Technology
ELMo
ELMo provides deep contextualized word representations by using a bidirectional LSTM trained on a massive language modeling objective.
Developed by the Allen Institute for AI (AI2) in 2018, ELMo (Embeddings from Language Models) generates vector embeddings that change based on a word's surrounding context. Unlike static models like word2vec, ELMo uses a two-layer BiLSTM to distinguish between different meanings of the same word (e.g., 'bank' as a river edge versus a financial institution). This architecture improved the state of the art across six major NLP benchmarks, including SQuAD and SNLI, by capturing both complex syntax and nuanced semantics.
What builders pair with ELMo
Projects using both technologies. Select a pairing to see a project.
5 more pairings
Pairing: alBERT
Enhancing AI with RAG - Techniques to improve accuracy
Pairing: BERT
Enhancing AI with RAG - Techniques to improve accuracy
Pairing: GPT-2
Enhancing AI with RAG - Techniques to improve accuracy
Pairing: GPT-3
Enhancing AI with RAG - Techniques to improve accuracy
Pairing: Graph database
Enhancing AI with RAG - Techniques to improve accuracy
Pairing: GraphRAG
Enhancing AI with RAG - Techniques to improve accuracy
Recent Talks & Demos
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