surgeries, joint replacements, and fracture fixations. Precise dose management helps protect patients from unnecessary radiation exposure and reduces the cumulative dose for patients who might require multiple imaging procedures throughout their treatment. Moreover, radiography, which includes a spectrum of imaging modalities such as X-rays, computed tomography (CT) scans, and mammography, uses ionizing radiation to create images of the body's interior. Effective radiation dose management in radiography is essential to ensure the safety of patients by adhering to the ALARA (As Low As Reasonably Achievable) principle, thus balancing the need for diagnostic information with the need to minimize radiation exposure.
End-Use: Hospitals advanced management tools to emphasize on precision and reproducibility in their dose management protocols
In ambulatory care settings, radiation dose management plays a crucial role in ensuring patient safety during diagnostic imaging services offered outside a hospital environment. These facilities often include imaging centers, outpatient clinics, and private physician practices that utilize imaging technology such as X-ray, computed tomography (CT), and fluoroscopy. Accurately tracking and managing radiation doses is vital for preventing unnecessary exposure during repeated procedures and for maintaining a high standard of care. Ambulatory care settings require tailored dose management solutions that integrate with their workflow to minimize patient wait times and provide efficient service. Hospitals represent the most intensive environment for radiation dose management due to the volume and complexity of imaging procedures performed. Hospitals are equipped with a range of imaging modalities from conventional X-ray to advanced interventional radiology suites. Radiation dose management in this setting necessitates robust systems that can track and analyze radiation exposure across departments and patient populations. Compliance with regulatory standards, optimization of imaging protocols, and assurance of patient and staff safety are key considerations for hospitals in implementing dose management strategies. Research institutes and academic medical centers often spearhead advancements in medical imaging techniques and are involved in a variety of clinical trials that utilize imaging technology. In these settings, radiation dose management systems need to support research activities by providing detailed data for study purposes while still ensuring the safety of research subjects. Academics and researchers use dose management tools to evaluate and develop best practices in radiation usage, explore new imaging technologies, and contribute to setting industry-wide standards.
Regional Insights
In the Americas, the United States represents a significant market for radiation dose management owing to its advanced healthcare infrastructure and stringent regulations regarding patient safety. The increasing use of diagnostic imaging equipment and the prevalence of chronic diseases requiring frequent scans contribute to the market's demand. Customer purchasing behavior leans towards advanced software solutions that integrate seamlessly with existing systems, indicating a preference for efficiency and scalability. The EU market is characterized by its adherence to strict regulations such as the European Directive 2013/59/Euratom, which mandates minimizing the exposure to ionizing radiation. Investment in research and innovation within the EU is significant, with a focus on developing technologies that enhance patient safety without compromising diagnostic efficacy. Consumer needs in the EU are geared towards software solutions with high interoperability and data protection standards. The Middle East and African countries are witnessing significant healthcare infrastructure development leading to a growing market for radiation dose management solutions. Investment in healthcare systems, coupled with an increasing number of medical tourists, demands sophisticated radiation dose management protocols. Procurement decisions are influenced by technology advancement and after-sales support services. Asia-Pacific countries including India, China, Japan, and Australia are experiencing exponential growth in the healthcare sector with a significant push from the government towards healthcare reform. The regional market for radiation dose management is expanding, driven by an increased number of healthcare facilities and a growing middle-class with health service demands.
FPNV Positioning Matrix
The FPNV Positioning Matrix is pivotal in evaluating the Radiation Dose Management Market. It offers a comprehensive assessment of vendors, examining key metrics related to Business Strategy and Product Satisfaction. This in-depth analysis empowers users to make well-informed decisions aligned with their requirements. Based on the evaluation, the vendors are then categorized into four distinct quadrants representing varying levels of success: Forefront (F), Pathfinder (P), Niche (N), or Vital (V).
Market Share Analysis
The Market Share Analysis is a comprehensive tool that provides an insightful and in-depth examination of the current state of vendors in the Radiation Dose Management Market. By meticulously comparing and analyzing vendor contributions in terms of overall revenue, customer base, and other key metrics, we can offer companies a greater understanding of their performance and the challenges they face when competing for market share. Additionally, this analysis provides valuable insights into the competitive nature of the sector, including factors such as accumulation, fragmentation dominance, and amalgamation traits observed over the base year period studied. With this expanded level of detail, vendors can make more informed decisions and devise effective strategies to gain a competitive edge in the market.
Key Company Profiles
The report delves into recent significant developments in the Radiation Dose Management Market, highlighting leading vendors and their innovative profiles. These include Accuray Incorporated, Agfa-Gevaert Group, Bayer AG, Bracco S.p.A., Canon Inc., Dedalus S.p.A., Fujifilm Holdings Corporation, GE HealthCare Technologies, Inc., Guerbet, IBA Dosimetry GmbH, Imalogix, Infinitt Healthcare Co Ltd, Koninklijke Philips N.V., LANDAUER, Inc., McKesson Corporation, Medic Vision Imaging Solutions, Medsquare, Medsquare SAS, Mirion Technologies, Inc, Novarad, Novarad Corporation, PACSHealth, LLC, Qaelum NV, Sectra AB, Siemens Healthineers AG, SST Group Inc., and Thermo Fisher Scientific Inc..
Market Segmentation & Coverage
1. Market Penetration: It presents comprehensive information on the market provided by key players.
2. Market Development: It delves deep into lucrative emerging markets and analyzes the penetration across mature market segments.
3. Market Diversification: It provides detailed information on new product launches, untapped geographic regions, recent developments, and investments.
4. Competitive Assessment & Intelligence: It conducts an exhaustive assessment of market shares, strategies, products, certifications, regulatory approvals, patent landscape, and manufacturing capabilities of the leading players.
5. Product Development & Innovation: It offers intelligent insights on future technologies, R&D activities, and breakthrough product developments.
1. What is the market size and forecast of the Radiation Dose Management Market?
2. Which products, segments, applications, and areas should one consider investing in over the forecast period in the Radiation Dose Management Market?
3. What are the technology trends and regulatory frameworks in the Radiation Dose Management Market?
4. What is the market share of the leading vendors in the Radiation Dose Management Market?
5. Which modes and strategic moves are suitable for entering the Radiation Dose Management Market?