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Multi-source AI news clustered, deduplicated, and scored 0–100 across authority, cluster strength, headline signal, and time decay.

  1. uva-irlab-conv at SemEval-2026 Task 8: Multi-Turn RAG with Learned Sparse Retrieval and Listwise Reranking

    Researchers have developed ProGRank, a novel defense mechanism designed to protect Retrieval-Augmented Generation (RAG) systems from corpus poisoning attacks. This training-free method operates on the retriever side by introducing mild perturbations to query-passage pairs and analyzing probe gradients to identify instability signals. Separately, another research team details their participation in SemEval-2026 Task 8, presenting a multi-turn RAG pipeline that integrates learned sparse retrieval with LLM-based reranking for improved conversational question answering across various domains. AI

    IMPACT These papers introduce novel techniques for enhancing RAG security and improving multi-turn conversational AI performance, potentially impacting future development in both areas.