Latent Space: The AI Engineer Podcast cover image

ICLR 2024 — Best Papers & Talks (Benchmarks, Reasoning & Agents) — ft. Graham Neubig, Aman Sanger, Moritz Hardt)

Latent Space: The AI Engineer Podcast

NOTE

Effectiveness of Planning in Developing AI Agents

Planning was initially considered the secret sauce for OpenDevin's success, but it was found that their best agent did not explicitly use planning and achieved a 21% performance on the Sweetbench Lite version. Running evaluations on the full Sweetbench version with GPT-4 is costly and time-consuming. The focus shifted to evaluating whether a good toolbox for searching and modifying code efficiently can outperform supposedly good agents with planning. OpenDevin uses morph, a code indexer, as a tool for context-based coding.

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