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Luminous-Explore – A model for world-class semantic representation

In this post we present our semantic embedding model Luminous-Explore, show state-of-the-art results on two public benchmarks and go into detail on the philosophy and practical use of semantic representations.

Abstract

A model for world-class semantic representation

Sidenote: Luminous – a family of multi-lingual Large Language Models

Semantic search with Luminous-Explore

Symmetric Search Evaluation on USEB benchmark

Asymmetric Search Evaluation on BEIR benchmark

Creating semantic embeddings with Luminous-Explore

Here is a simple code to create a symmetric embedding for a text:

On the nature of semantic content representations

A good semantic representation retains both broad and detailed information

Similarity can occur in several (subjective) dimensions

In practice, semantic opposites are unlikely to occur

Text length influences semantic representations

Information in representations should be independent of language

Each use case requires the use of an appropriate representation

Sometimes meaning contains interpretation

What does a good Semantic Content Representation mean for Science, Industry, and Society?

Machines learning human representations vs. humans learning machine representations (beyond the keyword search)

Augmenting knowledge management with truly semantic content representation

Quick summary (by Luminous-Extended)

World-Class semantic embeddings

Semantic Search with Luminous

On the nature of semantic content representations

What does a good Semantic Content Representation mean for Science, Industry, and Society?

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