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Global Intelligent Logistics Market Size By Component, By Technology, By Application, By Geographic Scope And Forecast


Published on: 2024-08-08 | No of Pages : 320 | Industry : latest updates trending Report

Publisher : MIR | Format : PDF&Excel

Global Intelligent Logistics Market Size By Component, By Technology, By Application, By Geographic Scope And Forecast

Intelligent Logistics Market Size And Forecast

Intelligent Logistics Market size was valued at USD 25.5 Billion in 2023 and is projected to reach USD 201 Billion by 2030, growing at a CAGR of 19.1% during the forecast period 2024-2030.

Global Intelligent Logistics Market Drivers

The market drivers for the Intelligent Logistics Market can be influenced by various factors. These may include

  • The advent of e-commerce In order to satisfy the growing needs of consumers for prompt and dependable delivery, e-commerce’s exponential expansion has made effective and streamlined logistics operations necessary. AI, IoT, and data analytics are just a few of the technologies that intelligent logistics solutions use to improve last-mile deliveries, boost customer satisfaction, and optimise supply chain operations.
  • Technological Developments The logistics sector has seen a dramatic transformation thanks to the quick development of technologies like artificial intelligence (AI), the internet of things (IoT), blockchain, and big data analytics. Real-time cargo tracking and monitoring, preventive maintenance for equipment and vehicles, route optimisation, and inventory management are all made possible by intelligent logistics systems, which also increase operational efficiency and reduce costs.
  • Demand for Supply Chain Visibility To better understand the flow of commodities, reduce risks, and enhance decision-making, businesses in a variety of sectors are placing a high priority on supply chain visibility. With the help of intelligent logistics systems, supply chain processes can be seen from beginning to finish. Stakeholders can follow shipments, keep an eye on inventory levels, and spot delays or bottlenecks instantly.
  • Emphasis on Sustainability Logistics companies are implementing intelligent logistics solutions to optimise route planning, reduce fuel consumption, and minimise vehicle idle time, contributing to sustainability goals and green logistics initiatives. This is due to growing environmental concerns and regulatory pressure to reduce carbon emissions and minimise environmental impact.
  • Transition to Autonomous Vehicles The advancement and implementation of self-driving vehicles, such as unmanned aerial aircraft, self-governing trucks, and delivery robots, are fundamentally altering last-mile transportation and logistical processes. Intelligent logistics solutions improve speed, accuracy, and cost-effectiveness in parcel delivery, inventory management, and warehouse automation by utilising drones and autonomous vehicles.
  • Globalisation and Supply Chain Complexity To effectively manage international logistics networks, innovative logistics solutions are needed as a result of the increased complexity and fragmentation brought about by the globalisation of markets and supply chains. Supply chain orchestration, cross-border compliance, and multi-modal transportation management are just a few of the features that intelligent logistics platforms provide to reduce risks and optimise international logistics operations.
  • Expectations from Customers for PersonalisationCustomers anticipate flexible and personalised delivery alternatives, such as hassle-free returns, same-day delivery, and delivery windows that are precise in time. Dynamic route optimisation, micro-fulfillment centres, and real-time delivery updates are made possible by intelligent logistics systems, which also improve the delivery experience overall by accommodating a variety of client preferences.
  • Regulatory Compliance and Security Issues Tight rules, such as those pertaining to data privacy, trade compliance, and customs, provide difficulties for international logistics firms. To guarantee regulatory compliance and improve data security, intelligent logistics solutions include compliance capabilities including electronic document management, customs automation, and secure data transmission.
  • Collaborative logistics models As businesses look for creative methods to maximise resources, cut expenses, and boost flexibility, collaborative logistics models—such as sharing economy platforms, peer-to-peer logistics, and crowdsourced delivery—are becoming more and more popular. Collaboration between many stakeholders is made possible by intelligent logistics systems, which also enable effective resource allocation, route optimisation, and capacity utilisation.
  • COVID-19 Pandemic Impact In order to minimise supply chain interruptions, maintain company continuity, and adjust to shifting market conditions, the COVID-19 pandemic has sped up digital transformation efforts in the logistics sector. This has led to a rise in the use of intelligent logistics solutions. Platforms for intelligent logistics provide flexibility and resilience in the face of erratic market conditions and changing consumer needs.

Global Intelligent Logistics Market Restraints

Several factors can act as restraints or challenges for the Intelligent Logistics Market. These may include

