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Europe Machine Learning in Pharmaceutical Industry Market Size, Share & Industry Trends Analysis Report By Component (Solution and Services), By Deployment Mode (Cloud and On-premise), By Organization size, By Country and Growth Forecast, 2023-2029

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    Report

  • 94 Pages
  • April 2023
  • Region: Europe
  • Marqual IT Solutions Pvt. Ltd (KBV Research)
  • ID: 5806596
The Europe Machine Learning in Pharmaceutical Industry Market should witness market growth of 34.1% CAGR during the forecast period (2023-2029).

Machine learning algorithms can assist in identifying the most efficient treatment solutions for individual patients based on their distinctive traits by utilizing vast volumes of patient data and utilizing cutting-edge analytical approaches. Analysis of enormous and intricate data sets, including genomic information, electronic medical records, and patient-reported outcomes, is a key component of machine learning in personalized medicine. This enables more accurate and individualized treatment suggestions by identifying patterns and correlations that human analysts may not have noticed immediately.

Machine learning can also enhance clinical trial design by identifying patient demographics that would be most likely to profit from certain medications. Machine learning algorithms can assist in processing and analyzing this data to find patterns and trends that a traditional statistical approach might miss. Personalized treatment regimens for patients based on their unique traits, such as genetic makeup, lifestyle factors, and medical history, can be created using machine learning. Throughout the projected period, this aspect is anticipated to fuel the market's expansion.

The Swedish government and the Swedish Association of Local Authorities and Regions created an e-Health policy in Sweden in 2016. (SALAR). The Swedish healthcare system includes eHealth in a big way. The annual regional investment in healthcare IT is about $1.22 billion. E-prescriptions are often used, and electronic health records (EHR) systems are extensively adopted (99 percent of all Swedish prescriptions are issued electronically). There are several non-American software and EHR businesses in the hospital and primary care sectors. The number of digital healthcare services - where patients can contact doctors and nurses through smartphone apps - has significantly expanded over the last few years. Thus, these factors are aiding the market to grow in the region.

The Germany market dominated the Europe Machine Learning in Pharmaceutical Industry Market by Country in 2022, and would continue to be a dominant market till 2029; thereby, achieving a market value of $761.2 million by 2029. The UK market is anticipated to grow at a CAGR of 33% during (2023-2029). Additionally, The France market would exhibit a CAGR of 35.1% during (2023-2029).

Based on Component, the market is segmented into Solution and Services. Based on Deployment Mode, the market is segmented into Cloud and On-premise. Based on Organization size, the market is segmented into Large Enterprises and SMEs. Based on countries, the market is segmented into Germany, UK, France, Russia, Spain, Italy, and Rest of Europe.

The market research report covers the analysis of key stake holders of the market. Key companies profiled in the report include Google LLC (Alphabet, Inc.), NVIDIA Corporation, IBM Corporation, Microsoft Corporation, Cyclica, Inc., BioSymetrics Inc., Cloud Pharmaceuticals, Inc., Deep Genomics Incorporated and Atomwise, Inc.

Scope of the Study

By Component

  • Solution
  • Services

By Deployment Mode

  • Cloud
  • On premise

By Organization size

  • Large Enterprises
  • SMEs

By Country

  • Germany
  • UK
  • France
  • Russia
  • Spain
  • Italy
  • Rest of Europe

Key Market Players

List of Companies Profiled in the Report:

  • Google LLC (Alphabet, Inc.)
  • NVIDIA Corporation
  • IBM Corporation
  • Microsoft Corporation
  • Cyclica, Inc.
  • BioSymetrics Inc.
  • Cloud Pharmaceuticals, Inc.
  • Deep Genomics Incorporated
  • Atomwise, Inc.

Unique Offerings

  • Exhaustive coverage
  • The highest number of Market tables and figures
  • Subscription-based model available
  • Guaranteed best price
  • Assured post sales research support with 10% customization free

