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Wednesday, February 4, 2026

Safeguard Your WAN from Quantum Computing Threats


Quantum computing is a present-day actuality that’s altering cybersecurity in basic methods. The encryption defending our most delicate knowledge at the moment received’t stand an opportunity in opposition to highly effective quantum assaults. This implies organizations ought to start adopting post-quantum cryptography (PQC) options now to safe their knowledge in transit. And since wide-area networks (WANs) carry a lot mission-critical knowledge, they’re floor zero. This weblog takes a take a look at key concerns for establishing quantum-safe safety in WAN infrastructure.

The quantum risk panorama and its impression on WAN safety

Our present safety depends on classical encryption, particularly public-key strategies. However these are susceptible to quantum assaults. Think about a strong cryptographically related quantum laptop (CRQC) designed to interrupt at the moment’s encryption.

This results in a frightening state of affairs known as harvest now, decrypt later (HNDL).

Right here’s the way it works: An attacker secretly copies your encrypted knowledge and the general public key info because it travels throughout your community. When a CRQC turns into obtainable, it’s used to derive the personal key. With each the general public and quantum-calculated personal key, the session key can then be unlocked, and all that delicate, beforehand captured knowledge may be decrypted. This implies any knowledge you ship at the moment might be uncovered tomorrow.

Attacker captures the key exchange phase and uses quantum-calculated private key to get session key. Process flow illustrating how an attacker can use a quantum-calculated private key to compromise public key cryptography during the key exchange phase, thereby obtaining the session key and decrypting previously encrypted data. The diagram concludes that public key cryptography is quantum-vulnerableAttacker captures the key exchange phase and uses quantum-calculated private key to get session key. Process flow illustrating how an attacker can use a quantum-calculated private key to compromise public key cryptography during the key exchange phase, thereby obtaining the session key and decrypting previously encrypted data. The diagram concludes that public key cryptography is quantum-vulnerable
Determine 1. With HNDL assaults, adversaries seize encrypted WAN visitors and key alternate knowledge at the moment to decrypt it sooner or later with CRQCs

Your WAN wants quantum-safe safety first

Your WAN is the spine that connects knowledge facilities, department places of work, and cloud environments. It carries your most delicate info, typically knowledge that should keep confidential for years. Securing this visitors in opposition to quantum threats is essential for stopping future breaches and staying compliant.

Right here’s why a WAN-first strategy to PQC is smart:

  • WAN visitors typically has an extended shelf life for confidentiality. Its journey throughout varied transports between distant websites and knowledge facilities makes it an excellent goal for HNDL assaults.
  • Immediately’s classical encryption strategies, particularly these counting on the problem of factoring massive numbers, are immediately threatened by quantum algorithms like Shor’s.
  • International regulatory our bodies are already issuing pointers for defending in opposition to quantum-enabled assaults. Starting along with your WAN helps you get forward of compliance necessities and scale back threat sooner.
  • Your WAN edge routers are properly positioned to implement new quantum-safe encryption. Choosing the proper infrastructure ensures PQC know-how offers complete protection.
  • Trendy options like SD-WAN, digital personal community (VPN), and safe entry service edge (SASE) are constructed on sturdy cryptography. PQC is a pure evolution of this foundational safety.
  • The centralized nature of WANs makes them well-suited for rolling out hybrid encryption by mixing outdated and new cryptographic strategies. This agility will simplify your migration to a totally quantum-safe future.
An atomic symbol with a padlock, illustrating the need for quantum-safe cryptography. Accompanying text is: Harvest now, decrypt later attacks are already happening; Classical cryptography will be broken by quantum computers; Regulatory and standards (NIST, NSA, ETSI, CISA); Infrastructure must become quantum-safe due to its long lifecycle; SD-WAN, VPN and SASE architecture depend on strong crypto; Crypto-agility is a strategic advantage -> future proof. An atomic symbol with a padlock, illustrating the need for quantum-safe cryptography. Accompanying text is: Harvest now, decrypt later attacks are already happening; Classical cryptography will be broken by quantum computers; Regulatory and standards (NIST, NSA, ETSI, CISA); Infrastructure must become quantum-safe due to its long lifecycle; SD-WAN, VPN and SASE architecture depend on strong crypto; Crypto-agility is a strategic advantage -> future proof.
Determine 2. WANs carry delicate, long-lived knowledge and are foundational to safe architectures—making them a precedence for quantum-safe safety as threats and requirements evolve

Constructing a complete post-quantum safety (PQS) technique

Submit-quantum safety (PQS) is about upgrading cryptographic algorithms, protocols, and full programs to face up to quantum assaults.

