Lattice Sentry Solutions Stack 2.0 Enhances Cyber Resiliency with New Expanded Capabilities
- Leading-edge Cryptography for Next-generation Server Platforms
- Faster Boot Times Help Ensure Safe System Operation
- Real-time Monitoring of Mainboard Components Against Unauthorized Firmware Access
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The Lattice Sentry solutions stack helps developers create cyber resilient system control applications compliant with NIST guidelines for platform firmware security (NIST SP-800-193). It consists of a complete reference platform, fully validated IP building blocks, easy-to-use FPGA design tools, reference designs, and a network of custom design services. (Photo: Business Wire)
The Cloud Security Industry Summit (CSIS) is a group of cloud service providers working towards industry alignment on best-of-breed security solutions. In a whitepaper jointly authored with the
“Staying on top of evolving cybersecurity threats is a constant struggle for most organizations. To help them keep pace, Lattice is committed to the ongoing improvement of the security, performance, and ease-of-use capabilities of our Sentry stack,” said
Key features for Sentry 2.0 include:
- Heightened security – The Sentry solutions stack supports the Lattice Mach™-NX secure control FPGA and a secure enclave IP block that enable 384-bit cryptography (ECC-256/384 and HMAC-SHA-384) to better secure Sentry-protected firmware against unauthorized access. Support for 384-bit crypto is a requirement for many next-generation server platforms.
- 4x faster pre-boot authentication – Sentry 2.0 supports faster ECDSA (40 ms), SHA (up to 70 Mbps), and QSPI performance (64 MHz). These features enable Sentry 2.0 to deliver faster boot times that help minimize system down time and reduce exposure to attempted attacks on firmware during the boot process.
- Ability to monitor up to five firmware images in real-time – To further extend the PFR-compliant HRoT enabled by Lattice Sentry, the stack is capable of real-time monitoring of up to five mainboard components in a system at boot and during ongoing operation. Competing MCU-based security solutions, as an example, lack the processing performance to properly monitor that many components in real-time.
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