ICT

Generative AI in Agriculture Market Size To Grow USD 1,287.84 Million by 2032

According to a recent research report titled ” Generative AI in Agriculture Market (By Technology: Machine Learning, Computer Vision, Predictive Analytics: By Application: Precision Farming, Agriculture Robots, Livestock Monitoring, Drone Analytics, Labor Management, Others) – Global Industry Analysis, Size, Share, Growth, Trends, Regional Outlook, and Forecast 2023-2032″ published by Precedence Research, the global generative AI in agriculture market size is projected to touch around USD 1,287.84 million by 2032 and growing at a CAGR of 25.02% over the forecast period 2023 to 2032. This comprehensive study examines various factors and their impact on the growth of the GENERATIVE AI IN AGRICULTURE market.

Generative AI In Agriculture Market Size 2023 To 2032

Key Takeaways:

  • North America generated more than 48% of revenue share in 2022.
  • By technology, the computer vision segment is expected to grow at the highest CAGR during the forecast period.
  • By application, the precision farming segment is expected to dominate the market over the forecast period.

The report primarily focuses on the volume and value of the GENERATIVE AI IN AGRICULTURE market at the global, regional, and company levels. At the global level, the report analyzes historical data and future prospects to present an overview of the overall market size. Regionally, the study emphasizes key regions such as North America, Europe, the Middle East & Africa, Latin America, and others.

Furthermore, the research report provides specific segmentations based on regions (countries), companies, and all market segments. This analysis offers insights into the growth and revenue trends during the historical period of 2017 to 2032, as well as the projected period. By understanding these segments, it becomes possible to identify the significance of different factors that contribute to market growth.

Download a Free Copy of Our Latest Sample Report@ https://www.precedenceresearch.com/sample/3122

The research also highlights significant progressions in both organic and inorganic growth strategies within the global generative AI in agriculture market. Numerous companies are placing emphasis on new product launches, gaining product approvals, and implementing various business expansion tactics. Moreover, the report presents detailed profiles of firms operating in the generative AI in agriculture market, along with their respective market strategies. Additionally, the study concentrates on prominent industry participants, furnishing details such as company profiles, product offerings, financial updates, and noteworthy advancements.

Generative AI in Agriculture Market Report Scope

Report Coverage Details
Market Size in 2023 USD 172.6 Million
Market Size by 2032 USD 1,287.84 Million
Growth Rate from 2023 to 2032 CAGR of 25.02%
Largest Market North America
Base Year 2022
Forecast Period 2023 to 2032
Segments Covered By Technology and By Application
Regions Covered North America, Europe, Asia-Pacific, Latin America, and Middle East & Africa

Also read: Generative AI in Energy Market Size To Grow USD 5,338.09 Million by 2032

Region Snapshoot:

In 2022, North America emerged as the leading contributor to the revenue in the generative AI in agriculture market.

The global generative AI market in agriculture is expected to be dominated by North America, with a significant revenue share of 47.6%. This can be attributed to the substantial investments and research initiatives in agricultural technology in the United States. Over the past few years, the agricultural sector in this region has witnessed noteworthy investments and a surge in research activities. Additionally, North America benefits from a thriving startup ecosystem, hosting numerous companies that specialize in AI solutions tailored for the agricultural industry.

Major Key Points Covered in Report:

Executive Summary: It includes key trends of the electric vehicle fuel cell market related to products, applications, and other crucial factors. It also provides analysis of the competitive landscape and CAGR and market size of the electric vehicle fuel cell market based on production and revenue.

Production and Consumption by Region: It covers all regional markets to which the research study relates. Prices and key players in addition to production and consumption in each regional market are discussed.

Key Players: Here, the report throws light on financial ratios, pricing structure, production cost, gross profit, sales volume, revenue, and gross margin of leading and prominent companies competing in the Electric vehicle fuel cell market.

Market Segments: This part of the report discusses product, application and other segments of the electric vehicle fuel cell market based on market share, CAGR, market size, and various other factors.

