Generative AI In Logistics Market Is Likely To Advance At a CAGR Of 28.70% During The Forecast Period By 2023 To 2030

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The Global Generative AI in Logistics Market size was valued at USD 525 Million in 2023 and is projected to reach USD 3,951.73 Million by 2030, growing at a CAGR of 28.70% from 2023 to 2030.

 

Market Overview: 

The ?????????? ?????????? ???????????? (??) ?? ????????? ?????? revolves around the application of generative AI techniques in the logistics and supply chain industry. Generative AI involves using machine learning algorithms to generate new, original content, ideas, or solutions based on existing data. In the logistics sector, generative AI is harnessed to optimize processes, enhance decision-making, and address complex challenges. This includes route optimization, demand forecasting, inventory management, and supply chain optimization.

The global Generative AI in Logistics Market has witnessed significant growth due to the increasing need for efficiency, accuracy, and adaptability in logistics operations, coupled with advancements in AI technologies.

 

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Top Key Players Involved Are:

IBM Corporation (US), Google LLC (US), Amazon Web Services Inc. (US), Microsoft Corporation (US), Oracle Corporation (US), SAP SE (Germany), Intel Corporation (US), Nvidia Corporation (US), Cognizant Technology Solutions Corp. (US), Accenture PLC (Ireland), JDA Software Group Inc. (US), Blue Yonder (US), LLamasoft Inc. (US), Manhattan Associates Inc. (US), Infor Inc. (US), Kinaxis Inc. (Canada), Salesforce.com Inc. (US), Honeywell International Inc. (US), SAS Institute Inc. (US), Zebra Technologies Corporation (US) and other major players.

 

Market Dynamics:

Driver:

Complexity of Logistics Operations: The logistics and supply chain industry is characterized by intricate operations involving multiple variables such as transportation routes, inventory levels, demand patterns, and unforeseen disruptions. Generative AI's ability to analyze complex data and generate optimal solutions addresses this complexity. The availability of large volumes of data from various sources, including sensors, IoT devices, and historical records, provides the foundation for generative AI applications. Logistics companies can leverage this data to train AI models that generate valuable insights and solutions.

 

Opportunities:

Demand Forecasting: Accurate demand forecasting is crucial for efficient inventory management. Generative AI can analyze historical sales data, market trends, and external factors to generate accurate demand forecasts, helping companies optimize their inventory levels and reduce excess stock. Generative AI presents a significant opportunity for route optimization in logistics. By analyzing historical data, real-time traffic updates, weather conditions, and other variables, generative AI can generate optimal routes that minimize delivery times, fuel consumption, and costs. In conclusion, the Generative AI in Logistics Market is driven by the complexity of logistics operations, data availability, and the need for enhanced decision-making. The market offers opportunities for route optimization, demand forecasting, supply chain resilience, personalized customer experiences, sustainability efforts, and collaborative supply chains. Companies operating in this market can leverage generative AI to streamline operations, improve efficiency, and stay competitive in the rapidly evolving logistics and supply chain landscape.

 

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Segmentation Analysis Of The Generative AI in Logistics Market

Generative AI in Logistics market segments covers the Type, Component, Deployment Mode, and Application. By Application, the Route Optimization segment is Anticipated to Dominate the Market Over the Forecast period.Generative AI route optimization in logistics involves the use of algorithms and machine learning techniques to identify the most efficient and optimal transport and delivery routes. By analyzing data such as customer locations, delivery points, modes of transportation and delivery time windows, generative AI can create optimized routes that minimize distance travelled, reduce fuel consumption and optimize delivery schedules.

Generative AI algorithms can consider various factors such as real-time traffic updates, road conditions, vehicle capacity and delivery constraints to dynamically adjust and optimize routes. It helps logistics companies improve operational efficiency, reduce transportation costs and increase customer satisfaction by ensuring on-time deliveries.

