Introduction to
Mind AI TechnologyRectangle

Beyond Knowledge:

Hybrid Intelligence

Our proprietary Canonical technology adeptly integrates abduction, deduction, and induction to construct an advanced Wisdom Graph resembling human reasoning. This innovation transcends conventional Knowledge Graphs by converting unstructured natural language into structured Wisdom Graphs that encapsulate logical flows. This data structure embodies a Hybrid Intelligence form that integrates the accuracy of Symbolic AI with the scalability of neural network based AI.

Hybrid Intelligenc
Canonical

The key to
Transparency:

Canonical

Canonical enables transparent reasoning paths, a debuggable framework facilitating continuous improvement, and efficient knowledge structuring. Its comprehensive knowledge representation and sophisticated contextual processing capabilities ensure the delivery of precise, up-to-date, and reliable outcomes eliminating hallucinations.

Technologies powering Mind AI

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DIKW Pyramid

The DIKW Pyramid represents the hierarchy of data, information, knowledge, and wisdom, illustrating the transformation of raw data into insightful wisdom. At the base, data comprises unprocessed facts and figures without context. When data is organized and structured, it becomes information, a form that machines can process, providing context and meaning, and answering basic questions. Knowledge emerges from synthesizing information into a network, allowing for understanding and application. At the pinnacle, wisdom involves the holistic application of knowledge, characterized by foresight and deep understanding, answering why. Knowledge acts as a network of interconnected information, while wisdom represents a flow based on logical insights derived from that knowledge.

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Wisdom Graph

The Wisdom Graph surpasses the capabilities of a traditional knowledge graph by processing logical flows to provide deeper insights to users. Unlike a knowledge graph that merely networks pieces of factoid information, the Wisdom Graph leverages Mind AI's core technology, Canonical, to network knowledge. This innovative technology encodes human reasoning into triangular structures representing the processes of induction, deduction, and abduction. Through this advanced encoding, the Wisdom Graph can simulate complex human thought patterns, offering a more sophisticated understanding and application of information, ultimately enhancing decision-making and problem-solving capabilities.

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Canonical

Mind AI revolutionizes language processing by breaking it down into nodes and links that connect at specific points, forming a triangular structure known as Canonical. This innovative approach allows information to be placed in positions within the triangle, as illustrated by the symbols in the graphic. The placement of these symbols represents a fundamental level of semantics crucial to logic. In this structure, the primary node at the top of the triangle stands for topics, while the left-side node provides context and the right-side node conveys the resultant, embodying premise and hypothesis, or cause and effect. This configuration enables AI to reason effectively, mirroring complex human thought processes.

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Logic Automation

Canonical enables logic automation by transforming documents with embedded logic into formalized structures, leading to the creation of Wisdom Graphs. This process allows not only the structuring of factoid information but also action information, generating logic that mirrors real-world knowledge. This includes basic, sequential, and graph-type logical flows. Mind AI's advanced technology can efficiently extract and structure these logical elements from unstructured natural language texts, thus automating the reasoning process and enabling a deeper and more accurate representation of knowledge and its applications.

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Logic Generation

By leveraging augmented topological network technology based on Wisdom Graphs constructed through canonicalization, Mind AI revolutionizes logic generation, enabling people to access invaluable insights beyond mere data analysis. Canonical Generalization facilitates the generation of multiple layers of Canonicals rooted in the general information of bottom networks, allowing individuals to grasp significant general knowledge even when the input texts do not explicitly include it. Conversely, Canonical Specification refines general information by extracting entailment, ensuring detailed and precise understanding. These processes of generalization and specification together form the augmented topological networks, enhancing the depth of the generated logic and providing a robust framework for knowledge discovery and application.

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Logic Generation

Based on the processes of generalization and specification, Mind AI's technology can provide invaluable insights that bridge gaps between different logical structures or eliminate redundant ones. With Mind AI's internationally patented technology, users benefit from not only high-quality data analysis but also wisdom-based insights that address and fill in missing gaps. This advanced capability ensures a more comprehensive understanding and application of information, allowing for more effective decision-making and problem-solving by seamlessly integrating disparate pieces of logic into a cohesive whole.

Technical Whitepaper

Read our Technical Whitepaper
for information on how this all works

Technical Whitepaper

How It Works

Use Cases

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Mind AI - Human Logic Intelligence - Basis of Canonical
Mind AI - Human Logic Intelligence - Basis of Canonical
Mind AI - Human Logic Intelligence - Demo (AI Real Estate Agent)
Mind AI - Human Logic Intelligence - Demo (AI Real Estate Agent)
Mind AI - Human Logic Intelligence - Demo (AI Nutritionist)
Mind AI - Human Logic Intelligence - Demo (AI Nutritionist)
Mind AI - Human Logic Intelligence - Demo (AI Insurance Agent)
Mind AI - Human Logic Intelligence - Demo (AI Insurance Agent)
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