Research Methodology: This section discusses the research methodology and approach used to prepare the report. It covers data triangulation, market breakdown, market size estimation, and research design and/or programs.

Market Key Players

The report incorporates company profiles of key players in the market. These profiles encompass vital information such as product portfolio, key strategies, and a comprehensive SWOT analysis for each player. Additionally, the report presents a matrix illustrating the presence of each prominent player, enabling readers to gain actionable insights. This facilitates a thoughtful assessment of the market status and aids in predicting the level of competition in the generative AI in agriculture market.

Some of the prominent players in the generative AI in agriculture market include

  • Google LLC
  • Microsoft Corporation
  • AGCO Corporation
  • Deere & Company
  • A.A.A Taranis Visual Ltd.
  • AgEagle Aerial Systems Inc.
  • Bayer AG
  • Raven Industries Inc.
  • Ag Leader Technology
  • Trimble Inc.
  • IBM Corporation
  • Gamaya SA
  • Granular Inc.

Generative AI in Agriculture Market  Segmentations 

By Technology

  • Machine Learning
  • Computer Vision
  • Predictive Analytics

By Application

  • Precision Farming
  • Agriculture Robots
  • Livestock Monitoring
  • Drone Analytics
  • Labor Management
  • Others

By Geography

  • North America
  • Europe
  • Asia-Pacific
  • Latin America
  • Middle East and Africa

Why should you invest in this report?

This report presents a compelling investment opportunity for those interested in the global generative AI in agriculture market. It serves as an extensive and informative guide, offering clear insights into this niche market. By delving into the report, you will gain a comprehensive understanding of the various major application areas for generative AI in agriculture. Furthermore, it provides crucial information about the key regions worldwide that are expected to experience substantial growth within the forecast period of 2023-2030. Armed with this knowledge, you can strategically plan your market entry approaches.

Moreover, this report offers a deep analysis of the competitive landscape, equipping you with valuable insights into the level of competition prevalent in this highly competitive market. If you are already an established player, it will enable you to assess the strategies employed by your competitors, allowing you to stay ahead as market leaders. For newcomers entering this market, the extensive data provided in this report is invaluable, providing a solid foundation for informed decision-making.

Some of the key questions answered in this report:       

  • What is the size of the overall Generative AI in agriculture market and its segments?
  • What are the key segments and sub-segments in the market?
  • What are the key drivers, restraints, opportunities and challenges of the Generative AI in agriculture market and how they are expected to impact the market?
  • What are the attractive investment opportunities within the Generative AI in agriculture market?
  • What is the Generative AI in agriculture market size at the regional and country-level?
  • Who are the key market players and their key competitors?
  • What are the strategies for growth adopted by the key players in Generative AI in agriculture market?
  • What are the recent trends in Generative AI in agriculture market? (M&A, partnerships, new product developments, expansions)?
  • What are the challenges to the Generative AI in agriculture market growth?
  • What are the key market trends impacting the growth of Generative AI in agriculture market?

Table of Content:

Chapter 1. Introduction

1.1. Research Objective

1.2. Scope of the Study

1.3. Definition

Chapter 2. Research Methodology (Premium Insights)