Route optimization in generative artificial intelligence also allows companies to proactively identify potential interruptions or delays in the delivery process, which enables better contingency planning and proactive customer communication. By optimizing routes, logistics companies can achieve savings, increase productivity and improve overall logistics.

By Type

  • Predictive Analytics
  • Prescriptive Analytics
  • Cognitive Computing

 

By Component

  • Software
  • Hardware
  • Services

 

By Deployment Mode

  • On-Premises
  • Cloud-based

 

By Application

  • Route Optimization
  • Inventory Management
  • Warehouse Management
  • Supply Chain Analytics
  • Last-Mile Delivery Optimization

 

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Regional Analysis of The Generative AI in Logistics Market

North America is Expected to Dominate the Market Over the Forecast Period.

The North American logistics generative AI market is experiencing significant growth and adoption. With a strong presence of technology companies, advanced infrastructure and a highly developed logistics industry, North America is a key region for the application of generative artificial intelligence in logistics.Generative AI in North American logistics offers several benefits, including improved demand forecasting, optimized route planning, better inventory management and efficient inventory replenishment. Companies in the region are using generative artificial intelligence technologies to gain insights from big data, optimize supply chain operations and improve customer satisfaction.North America is seeing increasing investment and collaboration in generative AI logistics. Major players in the region are investing in R&D to develop advanced generative AI solutions tailored to the logistics industry. In North America, generative AI is expected to continue to grow in the logistics market due to its focus on innovation and technology adoption.

 

According to the data, UPS Supply Chain Logistics was first among the leading logistics companies in North America based on its net sales in 2021. UPS achieved a significant net profit of seven billion dollars and became the industry leader. This ranking underlines the company's significant financial success and underscores its dominant position in the North American logistics market this year.

  • North America (U.S., Canada, Mexico)
  • Eastern Europe (Bulgaria, The Czech Republic, Hungary, Poland, Romania, Rest of Eastern Europe)
  • Western Europe (Germany, UK, France, Netherlands, Italy, Russia, Spain, Rest of Western Europe)
  • Asia Pacific (China, India, Japan, South Korea, Malaysia, Thailand, Vietnam, The Philippines, Australia, New Zealand, Rest of APAC)
  • Middle East & Africa (Turkey, Bahrain, Kuwait, Saudi Arabia, Qatar, UAE, Israel, South Africa)
  • South America (Brazil, Argentina, Rest of SA)

 

Covid-19 Impact Analysis On Generative AI in Logistics Market

The COVID-19 pandemic has harmed several sectors, including generative artificial intelligence in the logistics market. One major setback has been the disruption to global supply chains caused by shutdowns and travel restrictions imposed to contain the spread of the virus.

These disruptions caused delays in the delivery of goods and increased logistical challenges for companies. The unpredictability and instability of the pandemic have negatively affected generative artificial intelligence, which uses large data sets and real-time information to optimize logistics operations.

 

The economic downturn caused by the pandemic has forced many companies to reduce investments in new technologies such as generative artificial intelligence. Companies had to prioritize their immediate operational needs and savings measures, which leaves little room for experimentation and the introduction of new logistics solutions based on artificial intelligence.

Key Industry Developments in the Generative AI in Logistics Market

In June 2023, Accenture Ventures recently made a significant strategic investment in Parfin. This investment by Accenture in Parfin is the first “Project Spotlight" investment by Accenture Ventures in the Latin American region.

In June 2023, IBM expanded its long-standing partnership with Adobe to help brands successfully accelerate their content supply chains by deploying next-generation artificial intelligence, including Adobe Sensei GenAI services and Adobe Firefly (currently in beta), Adobe's family of creative AI models.

In May 2023, Intel and SAP SE collaborated to deliver more efficient and sustainable SAP® software landscapes in the cloud. Designed to help customers improve the scalability, flexibility and consolidation of their current SAP software environments. The collaboration deepens Intel's focus on delivering highly efficient and secure SAP instances with 4th generation Intel® Xeon® Scalable processors.

 

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