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KGNN - Knowledge Graph Neural Network
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KGNN - Knowledge Graph Neural Network Overview

What is KGNN - Knowledge Graph Neural Network?

Equitus KGNN is an automated data unification platform in the knowledge graph and AI data infrastructure category. It is designed for enterprise organizations seeking to ingest, structure, and contextualize large volumes of structured and unstructured data without relying on traditional ETL processes. KGNN automates the transformation of disparate enterprise data into semantically enriched, AI-ready knowledge to support use cases such as analytics, business intelligence (BI), and generative AI (GenAI) deployment. Equitus KGNN uses a combination of natural language processing (NLP), machine learning (ML), and semantic technologies to dynamically build a self-constructing RDF knowledge graph. This semantic core enables organizations to extract entities, relationships, and contextual meaning from raw data—including documents, logs, and databases—and transform it into structured, vectorized formats optimized for advanced analytics and AI model consumption. Equitus KGNN is suited for: Enterprises operating across fragmented data systems. Organizations needing contextualized data for AI, BI, or compliance use cases. Teams looking to unify legacy and modern systems without redesigning infrastructure. Key Capabilities: Automated Data Ingestion: Handles structured and unstructured sources without manual pipelines. Semantic Auto-Mapping: Dynamically generates a schema-less RDF knowledge graph. Federated Integration: Enables bi-directional data exchange across legacy and modern platforms. Real-Time Vectorization: Prepares data for AI models, RAG/CAG pipelines, and vector search. Governance and Provenance: Maintains full data lineage, security, and compliance controls. Benefits: Reduce reliance on manual data engineering by 80%. Minimize latency with near real-time data processing. Improve AI accuracy and explainability through contextual enrichment. Ensure compatibility with secure, on-premise, or air-gapped environments. Minimum System Requirements: IBM Power10/11 40 Cores 512GB RAM 4TB SSD (usable) RedHat OpenShift 4.18 X86/GPU 24 Cores 256GB RAM Nvidia GPU with 24GB+ 4TB SSD (usable) RedHat OpenShift 4.18 Equitus KGNN is built for scalability, edge-readiness, and enterprise-grade deployment, enabling seamless data unification across the full lifecycle of AI and analytics initiatives.

KGNN - Knowledge Graph Neural Network Details
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Product Description

Equitus KGNN Automated Data Unification & Semantic AI Platform Equitus KGNN (Knowledge Graph Neural Network) is a next-generation AI-ready data platform that unifies, structures, and contextualizes data—automatically. Built to overcome the limitations of legacy ETL, siloed systems, and batch processes, KGNN turns raw, unstructured, and fragmented enterprise data into enriched, AI-ready knowledge. We built KGNN to automatically transform the overwhelming volume of disparate enterprise data—far beyond what humans can process manually. Our AI-driven platform handles it in real time, enabling automated ingestion and semantic structuring at scale. What KGNN Delivers: Automated Data Ingestion – No traditional ETL needed. Semantic Auto-Mapping – Self-constructing RDF knowledge graph. Unstructured Data Transformation – Turn PDFs, emails, logs, and text into structured, vectorized knowledge. Federated Bi-Directional Integration – Seamlessly sync with legacy and modern systems. Core Capabilities: Break down silos and unify data across legacy + modern systems. Add semantic structure and context for GenAI, BI, LLMs, and more. Enable real-time AI-ready data across your enterprise. Ensure trust, precision, explainability, and privacy in AI systems. Optimize cost and performance with deployment on IBM Power10 and other edge-ready infrastructures. Why It Matters: - Replace expensive, fragile custom connectors. - Contextualize data instantly for LLMs and analytics. - Eliminate delays from batch data handling. - Run on-prem, at the edge, or disconnected environments with full security and governance. KGNN brings context to your data and clarity to your decisions, on a platform built to scale, adapt, and secure your entire data lifecycle. Minimum Specifications IBM Power10/11 40 Cores 512GB RAM 4TB SSD (usable) RedHat OpenShift 4.18 X86/GPU 24 Cores 256GB RAM Nvidia GPU w/ 24GB+ 4TB SSD (usable) RedHat OpenShift 4.18 Equitus KGNN is optimized for both high-performance enterprise hardware and energy-efficient edge deployment.


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Equitus

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KGNN - Knowledge Graph Neural Network Media

KGNN - Knowledge Graph Neural Network Demo - Fusion Interface
Fusion is not a standalone software but a visualization layer that allows users to explore and interact with the knowledge graph automatically generated by KGNN. It provides transparency into the semantic structure and data relationships created behind the scenes, useful for validation, analysis,...
KGNN - Knowledge Graph Neural Network Demo -  Knowledge Graph Visualization Tool
In the image, the user is selecting from a variety of layout modes, Concentric, Lens, Sequential, Organic, and Structural, each offering different visual perspectives to better understand the graph’s structure. The central workspace displays a dynamically generated graph consisting of nodes (enti...
KGNN - Knowledge Graph Neural Network Demo - Auto-Generated Knowledge Graph with Default Ontology
This screenshot demonstrates the Fusion interface in action, displaying a richly connected semantic network generated by Equitus KGNN. At the center is a core entity node, automatically linked to multiple other entity types such as people, organizations, locations, and categories. These nodes are...
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