  • High Initial Investment Investing heavily in technologies like IoT sensors, AI algorithms, and data analytics platforms is necessary to implement intelligent logistics solutions. For certain organisations, especially small and medium-sized firms (SMEs), the initial expense of setting up infrastructure, developing software, and integrating it with current systems can be unaffordable.
  • Complexity of IntegrationIt can be difficult and time-consuming to integrate intelligent logistics solutions with supply chain networks, legacy IT systems, and third-party apps. Logistics operations may be disrupted and the benefits of intelligent logistics technology may take longer to materialise as a result of compatibility problems, data silos, and interoperability difficulties that impede smooth integration.
  • Data Security and Privacy Issues A lot of sensitive data, such as shipping details, inventory counts, and customer information, are used by intelligent logistics systems. It is crucial to protect sensitive information online, adhere to data regulations like the CCPA and GDPR, and ensure data privacy. Trust and reputation could be damaged by security lapses, data breaches, or regulatory non-compliance, which could have negative financial and legal effects.
  • Manpower Shortage Developing and overseeing intelligent logistics systems necessitates specific expertise in data science, artificial intelligence, Internet of Things, and supply chain management. The lack of skilled workers with knowledge in these fields could be problematic for companies looking to implement and maximise sophisticated logistics systems. Adoption and innovation in the intelligent logistics sector may be hampered by the difficulty of finding, developing, and keeping talented personnel.
  • Interoperability and Standardisation Issues In the intelligent logistics ecosystem, a lack of standardised protocols and interoperability standards may make it more difficult for many stakeholders, including carriers, shippers, suppliers, and logistics service providers, to collaborate and exchange data. The fragmentation and inconsistency of data formats, communication protocols, and system interfaces can hinder the scalability of intelligent logistics solutions and make integration efforts more difficult.
  • Opposition to Change Employees, labour unions, and other stakeholders used to manual procedures or outdated systems may be resistant to the introduction of intelligent logistics technologies into conventional logistical workflows. The logistics business may face acceptance and delay delays in digital transformation initiatives due to cultural hurdles, job displacement anxiety, and insufficient knowledge about the advantages of intelligent logistics technologies.
  • Infrastructure Restrictions IoT networks, 5G connection, GPS satellites, and cloud computing resources are examples of infrastructure elements whose availability and dependability determine how efficient intelligent logistics solutions are. Deploying and running intelligent logistics systems can be difficult in areas with poor infrastructure or restricted access to digital technology, which could limit market growth and adoption rates.
  • Regulatory Obstacles In some areas or nations, protectionist measures, trade obstacles, and regulatory restrictions may limit the application of ILS solutions or place extra burdens on logistics providers in terms of compliance. Logistics companies that operate abroad may face increased administrative hassles and expenses due to the need to navigate complex regulatory frameworks, obtain permits, and comply with import/export rules.

Global Intelligent Logistics Market Segmentation Analysis

The Global Intelligent Logistics Market is Segmented on the basis of Component, Technology, Application, and Geography

By Component

  • Hardware The actual hardware, including drones, robotics, RFID tags, GPS trackers, IoT sensors, and automated material handling systems, that is utilised in intelligent logistics systems.
  • Software Predictive analytics software, route optimisation software, blockchain platforms, transportation management systems (TMS), warehousing management systems (WMS), and other applications, platforms, and algorithms that facilitate intelligent logistics operations.
  • Services Consultation, system integration, training, and continuing support services are among the professional services provided to assist with the implementation, integration, customisation, and upkeep of intelligent logistics solutions.

By Technology

  • Internet of Things (IoT) The Internet of Things (IoT) allows real-time tracking, monitoring, and management of assets, transportation, and goods throughout the supply chain by connecting physical items and devices to the internet.
  • Artificial Intelligence (AI) and Machine Learning (ML) Algorithms and models that evaluate data, identify trends, and forecast future events are known as artificial intelligence (AI) and machine learning (ML). These technologies help to streamline logistics operations, enhance decision-making, and automate repetitive jobs like demand forecasting, route optimisation, and predictive maintenance.
  • Big Data Analytics To obtain actionable insights, spot patterns, and improve logistics operations, this field analyses vast amounts of structured and unstructured data from a variety of sources, including as IoT sensors, ERP systems, and external data streams.

By Application

  • Transportation Management Planning, carrying out, and monitoring transportation-related tasks—such as freight consolidation, carrier selection, route optimisation, and real-time shipment tracking—are all optimised by transportation management.
  • Warehouse Management In order to maximise efficiency and accuracy in warehouse procedures, warehouse managers oversee and coordinate all aspects of warehouse operations, including inventory management, order fulfilment, receiving, put-away, picking, packing, and shipping.
  • Inventory Management Inventory management minimises stockouts, excess inventory, and carrying costs while guaranteeing timely delivery of items by monitoring and controlling inventory levels, locations, and movements along the supply chain.

By Geography

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

Key Players

The major players in the Intelligent Logistics Market are

  • IBM Corporation
  • Oracle Corporation
  • SAP SE
  • JDA Software (Blue Yonder)
  • Infor Inc.
  • Manhattan Associates
  • Descartes Systems Group Inc.
  • BluJay Solutions
  • 3GTMS Inc. (MercuryGate International)
  • HighJump (Körber)

Report Scope

REPORT ATTRIBUTESDETAILS
STUDY PERIOD

2020-2030

BASE YEAR

2023

FORECAST PERIOD

2024-2030

HISTORICAL PERIOD

2020-2022

UNIT

Value (USD Billion)

KEY COMPANIES PROFILED
  • IBM Corporation
  • Oracle Corporation
  • SAP SE
  • JDA Software (Blue Yonder)
  • Infor Inc.
  • Manhattan Associates
  • Descartes Systems Group Inc.
  • BluJay Solutions
  • 3GTMS Inc. (MercuryGate International)
  • HighJump (Körber)
SEGMENTS COVERED

Component , Technology, Application, and Geography

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• Qualitative and quantitative analysis of the market based on segmentation involving both economic as well as non-economic factors• Provision of market value (USD Billion) data for each segment and sub-segment• Indicates the region and segment that is expected to witness the fastest growth as well as to dominate the market• Analysis by geography highlighting the consumption of the product/service in the region as well as indicating the factors that are affecting the market within each region• Competitive landscape which incorporates the market ranking of the major players, along with new service/product launches, partnerships, business expansions and acquisitions in the past five years of companies profiled• Extensive company profiles comprising of company overview, company insights, product benchmarking and SWOT analysis for the major market players• The current as well as the future market outlook of the industry with respect to recent developments (which involve growth opportunities and drivers as well as challenges and restraints of both emerging as well as developed regions• Includes an in-depth analysis of the market of various perspectives through Porter’s five forces analysis• Provides insight into the market through Value Chain• Market dynamics scenario, along with growth opportunities of the market in the years to come• 6-month post-sales analyst support

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