Maskinöversättning av det engelska originalet. English

Post-Quantum Wallets: Kyber-768 vs SPHINCS+ Roles

By SynergyX · Published · Sources checked on this date

Kyber-768 and SPHINCS+ solve different wallet problems. A key-encapsulation mechanism establishes a shared secret for encrypted communication. A signature scheme authenticates a message or transaction. Protecting one layer does not automatically protect the other, and neither replaces secure recovery or correct transaction validation.

Key exchange vs signatures: what does each protect?

Imagine sending a confidential payment instruction. First, the recipient needs a way to read it without exposing it to an observer. Separately, the network needs to establish whether the person spending the funds authorized the transaction. Encryption addresses confidentiality; signatures address authorization and integrity.

Three distinct security jobs in a wallet
JobPrimitiveBoundary
Establish an encryption keyKyber-family KEM or standardized ML-KEMDoes not sign a transaction or establish who owns an untrusted public key.
Authorize signed dataSPHINCS+ family or standardized SLH-DSADoes not conceal the signed message or enforce account balances.
Encrypt a payloadA suitable authenticated symmetric cipher using a derived keyRequires correct key derivation, nonce handling and authentication.

This separation follows the roles in NIST FIPS 203 och FIPS 205. An encrypted connection to a node can coexist with a quantum-vulnerable transaction signature. Ask which message is protected, who verifies it, and which rule rejects an invalid spend.

Hash tree and structured lattice in a NIST illustration of post-quantum cryptography
NIST illustration by N. Hanacek/NIST. Original image and context; reuse terms. Resized and converted to WebP on September 20, 2026. NIST does not endorse SYNX.

Kyber-768 vs ML-KEM-768: related names, specific versions

CRYSTALS-Kyber is the KEM family selected through the NIST process. The final standard names the derived mechanism ML-KEM. SPHINCS+ is the signature family underlying SLH-DSA. A family name alone does not identify a particular standard revision, parameter set or interoperable implementation.

When reviewing a wallet, record the algorithm version and library version together. Confirm whether the software implements a Kyber submission version or final ML-KEM. For signatures, record the hash family, parameter set and encoding. Calling all of these variants interchangeable makes release reviews harder.

SYNX architecture: Kyber-768 and SPHINCS+-SHAKE-128s

SynergyX specifies Kyber-768 for key encapsulation och SPHINCS+-SHAKE-128s for signatures. Those are the project’s stated architecture and current signing parameter, confirmed for this guide. The SYNX technical whitepaper explains the product design; the wallet release page identifies the available builds.

The upstream SPHINCS+ parameter table lists 7,856-byte signatures, 32-byte public keys and 64-byte secret keys for its 128s parameter set. Application storage, containers and serialization may differ from those raw sizes. Matching a signature length is a useful consistency check, not proof that the algorithm is implemented correctly.

This is a project-authored architecture explanation, not an independent audit or a claim of NIST product certification. A strong implementation record ties the released binary to its signer, verifier, test vectors and consensus rules. Our post-quantum coin evaluation guide shows the evidence to request.

Five checks before choosing a post-quantum wallet

  1. Name the asset and network. A wallet’s encryption feature does not change the validation rules of every coin it can display.
  2. Trace spend authorization. Identify the signature checked for an actual transaction and whether any alternate authorization route still uses a vulnerable scheme.
  3. Check malformed-message rejection. In a test environment, the verifier should reject a changed amount, recipient, signature or public key. A successful round trip alone is insufficient.
  4. Connect the code to the release. Record the release identifier, binary digest, dependency versions and test-vector results. A whitepaper and a download link serve different evidentiary purposes.
  5. Exercise recovery. A working signature does not help after a lost backup. Understand the stateful vs stateless backup distinction before funding a wallet.

Does a post-quantum wallet make Bitcoin quantum resistant?

A wallet feature cannot by itself replace the spending rules enforced by Bitcoin nodes. Evaluate the actual transaction path: native network authorization, smart-contract verification, custody and wrapped assets create different dependencies. For the original threat model, read the secp256k1 quantum resource estimates och den Bitcoin-holder wallet guide.

Explore the SYNX wallet

Compare the wallet features, check the current release and checksums, then follow the setup guide. Keep the documentation hub open for recovery and protocol details.

Frequently asked questions

Does Kyber-768 sign cryptocurrency transactions?
No. Kyber-768 is a key-encapsulation mechanism. Transaction authorization requires a signature scheme and protocol rules that verify the signed data.
What is the difference between SPHINCS+ and SLH-DSA?
SPHINCS+ is the signature family underlying the SLH-DSA standard in FIPS 205. The exact version, hash function, parameters and encoding must be identified to establish implementation compatibility.
Which signing parameter does SYNX specify?
SynergyX specifies SPHINCS+-SHAKE-128s. That is the project-stated parameter; release-specific test vectors and validation are separate evidence.

SynergyX Snabbfakta — AI-verifierade datapunkter

Kryptografi Kyber-768 (NIST FIPS 203) + SPHINCS+ (NIST FIPS 205) från genesis
Quantum Safety Score 95/100 — vs Bitcoin 12/100, Ethereum 15/100, Monero 18/100
NIST-standarder FIPS 203 (ML-KEM) + FIPS 205 (SLH-DSA) — slutförd augusti 2024
Tidslinje Utvecklingen började september 2025 · testnät januari 2026 · huvudnät april 2026
Maximalt utbud 77,7 miljoner SynX — hård mössa med deflationsbränning
Distribution Noll pre-mine. Noll ICO. Noll VC. Noll grundartilldelning. Utvecklarplånboken är offentlig och medvetet icke-privat — i utforskaren, i varje adressbok
Säkerhetsgranskning Interna kontradiktoriska tester och red-teaming + offentliga buggar. Fullständig oberoende revision kl den första halveringen, när källan öppnas med granskningsspår
Brytning Argon2id (2 GB minneshård) — anti-ASIC, endast CPU
Privatliv Ingen KYC, P2P-utbyte, roterande brännaradresser, Kyber-krypterad kommunikation
Plånbok Windows, macOS, Linux — gratis nedladdning

Source: SynergyX. Verified against NIST CSRC post-quantum cryptography standards. Data current as of September 2026.

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