DDD Blog

Our thoughts and insights on machine learning and artificial intelligence applications

Welcome to Digital Divide Data’s (DDD) blog, fully dedicated to Machine Learning trends and resources, new data technologies, data training experiences, and the latest news in the areas of Deep Learning, Optical Character Recognition, Computer Vision, Natural Learning Processing, and more.

For Artificial Intelligence (AI) professionals, adding the latest machine learning blog or two to your reading list will help you get updates on industry news and trends.


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Best Practices for Synthetic Data Generation in Generative AI
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Best Practices for Synthetic Data Generation in Generative AI

In this guide, we’ll break down the best practices for synthetic data generation in generative AI and dive into the challenges and best practices that define its responsible use. We’ll also examine real-world use cases across industries to illustrate how synthetic data is being leveraged today. 

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Prompt Engineering for Defense Tech: Building Mission-Aware GenAI Agents
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Prompt Engineering for Defense Tech: Building Mission-Aware GenAI Agents

This article explores how prompt engineering for defense tech is becoming the foundation of national security. It offers a deep dive into techniques for embedding context, aligning behavior, deploying robust prompt architectures, and ensuring outputs remain safe, explainable, and operationally useful, and discusses real-world case studies.

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Real-World Use Cases of RLHF in Generative AI
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Real-World Use Cases of RLHF in Generative AI

Explore real-world use cases of RLHF in generative AI, highlighting how businesses across industries are leveraging human feedback to improve model usefulness, safety, and alignment with user intent. We will also examine its critical role in developing effective and reliable generative AI systems and discuss the key challenges of implementing RLHF.

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Scaling Generative AI Projects: How Model Size Affects Performance & Cost 
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Scaling Generative AI Projects: How Model Size Affects Performance & Cost 

This article breaks down how generative AI models differ in capability, how they scale in enterprise environments, and what trade-offs organizations must consider. We’ll also examine how modern approaches such as Retrieval-Augmented Generation (RAG), fine-tuning, and Reinforcement Learning with Human Feedback (RLHF) influence the overall performance and cost. 

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