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Healthcare IT Report DI-HC-10154 188 pages · PDF + Excel model

Hospital Pharmacy Automation Market

Automated dispensing cabinets cut medication errors and nurse time; hospital pharmacy automation grows from USD 4.03 billion to USD 8.46 billion by 2035.

Market Terminal Hospital Pharmacy Automation Market Edition 1 · Oct 2026
Market size · 2025 $4.03B Medium How this number is madeBottom-up: about 96,000 systems at USD 42,000 average price.
Forecast · 2035 $8.46B Medium How this number is madeEach 1-point change in system growth moves the 2035 figure by roughly USD 770 million.
Revenue CAGR · 2026–2035 7.70%6.0% systems + 1.6% price Medium How this number is madeSystems from safety, diversion and staffing; price from compounding and analytics.
Systems · 2035 ~172,000from 96,000 in 2025 Medium How this number is madeHospital populations times adoption and replacement cycles.
Leading system Dispensing cabinets48% · $1.94B High How this number is madeDeployed across wards and procedural areas with large replacement demand.
Fastest system IV compounding16% of 2025 value Medium How this number is madePrecise dosing and staff protection from hazardous drugs.
Largest region North America46% share High How this number is madeHigh cabinet adoption and strong diversion focus.

Answers at a glance

  • Hospital pharmacy automation grows from USD 4,032.0 million in 2025 to USD 8,463.2 million by 2035 at 7.70% a year.
  • Systems grow 6.0% a year as hospitals automate medication handling.
  • Dispensing cabinets lead at 48%; IV compounding grows fastest.
  • North America holds 46% of value; Asia Pacific grows fastest at 9.6%.
  • Cabinet transaction data now powers diversion analytics, making software a growing share of the value hospitals buy.
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The hospital pharmacy automation market is worth USD 4,032.0 million in 2025 and reaches USD 8,463.2 million by 2035, compounding at 7.70% a year. The figure is built bottom-up: roughly 96,000 pharmacy automation systems shipped in 2025 across automated dispensing cabinets, central pharmacy dispensing and storage robots, intravenous compounding automation, and unit dose packaging and medication tracking, at an average realised price of USD 42,000 per system, triangulated against hospital bed and pharmacy counts, replacement cycles and supplier disclosures. Systems shipped grow 6.0% a year as hospitals automate medication handling and replace ageing equipment, while price per system rises 1.6% a year as compounding robots and connected systems add content. This study sits within our healthcare IT coverage and follows the published Douglas Insights methodology.

Why are hospitals automating medication handling?

Because medication errors harm patients, controlled drugs go missing, and there are not enough pharmacy staff to do the work manually with the accuracy required. Medications pass through many hands between arriving at a hospital and reaching a patient: received and stored by the pharmacy, dispensed to wards, retrieved by nurses and administered, and every manual step creates an opportunity to pick the wrong drug, the wrong strength or the wrong patient. Medication errors are among the most common causes of preventable harm in hospitals. At the same time, controlled substances, particularly opioids, are vulnerable to diversion by staff, a problem that became more visible during the opioid crisis and carries serious legal and safety consequences. And hospital pharmacies face shortages of pharmacists and pharmacy technicians, while the volume and complexity of medications keep rising. Automation addresses all three: automated dispensing cabinets on wards control access to medications and record who took what, central pharmacy robots store and pick medications accurately, and compounding robots prepare intravenous doses precisely and safely. The exclusive chapter of this report matrices the medication pathway, identifying where along it automation removes the most error and labour.

What does this market include?

This study covers automated systems used in hospital pharmacies and on hospital wards to store, dispense, prepare and track medications. Automated dispensing cabinets cover the secure, computerised cabinets on wards and in procedural areas that store medications and release them to authorised staff for specific patients. Central pharmacy dispensing and storage robots cover robotic systems in the central pharmacy that store medication packs and pick them automatically for dispensing. Intravenous compounding automation covers robots and systems that prepare intravenous doses, including chemotherapy and other hazardous drugs, in controlled conditions. Unit dose packaging and medication tracking covers machines that package medications into individual patient doses, together with barcode and radio frequency tracking of medications. Retail and community pharmacy automation, pharmacy information and electronic health record software sold separately, smart infusion pumps (see our portable IV infusion pump market report), and medications themselves sit outside the boundary. Value is measured at the price hospitals pay for systems.

Why does compounding automation matter so much?

