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LLM

14 posts
  • How-to

How to assess computational resource needs for generative models?

  • AIEdTalks
  • 13 January 2025
Assessing computational resource needs for generative models is crucial for efficient model training, inference, and deployment. These models are typically resource-intensive, so understanding and planning for their requirements helps optimize…
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  • How-to

How to implement and monitor generative model safety mechanisms?

  • AIEdTalks
  • 10 January 2025
Implementing and monitoring safety mechanisms for generative models is essential to ensure their outputs are appropriate, reliable, and free from harmful content. Here’s a guide on how to implement and…
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  • How-to

How to use embeddings for similarity and retrieval tasks?

  • AIEdTalks
  • 6 January 2025
Embeddings are powerful tools for similarity and retrieval tasks, enabling us to represent items (text, images, audio, etc.) in a way that captures their semantic meaning. Here’s a guide on…
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  • How-to

How to work with APIs of popular generative models (e.g., OpenAI, Stability AI)?

  • AIEdTalks
  • 3 January 2025
Here’s a guide on working with APIs of popular generative models like OpenAI (GPT-3, Codex, DALL-E) and Stability AI (Stable Diffusion). Using these APIs, you can integrate state-of-the-art generative AI…
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  • How-to

How to evaluate the quality of generated content (images, text, audio)?

  • AIEdTalks
  • 30 December 2024
Evaluating the quality of generated content (images, text, audio) is critical for assessing how well generative models perform. The right evaluation method depends on the type of content and its…
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  • How-to

How to integrate generative AI with other systems and applications?

  • AIEdTalks
  • 27 December 2024
Integrating generative AI with other systems and applications opens up a wide range of possibilities, from enhancing customer service with conversational bots to creating personalized content and insights. Here’s a…
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  • How-to

How to leverage diffusion models for image generation?

  • AIEdTalks
  • 23 December 2024
Diffusion models have become a popular approach for high-quality image generation due to their ability to produce realistic images by reversing a noise process. Here’s a step-by-step guide on how…
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  • How-to

How to scale generative models for production environments?

  • AIEdTalks
  • 20 December 2024
Scaling generative models for production environments is crucial for handling large volumes of requests efficiently and ensuring consistent performance. Generative models, such as those based on transformers or GANs, are…
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  • How-to

How to generate high-quality synthetic data for training?

  • AIEdTalks
  • 16 December 2024
Generating high-quality synthetic data for training is a powerful way to augment limited datasets, improve model performance, and simulate scenarios that may be hard to capture in real-world data. Here’s…
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  • How-to

How to train and deploy transformer-based models (BERT, GPT, etc.)?

  • AIEdTalks
  • 13 December 2024
Training and deploying transformer-based models, like BERT, GPT, and others, involves a few key steps: data preparation, fine-tuning, and deploying for inference. Here’s a comprehensive guide to help you get…
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