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Smart Data Fabrics for Decision Intelligence in Supply Chain

Whitepaper

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A Data-Driven Approach to Demand Sensing and Forecasting

Decision intelligence has emerged as a strategic priority, enabling organizations to make faster, more accurate decisions across demand sensing and forecasting, supply chain orchestration, fulfillment, production planning, and sustainability. However, despite significant investments in analytics and AI, many organizations struggle to realize the full potential of decision intelligence due to limitations in their data architecture.

Effective demand sensing and forecasting are critical for optimizing supply chain performance, particularly in volatile markets. Traditional methods relying on historical data and internal systems often fail to respond quickly to sudden shifts in consumer behavior, supplier capacity, or global disruptions. Key challenges include limited end-to-end visibility, reliance on manual processes, inaccurate data, and fragmented systems, all of which hinder accurate forecasting and timely decision-making.

Demand sensing leverages real-time data to detect immediate demand fluctuations, while demand forecasting uses historical data to predict long-term demand trends. Both approaches benefit from advanced analytics, AI, and machine learning, which provide more precise insights into inventory, sales, and supply chain operations. However, human intervention is still commonly required to interpret complex demand patterns, making processes time-consuming and error-prone.

An InterSystems survey of 450 supply chain professionals highlights persistent challenges in demand sensing and forecasting: 41% cited lack of real-time supply chain visibility, 39% relied on manual processes, 37% experienced inaccurate data, and 34% lacked real-time sensing of demand and supply changes. Addressing these challenges requires unified, harmonized, and validated data across internal systems, partners, and external sources. Organizations that adopt intelligent demand sensing and forecasting platforms can more accurately anticipate shifts, optimize inventory, reduce costs, and respond rapidly to market changes.

In the Whitepaper

Download the Smart Data Fabrics for Decision Intelligence in Supply Chain whitepaper to learn more about:

  • What Is Decision Intelligence—and Why Does It Matter?
  • The Rise of the AI-Enabled Smart Data Fabric
  • An Introduction to Demand Sensing and Forecasting
  • Decision Intelligence for Demand Sensing and Forecasting
  • Current State of Demand Sensing and Forecasting
  • Demand Sensing and Forecasting Challenges with External Demand Signals
  • What are Your Three Biggest Challenges in Demand Sensing and Forecasting?
  • Demand Sensing and Forecasting Capabilities to Improve Forecast Accuracy?
  • From Data to Actionable Insights
  • Complementary, Not Replacing
  • Final Thoughts: Intelligent Demand Sensing and Forecasting

免责声明:InterSystems® 软件、相关服务、材料和专业知识可能会利用人工智能能力和功能。 有关详细信息,请参阅 InterSystems 透明度公告、AI 指南、特定产品文档和适用的预期用途声明。 SRN: DE-AR-000005430

InterSystems Corporation: One Congress Street, Boston, MA 02114-2010, USA.

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