Because preparing intravenous doses by hand is one of the most error prone and hazardous tasks in a hospital pharmacy. Many medications given intravenously, including chemotherapy, antibiotics and nutrition solutions, must be prepared individually for each patient by drawing precise volumes from vials and mixing them under sterile conditions. Done manually, this relies on a technician measuring accurately every time, and errors in dose or drug can be severe, particularly with chemotherapy, where the margin between effective and toxic doses is narrow. Many of these drugs are also hazardous to the staff who handle them, since repeated exposure to cytotoxic agents carries health risks. Standards governing sterile and hazardous drug compounding have been tightened, requiring stricter environmental controls, handling practices and documentation. Compounding robots address both concerns: they measure doses precisely and verify them gravimetrically or with imaging, keep staff away from hazardous agents, work inside controlled environments, and document every step automatically. They are expensive and suit higher volume pharmacies, but their value in safety and compliance is driving adoption, particularly in cancer centres and large hospitals.

What drives demand?

The first driver is medication safety. Hospitals and regulators prioritise reducing medication errors, and automation that verifies the right drug and dose for the right patient at each step is among the most effective tools available.

The second driver is controlled substance diversion. Automated dispensing cabinets with access controls and records, combined with analytics that flag unusual patterns, help hospitals prevent and detect diversion of opioids and other controlled drugs.

The third driver is pharmacy workforce shortages. Automation allows pharmacies to handle growing medication volumes with fewer staff and frees pharmacists for clinical work.

The fourth driver is compounding standards. Tighter standards for sterile and hazardous drug compounding push hospitals toward automated and controlled preparation systems.

What restrains the market?

Three restraints are modelled. Capital cost is the first: pharmacy automation, particularly central robots and compounding systems, requires significant investment that competes with other hospital priorities, and smaller hospitals may find it hard to justify. Integration and workflow change are second: automation must integrate with pharmacy information systems, electronic health records and ordering, and implementation requires redesigning workflows, which can be disruptive and requires sustained effort. Cybersecurity and reliability are third: networked dispensing systems are critical infrastructure, and outages or cyberattacks that disable them can disrupt medication access across a hospital, which requires robust backup procedures and makes some hospitals cautious.

Which systems carry the value?

Automated dispensing cabinets lead with 48% of 2025 value, USD 1,935.4 million, the most widely deployed system, installed across wards, emergency departments and operating areas, with large replacement demand as earlier generations age. Central pharmacy dispensing and storage robots hold 22%, USD 887.0 million, used in larger hospitals and health system central fill pharmacies. Intravenous compounding automation accounts for 16%, USD 645.1 million, and grows fastest, driven by safety and hazardous drug handling concerns and tightened compounding standards. Unit dose packaging and medication tracking contribute 14%, USD 564.5 million, supporting accurate dosing and traceability; the pouch and blister packagers used across hospital, retail and long-term care pharmacies are sized in the Pharmacy Repackaging Systems Market report. Each system is modelled through 2035 by hospital size and region.

Where is pharmacy automation deployed?

North America leads with 46% of 2025 value, USD 1,854.7 million, growing 6.5% a year, reflecting very high adoption of automated dispensing cabinets, strong focus on controlled substance diversion, and replacement cycles in a mature installed base. Europe holds 26%, USD 1,048.3 million, at 7.8%, where central pharmacy robots and unit dose systems are widely used and automated dispensing cabinet adoption is growing. Asia Pacific holds 20%, USD 806.4 million, and grows fastest at 9.6%, driven by hospital construction and modernisation in China, Japan, South Korea and India. The Middle East contributes USD 161.3 million at 9.4% on new hospital construction, Latin America USD 121.0 million at 8.4% and Africa USD 40.3 million at 8.0%. Six regional models sum to the global figure, with country tables in the Excel model.

Who supplies pharmacy automation?

BD, through its Pyxis automated dispensing cabinets, and Omnicell are the leading suppliers of automated dispensing systems, particularly in North America, with both offering broader medication management platforms including central pharmacy automation and analytics. Swisslog Healthcare, part of KUKA, supplies central pharmacy robotics and transport systems, and Becton Dickinson and Omnicell also supply central systems. In compounding, suppliers including Omnicell, ARxIUM, Equashield and Loccioni supply intravenous compounding robots and systems. Yuyama, Tosho and other Asian manufacturers supply unit dose packaging and dispensing systems, and Capsa Healthcare, Parata and others serve particular segments. The competitive chapter profiles each supplier’s system range, installed base by region, software and analytics capability, compounding technology and integration with hospital information systems.