2.1. Research Approach

2.2. Data Sources

2.3. Assumptions & Limitations

Chapter 3. Executive Summary

3.1. Market Snapshot

Chapter 4. Market Variables and Scope 

4.1. Introduction

4.2. Market Classification and Scope

4.3. Industry Value Chain Analysis

4.3.1. Raw Material Procurement Analysis

4.3.2. Sales and Distribution Channel Analysis

4.3.3. Downstream Buyer Analysis

Chapter 5. COVID 19 Impact on Generative AI in Agriculture Market 

5.1. COVID-19 Landscape: Generative AI in Agriculture Industry Impact

5.2. COVID 19 – Impact Assessment for the Industry

5.3. COVID 19 Impact: Global Major Government Policy

5.4. Market Trends and Opportunities in the COVID-19 Landscape

Chapter 6. Market Dynamics Analysis and Trends

6.1. Market Dynamics

6.1.1. Market Drivers

6.1.2. Market Restraints

6.1.3. Market Opportunities

6.2. Porter’s Five Forces Analysis

6.2.1. Bargaining power of suppliers

6.2.2. Bargaining power of buyers

6.2.3. Threat of substitute

6.2.4. Threat of new entrants

6.2.5. Degree of competition

Chapter 7. Competitive Landscape

7.1.1. Company Market Share/Positioning Analysis

7.1.2. Key Strategies Adopted by Players

7.1.3. Vendor Landscape

7.1.3.1. List of Suppliers

7.1.3.2. List of Buyers

Chapter 8. Global Generative AI in Agriculture Market, By Technology

8.1. Generative AI in Agriculture Market, by Technology, 2023-2032

8.1.1. Machine Learning

8.1.1.1. Market Revenue and Forecast (2020-2032)

8.1.2. Computer Vision

8.1.2.1. Market Revenue and Forecast (2020-2032)

8.1.3. Predictive Analytics

8.1.3.1. Market Revenue and Forecast (2020-2032)

Chapter 9. Global Generative AI in Agriculture Market, By Application

9.1. Generative AI in Agriculture Market, by Application, 2023-2032

9.1.1. Precision Farming

9.1.1.1. Market Revenue and Forecast (2020-2032)

9.1.2. Agriculture Robots

9.1.2.1. Market Revenue and Forecast (2020-2032)

9.1.3. Livestock Monitoring

9.1.3.1. Market Revenue and Forecast (2020-2032)

9.1.4. Drone Analytics

9.1.4.1. Market Revenue and Forecast (2020-2032)

9.1.5. Labor Management

9.1.5.1. Market Revenue and Forecast (2020-2032)

9.1.6. Others

9.1.6.1. Market Revenue and Forecast (2020-2032)

Chapter 10. Global Generative AI in Agriculture Market, Regional Estimates and Trend Forecast

