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Asia-Pacific Agriculture IoT Market Size, Share & Trends Analysis Report By Deployment, By Component, By Connectivity, By Application, By Farm Type, By Country and Growth Forecast, 2024 - 2031

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    Report

  • 138 Pages
  • January 2025
  • Region: Asia Pacific
  • Marqual IT Solutions Pvt. Ltd (KBV Research)
  • ID: 6050129
The Asia Pacific Agriculture IoT Market is expected to witness market growth of 10.5% CAGR during the forecast period (2024-2031).

The China market dominated the Asia Pacific Agriculture IoT Market by country in 2023, and is expected to continue to be a dominant market till 2031; thereby, achieving a market value of $6.21 billion by 2031. The Japan market is expected to witness a CAGR of 9.8% during 2024-2031. Additionally, the India market would register a CAGR of 11.2% during 2024-2031.



Beyond the field, IoT technologies are transforming the agricultural supply chain by enhancing traceability and transparency. IoT-enabled systems facilitate the monitoring of food products from their source on the farm to the consumer's table, thereby offering consumers comprehensive information regarding the origin, quality, and agricultural practices employed in their production. For instance, blockchain integrated with IoT devices in the coffee industry ensures ethical sourcing and fair-trade practices, meeting the rising consumer demand for sustainable and ethically produced food.

Integrated with IoT connectivity, drones are revolutionizing modern agriculture through field monitoring, pesticide spraying, and aerial imaging applications. Drones equipped with IoT technology are capable of efficiently surveying extensive agricultural landscapes, delivering real-time information regarding crop health, soil conditions, and irrigation requirements. This helps farmers efficiently identify and address pest infestations or water stress.

Japan’s aging farming population and labor shortages have accelerated the adoption of IoT and AI-powered agricultural solutions. The Smart Agriculture Demonstration Project, initiated by the Ministry of Agriculture, Forestry, and Fisheries (MAFF), is advancing automation through IoT-driven systems like drone-based crop monitoring and autonomous tractors. The Society 5.0 Initiative promotes data-driven farming practices by integrating AI-powered yield prediction models and greenhouse automation tools to boost productivity and sustainability. IoT technologies significantly contribute to precision livestock management by mitigating labor-related challenges while ensuring the maintenance of high-quality production standards. Japan’s focus on sustainability and high-tech farming positions it as a leader in the agriculture IoT market. Hence, with rapid urbanization, increasing food demand, and ongoing climate challenges, the region is set to become one of the fastest-growing markets for agriculture IoT technologies in the coming years.

List of Key Companies Profiled

  • Deere & Company
  • Trimble, Inc.
  • Raven Industries, Inc.
  • AGCO Corporation
  • Valmont Industries, Inc.
  • Cropin Technology Solutions Private Limited
  • A.A.A Taranis Visual Ltd.
  • Libelium Comunicaciones Distribuidas S.L.
  • Robert Bosch GmbH
  • NXP Semiconductors N.V.

Market Report Segmentation

By Deployment
  • On-premise
  • Cloud
By Component
  • Hardware
  • Software
  • Services
By Connectivity
  • Wi-Fi
  • Cellular
  • Bluetooth
  • Other Connectivity
By Application
  • Precision Farming
  • Livestock Monitoring
  • Smart Greenhouse
  • Aquaculture
  • Other Application
By Farm Type
  • Large
  • Mid-sized
  • Small
By Country
  • China
  • Japan
  • India
  • South Korea
  • Singapore
  • Malaysia
  • Rest of Asia Pacific