How is pharmacy automation priced?

Average realised price is USD 42,000 per system in 2025, spanning a wide range. An automated dispensing cabinet costs tens of thousands of dollars depending on configuration, while a central pharmacy robot can cost from several hundred thousand to over a million dollars, and an intravenous compounding robot sits in the hundreds of thousands. Hospitals typically deploy many cabinets across their wards, so cabinet programmes involve large aggregate spending. Pricing increasingly combines hardware with software subscriptions, analytics such as diversion detection, and multi year service agreements, and some suppliers offer automation as a service with monthly fees. Replacement cycles for automated dispensing cabinets, typically around seven to ten years, generate recurring demand in mature markets. The pricing chapter publishes price bands by system type and configuration.

How do the scenarios diverge by 2035?

The base case carries 6.0% growth in systems shipped and 1.6% growth in price per system for a 7.70% revenue CAGR and USD 8,463.2 million in 2035. The budget-constrained scenario, in which hospital capital is tight and replacement cycles lengthen, sets the legs at 3.8% and 0.6%, landing near USD 6,110 million. The safety-driven scenario, in which workforce shortages and safety and compounding standards accelerate adoption of central robotics and compounding automation, sets them at 7.6% and 2.8%, carrying the market past USD 10,760 million. Each 1-point change in system growth moves the 2035 figure by roughly USD 770 million.

Which rules and standards apply?

Three layers matter. Pharmacy compounding standards come first: standards for sterile compounding and hazardous drug handling set requirements for environments, practices and documentation that drive adoption of compounding automation and controlled systems. Controlled substance regulation is second: laws governing the storage, dispensing and record keeping of controlled substances require secure storage and accountability, which automated dispensing cabinets support, and diversion prevention obligations increase the value of access controls and analytics. Medical device and data regulation is third: some pharmacy automation is regulated as medical devices, and systems handling patient and medication data must comply with health data privacy and cybersecurity requirements. The regulatory chapter maps these by jurisdiction.

What does diversion analytics change?

Automated dispensing cabinets were originally installed to control access and improve accuracy, but the data they generate has become valuable for detecting diversion of controlled substances, and this is changing how hospitals use and buy them. Every time a clinician removes a medication from a cabinet, the system records who, what, when, how much and for which patient, and when doses are wasted or returned. Individually these records say little, but analysed across many transactions they can reveal patterns suggesting diversion, such as a clinician who withdraws far more opioids than colleagues caring for similar patients, frequent cancelled transactions, or unusual waste patterns. Diversion analytics software applies statistical methods to flag these anomalies for investigation, turning cabinet data into a tool for protecting patients, staff and the institution from the consequences of diversion, which include patient harm when drugs are substituted, risk to staff with addiction, and legal and regulatory penalties. This capability has made the software and analytics layer an increasingly important part of the value hospitals receive from automation, and suppliers compete on analytics as well as hardware. The model treats analytics as a growing share of value per system.

Douglas Exclusive: the medication pathway automation matrix

This report matrices, by hospital size and pathway stage from receipt through storage, dispensing, preparation and administration, the error rates and labour intensity of manual processes, the reduction achieved by each automation technology, the diversion control provided, and the cost and payback of automating each stage, identifying where automation delivers the greatest benefit and converting hospital populations into system demand by category and region. Licence holders receive it as a maintained tab in the Excel model.

Methodology and receipts

The model is built bottom-up from systems: hospital populations by size and region, installed automation base and replacement cycles, adoption rates by system type, compounding volumes, and realised prices from supplier disclosures, with retail pharmacy automation, standalone pharmacy and health record software, smart infusion pumps and medications excluded. Every figure carries a numbered source and a confidence grade in the fact sheet above, and the working model ships with every licence. The next scheduled review of this study is September 2027.

