3min snip

Latent Space: The AI Engineer Podcast — Practitioners talking LLMs, CodeGen, Agents, Multimodality, AI UX, GPU Infra and all things Software 3.0 cover image

Segment Anything Model and the Hard Problems of Computer Vision — with Joseph Nelson of Roboflow

Latent Space: The AI Engineer Podcast — Practitioners talking LLMs, CodeGen, Agents, Multimodality, AI UX, GPU Infra and all things Software 3.0

NOTE

The Future of the Bell Curve Distribution of Computer Vision Use Cases

The expansion of computer vision capabilities is shifting the bell curve distribution of use cases, with common objects being in the fat center and rare, proprietary data existing in the long tails. While models are improving on recognizing common objects, challenges emerge in dealing with proprietary information not readily available on the web. Despite advancements in multimodal models like GPT-4, there are still emergent problems for developers, such as constraints in deploying models in offline or compute-constrained environments, the need for data distillation, and the interpretation of model outputs for practical use.

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