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 Asia Pacific Agriculture IoT Market, by Deployment
1.4.2 Asia Pacific Agriculture IoT Market, by Component
1.4.3 Asia Pacific Agriculture IoT Market, by Connectivity
1.4.4 Asia Pacific Agriculture IoT Market, by Application
1.4.5 Asia Pacific Agriculture IoT Market, by Farm Type
1.4.6 Asia Pacific Agriculture IoT Market, by Country
1.5 Methodology for the Research
Chapter 2. Market at a Glance
2.1 Key Highlights
Chapter 3. Market Overview
3.1 Introduction
3.1.1 Overview
3.1.1.1 Market Composition and Scenario
3.2 Key Factors Impacting the Market
3.2.1 Market Drivers
3.2.2 Market Restraints
3.2.3 Market Opportunities
3.2.4 Market Challenges
Chapter 4. Competition Analysis - Global
4.1 Market Share Analysis, 2023
4.2 Recent Strategies Deployed in Agriculture IoT Market
4.3 Porter Five Forces Analysis
Chapter 5. Asia Pacific Agriculture IoT Market by Deployment
5.1 Asia Pacific On-premise Market by Country
5.2 Asia Pacific Cloud Market by Country
Chapter 6. Asia Pacific Agriculture IoT Market by Component
6.1 Asia Pacific Hardware Market by Country
6.2 Asia Pacific Software Market by Country
6.3 Asia Pacific Services Market by Country
Chapter 7. Asia Pacific Agriculture IoT Market by Connectivity
7.1 Asia Pacific Wi-Fi Market by Country
7.2 Asia Pacific Cellular Market by Country
7.3 Asia Pacific Bluetooth Market by Country
7.4 Asia Pacific Other Connectivity Market by Country
Chapter 8. Asia Pacific Agriculture IoT Market by Application
8.1 Asia Pacific Precision Farming Market by Country
8.2 Asia Pacific Livestock Monitoring Market by Country
8.3 Asia Pacific Smart Greenhouse Market by Country
8.4 Asia Pacific Aquaculture Market by Country
8.5 Asia Pacific Other Application Market by Country
Chapter 9. Asia Pacific Agriculture IoT Market by Farm Type
9.1 Asia Pacific Large Market by Country
9.2 Asia Pacific Mid-sized Market by Country
9.3 Asia Pacific Small Market by Country
Chapter 10. Asia Pacific Agriculture IoT Market by Country
10.1 China Agriculture IoT Market
10.1.1 China Agriculture IoT Market by Deployment
10.1.2 China Agriculture IoT Market by Component
10.1.3 China Agriculture IoT Market by Connectivity
10.1.4 China Agriculture IoT Market by Application
10.1.5 China Agriculture IoT Market by Farm Type
10.2 Japan Agriculture IoT Market
10.2.1 Japan Agriculture IoT Market by Deployment
10.2.2 Japan Agriculture IoT Market by Component
10.2.3 Japan Agriculture IoT Market by Connectivity
10.2.4 Japan Agriculture IoT Market by Application
10.2.5 Japan Agriculture IoT Market by Farm Type
10.3 India Agriculture IoT Market
10.3.1 India Agriculture IoT Market by Deployment
10.3.2 India Agriculture IoT Market by Component
10.3.3 India Agriculture IoT Market by Connectivity
10.3.4 India Agriculture IoT Market by Application
10.3.5 India Agriculture IoT Market by Farm Type
10.4 South Korea Agriculture IoT Market
10.4.1 South Korea Agriculture IoT Market by Deployment
10.4.2 South Korea Agriculture IoT Market by Component
10.4.3 South Korea Agriculture IoT Market by Connectivity
10.4.4 South Korea Agriculture IoT Market by Application
10.4.5 South Korea Agriculture IoT Market by Farm Type
10.5 Singapore Agriculture IoT Market
10.5.1 Singapore Agriculture IoT Market by Deployment
10.5.2 Singapore Agriculture IoT Market by Component
10.5.3 Singapore Agriculture IoT Market by Connectivity
10.5.4 Singapore Agriculture IoT Market by Application
10.5.5 Singapore Agriculture IoT Market by Farm Type
10.6 Malaysia Agriculture IoT Market
10.6.1 Malaysia Agriculture IoT Market by Deployment
10.6.2 Malaysia Agriculture IoT Market by Component
10.6.3 Malaysia Agriculture IoT Market by Connectivity
10.6.4 Malaysia Agriculture IoT Market by Application
10.6.5 Malaysia Agriculture IoT Market by Farm Type
10.7 Rest of Asia Pacific Agriculture IoT Market
10.7.1 Rest of Asia Pacific Agriculture IoT Market by Deployment
10.7.2 Rest of Asia Pacific Agriculture IoT Market by Component
10.7.3 Rest of Asia Pacific Agriculture IoT Market by Connectivity
10.7.4 Rest of Asia Pacific Agriculture IoT Market by Application
10.7.5 Rest of Asia Pacific Agriculture IoT Market by Farm Type
Chapter 11. Company Profiles
11.1 Deere & Company
11.1.1 Company Overview
11.1.2 Financial Analysis
11.1.3 Segmental and Regional Analysis
11.1.4 Research & Development Expenses
11.1.5 Recent Strategies and Developments
11.1.5.1 Partnerships, Collaborations, and Agreements
11.1.5.2 Product Launches and Product Expansions
11.1.6 SWOT Analysis
11.2 Trimble, Inc.
11.2.1 Company Overview
11.2.2 Financial Analysis
11.2.3 Segmental and Regional Analysis
11.2.4 Research & Development Expenses
11.2.5 Recent Strategies and Developments
11.2.5.1 Partnerships, Collaborations, and Agreements
11.2.6 SWOT Analysis
11.3 Raven Industries, Inc.
11.3.1 Company Overview
11.4 AGCO Corporation
11.4.1 Company Overview
11.4.2 Financial Analysis
11.4.3 Segmental Analysis
11.4.4 Research & Development Expenses
11.4.5 SWOT Analysis
11.5 Valmont Industries, Inc.
11.5.1 Company Overview
11.5.2 Financial Analysis
11.5.3 Segmental and Regional Analysis
11.6 CropIn Technology Solutions Private Limited
11.6.1 Company Overview
11.7 A.A.A Taranis Visual Ltd.
11.7.1 Company Overview
11.8 Libelium Comunicaciones Distribuidas S.L.
11.8.1 Company Overview
11.9 Robert Bosch GmbH
11.9.1 Company Overview
11.9.2 Financial Analysis
11.9.3 Segmental and Regional Analysis
11.9.4 Research & Development Expense
11.9.5 Recent Strategies and Developments
11.9.5.1 Partnerships, Collaborations, and Agreements
11.9.6 SWOT Analysis
11.10. NXP Semiconductors N.V.
11.10.1 Company Overview
11.10.2 Financial Analysis
11.10.3 Regional Analysis
11.10.4 Research & Development Expense
11.10.5 SWOT Analysis

Companies Mentioned

  • Deere & Company
  • Trimble, Inc.
  • Raven Industries, Inc.
  • AGCO Corporation
  • Valmont Industries, Inc.
  • Cropin Technology Solutions Private Limited
  • A.A.A Taranis Visual Ltd.
  • Libelium Comunicaciones Distribuidas S.L.
  • Robert Bosch GmbH
  • NXP Semiconductors N.V.

Methodology

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