Inside the 188-page report

17 chapters 180 sections 44 tables · 9 figures 8 company profiles 188 pages Every table ships in the Excel model
01Executive summary12 sections

The market in one view

  1. 1.1Market snapshot, 2025 and 2035
    1. 1.1.1Market size, 2025
    2. 1.1.2Forecast, 2035
    3. 1.1.3Growth rate, 2026–2035
  2. 1.2Growth decomposition
    1. 1.2.1Volume growth ('000 systems)
    2. 1.2.2Value per unit growth
  3. 1.3Key findings
  4. 1.4Segment highlights
  5. 1.5Regional highlights
  6. 1.6Competitive highlights
  7. 1.7Douglas Insights verdict
02Scope and definitions14 sections

What the Hospital Pharmacy Automation market includes

  1. 2.1Market definition
  2. 2.2Inclusions and exclusions
  3. 2.3Segmentation
    1. 2.3.1By system
    2. 2.3.2By hospital size
    3. 2.3.3By delivery model
    4. 2.3.4By region
  4. 2.4Years considered
    1. 2.4.1Base year 2025
    2. 2.4.2Forecast 2026–2035
  5. 2.5Currency and units
    1. 2.5.1Value in USD million
    2. 2.5.2Volume in '000 systems
  6. 2.6Who this report is for
03Research methodology15 sections

Bottom-up: '000 systems × value per unit

  1. 3.1Bottom-up market model
    1. 3.1.1Volume base, 2025 ('000 systems)
    2. 3.1.2Value per unit
    3. 3.1.3Forecast legs to 2035
  2. 3.2Top-down cross-checks
  3. 3.3Data triangulation
  4. 3.4Sources
    1. 3.4.1Regulators and statistics offices
    2. 3.4.2Company filings and results
    3. 3.4.3Trade and industry bodies
  5. 3.5Confidence grading
  6. 3.6Assumptions and limitations
    1. 3.6.1Hospital populations
    2. 3.6.2Adoption by system
    3. 3.6.3Replacement cycles
04Why automate medication3 sections

Errors, diversion, staffing.

  1. 4.1Medication errors
  2. 4.2Controlled substance diversion
  3. 4.3Pharmacy shortages
05Compounding automation3 sections

The most hazardous task.

  1. 5.1Dose precision
  2. 5.2Hazardous drug exposure
  3. 5.3Tighter standards
06Drivers and restraints5 sections

Forces behind growth.

  1. 6.1Medication safety
  2. 6.2Diversion control
  3. 6.3Workforce
  4. 6.4Compounding standards
  5. 6.5Cost, integration, cybersecurity
07Diversion analytics3 sections

Data as the product.

  1. 7.1Transaction patterns
  2. 7.2Anomaly detection
  3. 7.3Software value share
08Pricing3 sections

Price bands.

  1. 8.1By system type
  2. 8.2Subscriptions and service
  3. 8.3Replacement cycles
09Market size and forecast, 2025–20355 sections

Global value, volume and value per unit

  1. 9.1Market value, 2025–2035
  2. 9.2Volume ('000 systems), 2025–2035
  3. 9.3Value per unit, 2025–2035
  4. 9.4Year-on-year growth
  5. 9.5Growth decomposition
10Hospital Pharmacy Automation market, by system13 sections

4 segments, value 2025–2035

  1. 10.1Overview and share, 2025 and 2035
  2. 10.2Automated dispensing cabinets
    1. 10.2.1Market size and forecast, 2025–2035
    2. 10.2.2Growth outlook
  3. 10.3Central pharmacy robots
    1. 10.3.1Market size and forecast, 2025–2035
    2. 10.3.2Growth outlook
  4. 10.4IV compounding automation
    1. 10.4.1Market size and forecast, 2025–2035
    2. 10.4.2Growth outlook
  5. 10.5Unit dose packaging & tracking
    1. 10.5.1Market size and forecast, 2025–2035
    2. 10.5.2Growth outlook
11Hospital Pharmacy Automation market, by hospital size10 sections

3 segments, value 2025–2035

  1. 11.1Overview and share, 2025 and 2035
  2. 11.2Large academic and health system hospitals
    1. 11.2.1Market size and forecast, 2025–2035
    2. 11.2.2Growth outlook
  3. 11.3Community hospitals
    1. 11.3.1Market size and forecast, 2025–2035
    2. 11.3.2Growth outlook
  4. 11.4Specialty and cancer centres
    1. 11.4.1Market size and forecast, 2025–2035
    2. 11.4.2Growth outlook
12Hospital Pharmacy Automation market, by delivery model10 sections

3 segments, value 2025–2035

  1. 12.1Overview and share, 2025 and 2035
  2. 12.2Capital purchase
    1. 12.2.1Market size and forecast, 2025–2035
    2. 12.2.2Growth outlook
  3. 12.3Software subscription
    1. 12.3.1Market size and forecast, 2025–2035
    2. 12.3.2Growth outlook
  4. 12.4Automation as a service
    1. 12.4.1Market size and forecast, 2025–2035
    2. 12.4.2Growth outlook
13Regional analysis59 sections