A very efficient PQS resolution should be complete, specializing in three key areas:

  • Encryption: Protects your knowledge in transit from HNDL assaults.
  • Authentication: Ensures solely legit customers and units can entry your community.
  • Safe boot: Helps make sure the integrity and authenticity of your system’s startup course of.
Diagram illustrating Post-quantum security, which branches into three areas: Quantum-safe encryption (for secure communication, addressing 'harvest now, decrypt later' threats), Quantum-safe authentication (for verifying device and user authenticity), and Quantum-safe secure-boot (for ensuring software and hardware integrity). The latter two address attacks possible when quantum computing becomes available.Diagram illustrating Post-quantum security, which branches into three areas: Quantum-safe encryption (for secure communication, addressing 'harvest now, decrypt later' threats), Quantum-safe authentication (for verifying device and user authenticity), and Quantum-safe secure-boot (for ensuring software and hardware integrity). The latter two address attacks possible when quantum computing becomes available.
Determine 3. Complete PQS addresses three essential dimensions: knowledge encryption, authentication, and safe boot integrity

Whereas the precise timeline for a CRQC is unsure, being proactive is essential. A whole PQS technique ought to handle all these dimensions, defending your knowledge and infrastructure from each angle.

Shield your WAN from quantum assaults

There are two essential approaches to creating your WAN quantum-resistant:

Submit-quantum pre-shared key (PPK): This methodology provides fast safety in opposition to HNDL assaults. A PPK is a particular key that’s blended along with your classical IPsec session key. Since an attacker can’t seize this PPK, even a CRQC can’t work out the true session key. You may arrange PPKs manually or use a quantum key distribution (QKD) system to acquire them. This protects your essential knowledge proper now.

Submit-quantum cryptography ( PQC) algorithms: This methodology includes adopting new, quantum-safe algorithms. Requirements our bodies just like the Nationwide Institute of Requirements and Expertise (NIST) are quickly approving these. For instance:

  • ML-KEM (FIPS-203): For quantum-safe key alternate (encryption)
  • ML-DSA (FIPS-204): For quantum-safe digital signatures (authentication)
  • LMS (NIST SP 800-208): For making certain the quantum-safe integrity of firmware and software program at a system stage (safe boot)

Cisco 8000 Collection Safe Routers: Your quantum-safe WAN resolution

The Cisco 8000 Collection Safe Routers are particularly designed for the quantum period, offering sturdy, quantum-safe WAN connectivity throughout department places of work, campuses, and knowledge facilities.

These routers are constructed with highly effective crypto engines. They will deal with demanding PQC algorithms with out slowing down your community. Excessive-end fashions function the Quantum-Move Processor (QFP) ASIC whereas department and campus routers use a brand new safe networking processor ASIC. Each are optimized for high-throughput crypto offload.

Cisco 8100, 8200, 8300, 8400, and 8500 Series Secure Routers, categorized for small branch, medium branch, large branch, campus, and data center deployments, respectively. Cisco 8100, 8200, 8300, 8400, and 8500 Series Secure Routers, categorized for small branch, medium branch, large branch, campus, and data center deployments, respectively.
Determine 4. Cisco 8000 Collection Safe Routers function devoted cryptographic engines designed to deal with PQC workloads with out compromising efficiency” beneath the fourth determine.

For fast quantum-safe encryption utilizing the PPK methodology, Cisco 8000 Collection Safe Routers assist Safe Key Integration Protocol (SKIP) and RFC 8784, which permit the blending of a pre-shared key into the IKEv2 key alternate. The PPK might be discovered from QKD programs, or if QKD isn’t obtainable, PPKs may be configured domestically within the gadget configuration. This resolution allows quantum-safe encryption for IKEv2 IPsec connectivity.

With native PQC options, Cisco 8000 Collection Safe Routers will assist hybrid encryption. This implies you’ll be able to mix an current legacy encryption secret with a brand new, NIST-approved quantum-safe methodology’s shared secret inside the similar crypto knowledge aircraft. Primarily based on RFC 9370, this hybrid strategy cryptographically blends a number of shared secrets and techniques to create a stronger session key. The hybrid implementation allows easy migration and permits you to implement ML-KEM algorithms as wanted. All public key cryptography options, together with IKEv2 IPsec, SD-WAN, FlexVPN, DMVPN, IKEv2 Cluster Load-balancing, MACsec with EAP-TLS, SSH, and extra, will supply native PQC encryption capabilities on the Cisco 8000 Collection Safe Routers.

The Cisco 8000 Collection Safe Routers are foundational for constructing a quantum-safe encryption resolution on your community.

Act now for a quantum-safe future

Quantum computing is not a distant risk; it’s right here, demanding fast motion to guard our digital world. Organizations have to proactively improve their community infrastructure, particularly their WANs, to defend in opposition to quantum assaults.

The transfer to PQC is an pressing step to protect in opposition to threats like HNDL. By prioritizing quantum-safe options on your WAN, you’ll be able to guarantee long-term knowledge confidentiality, meet regulatory calls for, and preserve operational integrity.

Cisco 8000 Collection Safe Routers are purpose-built for this problem. They provide each fast safety with PPK and a transparent path to native PQC strategies, securing your knowledge in transit and demanding infrastructure.

Investing in quantum-capable safety at the moment with options like Cisco 8000 Collection Safe Routers is the way you construct resilient, future-proof networks. The time to begin your journey towards quantum-safe networking is now.

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