The company Memgraph has introduced its new GraphRAG toolkit. This toolkit aims to help users without prior graph database experience. It helps them convert SQL and unstructured data into knowledge graphs. The primary aim of this GraphRAG toolkit is to make graph-enabled AI accessible to non-graph users across enterprise settings.
Bridging the Data to Graph AI Gap
Many enterprises still work with relational databases and unstructured text. This makes building graph-based AI applications difficult. Thus, the GraphRAG toolkit offers two key tools: SQL2Graph and Unstructured2Graph. These tools automate schema analysis, entity identification, and graph mapping. This enables faster development of graph-driven applications. Moreover, Memgraph says the toolkit can accelerate GraphRAG-enabled app development by up to ten times.
Driving GraphRAG Adoption at Scale
In addition to the toolkit, Memgraph will introduce a Model Context Protocol (MCP) client this month. This is to support standardised context engineering across data sources. The company also launched a JumpStart Programme. This program bundles an enterprise licence, more than 20 hours of implementation help, and hybrid search (vector + graph reasoning). Also, sub-second latency and explainable answers with provenance. Furthermore, the GraphRAG toolkit lowers the barrier for organisations in finance and healthcare. Also, in research and other knowledge-heavy industries that have not yet adopted graph technology. As a result, they can take data trapped in relational tables and documents and unleash it in real-time graph reasoning workflows with improved accuracy and context.
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News Source: Businesswire.com