6 regions with country tables

  1. 13.1Regional overview and share, 2025 and 2035
  2. 13.2North America
    1. 13.2.1Market size and forecast, 2025–2035
    2. 13.2.2By system
    3. 13.2.3By hospital size
    4. 13.2.4By delivery model
    5. 13.2.5United States
    6. 13.2.6Canada
    7. 13.2.7Mexico
  3. 13.3Europe
    1. 13.3.1Market size and forecast, 2025–2035
    2. 13.3.2By system
    3. 13.3.3By hospital size
    4. 13.3.4By delivery model
    5. 13.3.5Germany
    6. 13.3.6United Kingdom
    7. 13.3.7France
    8. 13.3.8Italy
    9. 13.3.9Spain
    10. 13.3.10Rest of Europe
  4. 13.4Asia Pacific
    1. 13.4.1Market size and forecast, 2025–2035
    2. 13.4.2By system
    3. 13.4.3By hospital size
    4. 13.4.4By delivery model
    5. 13.4.5China
    6. 13.4.6Japan
    7. 13.4.7India
    8. 13.4.8South Korea
    9. 13.4.9Australia
    10. 13.4.10Southeast Asia
    11. 13.4.11Rest of Asia Pacific
  5. 13.5Middle East
    1. 13.5.1Market size and forecast, 2025–2035
    2. 13.5.2By system
    3. 13.5.3By hospital size
    4. 13.5.4By delivery model
    5. 13.5.5Saudi Arabia
    6. 13.5.6United Arab Emirates
    7. 13.5.7Turkey
    8. 13.5.8Rest of Middle East
  6. 13.6Latin America
    1. 13.6.1Market size and forecast, 2025–2035
    2. 13.6.2By system
    3. 13.6.3By hospital size
    4. 13.6.4By delivery model
    5. 13.6.5Brazil
    6. 13.6.6Mexico
    7. 13.6.7Argentina
    8. 13.6.8Rest of Latin America
  7. 13.7Africa
    1. 13.7.1Market size and forecast, 2025–2035
    2. 13.7.2By system
    3. 13.7.3By hospital size
    4. 13.7.4By delivery model
    5. 13.7.5South Africa
    6. 13.7.6Nigeria
    7. 13.7.7Egypt
    8. 13.7.8Rest of Africa
14Competitive landscape12 sections

8 companies profiled

  1. 14.1Market concentration
  2. 14.2Market share analysis, 2025
  3. 14.3Strategic moves: acquisitions, launches, contracts
  4. 14.4Company profilesEach profile: overview, products, financials where reported, position in this market, recent developments
    1. 14.4.1BD Pyxis
    2. 14.4.2Omnicell
    3. 14.4.3ARxIUM
    4. 14.4.4Equashield
    5. 14.4.5Yuyama
    6. 14.4.6Swisslog Healthcare
    7. 14.4.7Loccioni
    8. 14.4.8Tosho
15Scenarios to 20355 sections

Bands and rules.

  1. 15.1Budget constrained case
  2. 15.2Base case case
  3. 15.3Safety driven case
  4. 15.4Sensitivity of the 2035 value
  5. 15.5Published forecasts compared
16Douglas Exclusive: medication pathway automation matrix3 sections

Maintained.

  1. 16.1Error by stage
  2. 16.2Automation reduction
  3. 16.3Payback by stage
17Appendix5 sections

