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#1 PARTNER: Human-in-the-Loop Entity Name Understanding with Deep Learning [PDF] [Copy] [Kimi]

Authors: Kun Qian ; Poornima Chozhiyath Raman ; Yunyao Li ; Lucian Popa

Entity name disambiguation is an important task for many text-based AI tasks. Entity names usually have internal semantic structures that are useful for resolving different variations of the same entity. We present, PARTNER, a deep learning-based interactive system for entity name understanding. Powered by effective active learning and weak supervision, PARTNER can learn deep learning-based models for identifying entity name structure with low human effort. PARTNER also allows the user to design complex normalization and variant generation functions without coding skills.