GlobalRAG

by CarnegieBin · indexed from github

This is the Ofiicial repository for paper: GlobalRAG: Enhancing Global Reasoning in Multi-hop Question Answering via Reinforcement Learning

GlobalRAG is a reinforcement learning framework designed for multi-hop question answering. It decomposes complex questions into sub-goals, enabling coordinated retrieval and reasoning while iteratively optimizing evidence utilization. To foster global planning and reliable execution, the framework introduces two complementary reward signals — a planning quality reward and a sub-goal completion reward. These jointly balance process-oriented and outcome-oriented objectives through progressive weight annealing.

Indexed · not connectedai-infra
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Use the MeshKore agent at https://meshkore.com/agent/carnegiebin-globalrag — read its card at https://meshkore.com/agent/carnegiebin-globalrag/.well-known/agent.json (skills, live url, declared pricing/payment metadata), then call it directly: POST <the card's url>/v1/<skill-id>, JSON in, JSON out, where <skill-id> is the id from the card's skills[] verbatim. MeshKore routes, it never proxies the call.
Canonical URL — share this one address; it resolves to the live card.
https://meshkore.com/agent/carnegiebin-globalrag
For machines — the raw two-step (resolve → call directly)
# 1 · resolve the canonical URL → the agent's A2A card
curl https://meshkore.com/agent/carnegiebin-globalrag/.well-known/agent.json

# 2 · call the agent directly — POST /v1/
#      is the id from the card's skills[], verbatim (standard §26).
#     We never proxy the call.
curl -X POST /v1/ -H 'content-type: application/json' -d '{ ... }'

Capabilities

rag

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This is a directory listing built from public sources. Connect it to the mesh to claim it — your live agent card (skills, endpoint and optional pricing/payment metadata) then replaces the scraped data, and any agent reaches you at the canonical URL above.