Data, sources and licence

  1. 17.1Data tables (Excel model)
  2. 17.2Sources
  3. 17.3Abbreviations
  4. 17.4Change log and next review
  5. 17.5Licence and how to cite
TList of tables44
  1. Table 1Market value, 2025–2035 (USD million)
  2. Table 2Volume, 2025–2035 ('000 systems)
  3. Table 3Value per unit, 2025–2035
  4. Table 4Hospital Pharmacy Automation market by system, 2025–2035 (USD million)
  5. Table 5Automated dispensing cabinets: market size, 2025–2035 (USD million)
  6. Table 6Central pharmacy robots: market size, 2025–2035 (USD million)
  7. Table 7IV compounding automation: market size, 2025–2035 (USD million)
  8. Table 8Unit dose packaging & tracking: market size, 2025–2035 (USD million)
  9. Table 9Hospital Pharmacy Automation market by hospital size, 2025–2035 (USD million)
  10. Table 10Large academic and health system hospitals: market size, 2025–2035 (USD million)
  11. Table 11Community hospitals: market size, 2025–2035 (USD million)
  12. Table 12Specialty and cancer centres: market size, 2025–2035 (USD million)
  13. Table 13Hospital Pharmacy Automation market by delivery model, 2025–2035 (USD million)
  14. Table 14Capital purchase: market size, 2025–2035 (USD million)
  15. Table 15Software subscription: market size, 2025–2035 (USD million)
  16. Table 16Automation as a service: market size, 2025–2035 (USD million)
  17. Table 17Hospital Pharmacy Automation market by region, 2025–2035 (USD million)
  18. Table 18North America: market by system, 2025–2035 (USD million)
  19. Table 19North America: market by hospital size, 2025–2035 (USD million)
  20. Table 20North America: market by delivery model, 2025–2035 (USD million)
  21. Table 21North America: market by country, 2025–2035 (USD million)
  22. Table 22Europe: market by system, 2025–2035 (USD million)
  23. Table 23Europe: market by hospital size, 2025–2035 (USD million)
  24. Table 24Europe: market by delivery model, 2025–2035 (USD million)
  25. Table 25Europe: market by country, 2025–2035 (USD million)
  26. Table 26Asia Pacific: market by system, 2025–2035 (USD million)
  27. Table 27Asia Pacific: market by hospital size, 2025–2035 (USD million)
  28. Table 28Asia Pacific: market by delivery model, 2025–2035 (USD million)
  29. Table 29Asia Pacific: market by country, 2025–2035 (USD million)
  30. Table 30Middle East: market by system, 2025–2035 (USD million)
  31. Table 31Middle East: market by hospital size, 2025–2035 (USD million)
  32. Table 32Middle East: market by delivery model, 2025–2035 (USD million)
  33. Table 33Middle East: market by country, 2025–2035 (USD million)
  34. Table 34Latin America: market by system, 2025–2035 (USD million)
  35. Table 35Latin America: market by hospital size, 2025–2035 (USD million)
  36. Table 36Latin America: market by delivery model, 2025–2035 (USD million)
  37. Table 37Latin America: market by country, 2025–2035 (USD million)
  38. Table 38Africa: market by system, 2025–2035 (USD million)
  39. Table 39Africa: market by hospital size, 2025–2035 (USD million)
  40. Table 40Africa: market by delivery model, 2025–2035 (USD million)
  41. Table 41Africa: market by country, 2025–2035 (USD million)
  42. Table 42Company market shares, 2025
  43. Table 43Scenario values, 2035
  44. Table 44Sources and confidence grades by figure
FList of figures9
  1. Figure 1Market value, 2025–2035
  2. Figure 2Growth decomposition, 2026–2035
  3. Figure 3Share by system, 2025 and 2035
  4. Figure 4Share by hospital size, 2025 and 2035
  5. Figure 5Share by delivery model, 2025 and 2035
  6. Figure 6Share by region, 2025 and 2035
  7. Figure 7Growth by region, 2026–2035
  8. Figure 8Market concentration, 2025
  9. Figure 9Scenario paths to 2035

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Questions buyers ask

How big is the hospital pharmacy automation market?

USD 4,032.0 million in 2025, on Douglas Insights' bottom-up estimate: about 96,000 systems at USD 42,000 each.

How fast is pharmacy automation growing?

7.70% a year, reaching USD 8,463.2 million by 2035; 6.0 points from systems and 1.6 points from price.

Which pharmacy automation system leads?

Automated dispensing cabinets, at 48% of 2025 value (USD 1,935.4 million); IV compounding automation grows fastest.

Where is pharmacy automation deployed?

North America holds 46% of value; Asia Pacific grows fastest at 9.6% on hospital construction.

Who supplies hospital pharmacy automation?

BD (Pyxis), Omnicell, Swisslog Healthcare, ARxIUM, Equashield, Loccioni, Yuyama and Tosho lead.

What does the licence include?

The 188-page PDF, the editable Excel model, the Douglas Exclusive medication pathway automation matrix, a briefing call and the next edition at no extra charge.

Research & citation

This report was researched, written and reviewed by the Douglas Insights Research Desk under the Douglas Insights editorial standards. Material errors are logged in the corrections log. No section is sponsored.

Cite this report Douglas Insights Inc (2026). Hospital Pharmacy Automation Market. Report DI-HC-10154, September 2026. https://www.douglasinsights.com/hospital-pharmacy-automation-market/

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