10.1. North America

10.1.1. Market Revenue and Forecast, by Technology (2020-2032)

10.1.2. Market Revenue and Forecast, by Application (2020-2032)

10.1.3. U.S.

10.1.3.1. Market Revenue and Forecast, by Technology (2020-2032)

10.1.3.2. Market Revenue and Forecast, by Application (2020-2032)

10.1.4. Rest of North America

10.1.4.1. Market Revenue and Forecast, by Technology (2020-2032)

10.1.4.2. Market Revenue and Forecast, by Application (2020-2032)

10.2. Europe

10.2.1. Market Revenue and Forecast, by Technology (2020-2032)

10.2.2. Market Revenue and Forecast, by Application (2020-2032)

10.2.3. UK

10.2.3.1. Market Revenue and Forecast, by Technology (2020-2032)

10.2.3.2. Market Revenue and Forecast, by Application (2020-2032)

10.2.4. Germany

10.2.4.1. Market Revenue and Forecast, by Technology (2020-2032)

10.2.4.2. Market Revenue and Forecast, by Application (2020-2032)

10.2.5. France

10.2.5.1. Market Revenue and Forecast, by Technology (2020-2032)

10.2.5.2. Market Revenue and Forecast, by Application (2020-2032)

10.2.6. Rest of Europe

10.2.6.1. Market Revenue and Forecast, by Technology (2020-2032)

10.2.6.2. Market Revenue and Forecast, by Application (2020-2032)

10.3. APAC

10.3.1. Market Revenue and Forecast, by Technology (2020-2032)

10.3.2. Market Revenue and Forecast, by Application (2020-2032)

10.3.3. India

10.3.3.1. Market Revenue and Forecast, by Technology (2020-2032)

10.3.3.2. Market Revenue and Forecast, by Application (2020-2032)

10.3.4. China

10.3.4.1. Market Revenue and Forecast, by Technology (2020-2032)

10.3.4.2. Market Revenue and Forecast, by Application (2020-2032)

10.3.5. Japan

10.3.5.1. Market Revenue and Forecast, by Technology (2020-2032)

10.3.5.2. Market Revenue and Forecast, by Application (2020-2032)

10.3.6. Rest of APAC

10.3.6.1. Market Revenue and Forecast, by Technology (2020-2032)

10.3.6.2. Market Revenue and Forecast, by Application (2020-2032)

10.4. MEA

10.4.1. Market Revenue and Forecast, by Technology (2020-2032)

10.4.2. Market Revenue and Forecast, by Application (2020-2032)

10.4.3. GCC

10.4.3.1. Market Revenue and Forecast, by Technology (2020-2032)

10.4.3.2. Market Revenue and Forecast, by Application (2020-2032)

10.4.4. North Africa

10.4.4.1. Market Revenue and Forecast, by Technology (2020-2032)

10.4.4.2. Market Revenue and Forecast, by Application (2020-2032)

10.4.5. South Africa

10.4.5.1. Market Revenue and Forecast, by Technology (2020-2032)

10.4.5.2. Market Revenue and Forecast, by Application (2020-2032)

10.4.6. Rest of MEA

10.4.6.1. Market Revenue and Forecast, by Technology (2020-2032)

10.4.6.2. Market Revenue and Forecast, by Application (2020-2032)

10.5. Latin America

10.5.1. Market Revenue and Forecast, by Technology (2020-2032)

10.5.2. Market Revenue and Forecast, by Application (2020-2032)

10.5.3. Brazil

10.5.3.1. Market Revenue and Forecast, by Technology (2020-2032)

10.5.3.2. Market Revenue and Forecast, by Application (2020-2032)

10.5.4. Rest of LATAM

10.5.4.1. Market Revenue and Forecast, by Technology (2020-2032)

10.5.4.2. Market Revenue and Forecast, by Application (2020-2032)

Chapter 11. Company Profiles

11.1. Google LLC

11.1.1. Company Overview

11.1.2. Product Offerings

11.1.3. Financial Performance

11.1.4. Recent Initiatives

11.2. Microsoft Corporation

11.2.1. Company Overview

11.2.2. Product Offerings

11.2.3. Financial Performance

11.2.4. Recent Initiatives

11.3. AGCO Corporation

11.3.1. Company Overview

11.3.2. Product Offerings

11.3.3. Financial Performance

11.3.4. Recent Initiatives

11.4. Deere & Company

11.4.1. Company Overview

11.4.2. Product Offerings

11.4.3. Financial Performance

11.4.4. Recent Initiatives

11.5. A.A.A Taranis Visual L

11.5.1. Company Overview

11.5.2. Product Offerings

11.5.3. Financial Performance

11.5.4. Recent Initiatives

11.6. AgEagle Aerial Systems Inc.

11.6.1. Company Overview

11.6.2. Product Offerings

11.6.3. Financial Performance

11.6.4. Recent Initiatives

11.7. Bayer AG

11.7.1. Company Overview

11.7.2. Product Offerings

11.7.3. Financial Performance

11.7.4. Recent Initiatives

11.8. Raven Industries Inc.

11.8.1. Company Overview

11.8.2. Product Offerings

11.8.3. Financial Performance

11.8.4. Recent Initiatives

11.9. Ag Leader Technology

11.9.1. Company Overview

11.9.2. Product Offerings

11.9.3. Financial Performance

11.9.4. Recent Initiatives

11.10. Trimble Inc.

11.10.1. Company Overview

11.10.2. Product Offerings

11.10.3. Financial Performance

11.10.4. Recent Initiatives

Chapter 12. Research Methodology

12.1. Primary Research

12.2. Secondary Research

12.3. Assumptions

Chapter 13. Appendix

13.1. About Us

13.2. Glossary of Terms

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Prathamesh

I have completed my education in Bachelors in Computer Application. A focused learner having a keen interest in the field of digital marketing, SEO, SMM, and Google Analytics enthusiastic to learn new things along with building leadership skills.

Prathamesh

I have completed my education in Bachelors in Computer Application. A focused learner having a keen interest in the field of digital marketing, SEO, SMM, and Google Analytics enthusiastic to learn new things along with building leadership skills.

View all posts by Prathamesh →

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