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Glasswall Introduces Foresight Tool for AI-Driven File Threat Analysis

Glasswall logo. Glasswall launched Foresight, a threat intelligence capability that identifies potentially malicious files.
Glasswall

Glasswall has introduced Foresight, a threat intelligence capability designed to help security teams identify potentially malicious files earlier by applying machine learning and structural file analysis within Content Disarm and Reconstruction, or CDR, workflows.

Glasswall Introduces Foresight Tool for AI-Driven File Threat Analysis - top government contractors - best government contracting event

The Potomac Officers Club’s 2026 Artificial Intelligence Summit on March 18 will spotlight real-world applications of AI, highlighted by tools like Glasswall’s Foresight AI-driven threat intelligence platform. Sign up now to join federal, defense, and industry leaders in discussing how machine learning and automation are transforming mission operations.

Why Was Glasswall Foresight Developed?

Traditional intelligence methods often rely on file signatures or behavioral analysis through detonation, leaving organizations exposed to zero-day and targeted attacks. Security teams are continually tasked with interpreting alerts, managing emerging vulnerabilities and protecting critical files. Foresight was developed to provide security professionals with structured, reliable intelligence to help them identify and prioritize risks, optimize policies, and respond more quickly.

How Does Glasswall Foresight Identify Unknown Malware?

Foresight uses proprietary machine-learning models to provide probabilistic threat scoring when integrated with CDR workflows, giving security teams clearer insight and control over file safety. Instead of relying on internet-trained AI or sandbox analysis, it evaluates structural telemetry from the CDR process to deliver detailed threat intelligence while preserving the original file structure. Operating fully offline, Foresight supports air-gapped and denied, disrupted, intermittent and limited, or DDIL, environments where traditional antivirus tools often fall short.

How Is the Tool Integrated Into Existing Workflows?

When processed through Glasswall Meteor, files undergo deep analysis of embedded characteristics to produce a probabilistic threat score. This intelligence is applied alongside existing CDR policies, allowing for policy-driven decisions that avoid detonation delays or complex infrastructure. The capability supports PDF, DOCX and XLSX formats.

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Written by Miles Jamison

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