Table of Contents

Chapter 1. Market Scope & Methodology
1.1 Market Definition
1.2 Objectives
1.3 Market Scope
1.4 Segmentation
1.4.1 Europe Machine Learning in Pharmaceutical Industry Market, by Component
1.4.2 Europe Machine Learning in Pharmaceutical Industry Market, by Deployment Mode
1.4.3 Europe Machine Learning in Pharmaceutical Industry Market, by Organization size
1.4.4 Europe Machine Learning in Pharmaceutical Industry Market, by Country
1.5 Methodology for the research
Chapter 2. Market Overview
2.1 Introduction
2.1.1 Overview
2.1.1.1 Market composition & scenario
2.2 Key Factors Impacting the Market
2.2.1 Market Drivers
2.2.2 Market Restraints
Chapter 3. Competition Analysis - Global
3.1 Analyst's Cardinal Matrix
3.2 Recent Industry Wide Strategic Developments
3.2.1 Partnerships, Collaborations and Agreements
3.2.2 Product Launches and Product Expansions
3.2.3 Acquisition and Mergers
3.3 Top Winning Strategies
3.3.1 Key Leading Strategies: Percentage Distribution (2019-2023)
3.3.2 Key Strategic Move: (Partnerships, Collaborations and Agreements: 2019, Sep-2023, Mar) Leading Players
Chapter 4. Europe Machine Learning in Pharmaceutical Industry Market by Component
4.1 Europe Solution Market by Country
4.2 Europe Services Market by Country
Chapter 5. Europe Machine Learning in Pharmaceutical Industry Market by Deployment Mode
5.1 Europe Cloud Market by Country
5.2 Europe On premise Market by Country
Chapter 6. Europe Machine Learning in Pharmaceutical Industry Market by Organization size
6.1 Europe Large Enterprises Market by Country
6.2 Europe SMEs Market by Country
Chapter 7. Europe Machine Learning in Pharmaceutical Industry Market by Country
7.1 Germany Machine Learning in Pharmaceutical Industry Market
7.1.1 Germany Machine Learning in Pharmaceutical Industry Market by Component
7.1.2 Germany Machine Learning in Pharmaceutical Industry Market by Deployment Mode
7.1.3 Germany Machine Learning in Pharmaceutical Industry Market by Organization size
7.2 UK Machine Learning in Pharmaceutical Industry Market
7.2.1 UK Machine Learning in Pharmaceutical Industry Market by Component
7.2.2 UK Machine Learning in Pharmaceutical Industry Market by Deployment Mode
7.2.3 UK Machine Learning in Pharmaceutical Industry Market by Organization size
7.3 France Machine Learning in Pharmaceutical Industry Market
7.3.1 France Machine Learning in Pharmaceutical Industry Market by Component
7.3.2 France Machine Learning in Pharmaceutical Industry Market by Deployment Mode
7.3.3 France Machine Learning in Pharmaceutical Industry Market by Organization size
7.4 Russia Machine Learning in Pharmaceutical Industry Market
7.4.1 Russia Machine Learning in Pharmaceutical Industry Market by Component
7.4.2 Russia Machine Learning in Pharmaceutical Industry Market by Deployment Mode
7.4.3 Russia Machine Learning in Pharmaceutical Industry Market by Organization size
7.5 Spain Machine Learning in Pharmaceutical Industry Market
7.5.1 Spain Machine Learning in Pharmaceutical Industry Market by Component
7.5.2 Spain Machine Learning in Pharmaceutical Industry Market by Deployment Mode
7.5.3 Spain Machine Learning in Pharmaceutical Industry Market by Organization size
7.6 Italy Machine Learning in Pharmaceutical Industry Market
7.6.1 Italy Machine Learning in Pharmaceutical Industry Market by Component
7.6.2 Italy Machine Learning in Pharmaceutical Industry Market by Deployment Mode
7.6.3 Italy Machine Learning in Pharmaceutical Industry Market by Organization size
7.7 Rest of Europe Machine Learning in Pharmaceutical Industry Market
7.7.1 Rest of Europe Machine Learning in Pharmaceutical Industry Market by Component
7.7.2 Rest of Europe Machine Learning in Pharmaceutical Industry Market by Deployment Mode
7.7.3 Rest of Europe Machine Learning in Pharmaceutical Industry Market by Organization size
Chapter 8. Company Profiles
8.1 NVIDIA Corporation
8.1.1 Company Overview
8.1.2 Financial Analysis
8.1.3 Segmental and Regional Analysis
8.1.4 Research & Development Expenses
8.1.5 Recent strategies and developments:
8.1.5.1 Partnerships, Collaborations, and Agreements:
8.1.5.2 Acquisition and Mergers:
8.1.6 SWOT Analysis
8.2 IBM Corporation
8.2.1 Company Overview
8.2.2 Financial Analysis
8.2.3 Regional & Segmental Analysis
8.2.4 Research & Development Expenses
8.2.5 Recent strategies and developments:
8.2.5.1 Partnerships, Collaborations, and Agreements:
8.2.5.2 Acquisition and Mergers:
8.2.6 SWOT Analysis
8.3 Microsoft Corporation
8.3.1 Company Overview
8.3.2 Financial Analysis
8.3.3 Segmental and Regional Analysis
8.3.4 Research & Development Expenses
8.3.5 Recent strategies and developments:
8.3.5.1 Partnerships, Collaborations, and Agreements:
8.3.5.2 Product Launches and Product Expansions:
8.3.6 SWOT Analysis
8.4 Google LLC (Alphabet, Inc.)
8.4.1 Company Overview
8.4.2 Financial Analysis
8.4.3 Segmental and Regional Analysis
8.4.4 Research & Development Expense
8.4.5 Recent strategies and developments:
8.4.5.1 Product Launches and Product Expansions:
8.4.6 SWOT Analysis
8.5 Cyclica, Inc.
8.5.1 Company Overview
8.5.2 Recent strategies and developments:
8.5.2.1 Partnerships, Collaborations, and Agreements:
8.5.2.2 Product Launches and Product Expansions:
8.6 BioSymetrics, Inc.
8.6.1 Company Overview
8.6.2 Recent strategies and developments:
8.6.2.1 Partnerships, Collaborations, and Agreements:
8.6.2.2 Product Launches and Product Expansions:
8.7 Deep Genomics Incorporated
8.7.1 Company Overview
8.7.2 Recent strategies and developments:
8.7.2.1 Partnerships, Collaborations, and Agreements:
8.8 Atomwise, Inc.
8.8.1 Company Overview
8.8.2 Recent strategies and developments:
8.8.2.1 Partnerships, Collaborations, and Agreements:
8.9 Cloud Pharmaceuticals, Inc.
8.9.1 Company Overview

Companies Mentioned

  • Google LLC (Alphabet, Inc.)
  • NVIDIA Corporation
  • IBM Corporation
  • Microsoft Corporation
  • Cyclica, Inc.
  • BioSymetrics Inc.
  • Cloud Pharmaceuticals, Inc.
  • Deep Genomics Incorporated
  • Atomwise, Inc.

Methodology

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