--- name: seeker-genesis-token description: Verify Seeker device ownership by checking for the Seeker Genesis Token (SGT) with Sign-in-with-Solana and server-side token verification. Use when gating content or rewards to Seeker owners, verifying a user holds an SGT, adding anti-Sybil checks to a Solana mobile app, or implementing one-claim-per-device logic. --- # Seeker Genesis Token verification The Seeker Genesis Token (SGT) is a Token-2022 NFT minted once per Seeker device. Holding one is evidence of owning a Seeker, which makes it useful for gating rewards and for one-claim-per-device logic. Verification has two halves, and **both are required**: 1. **Prove the user controls the wallet** — Sign-in-with-Solana (SIWS) 2. **Prove that wallet holds an SGT** — inspect the wallet's Token-2022 mints Doing only the second means anyone can submit a real Seeker owner's public address and pass. Doing only the first proves wallet control but says nothing about a device. ## This must run on a server **Never decide entitlement client-side.** A client can be patched, so a client-side `hasSGT` boolean is worth nothing. The client's job is to collect a signature; the server verifies it and owns the result. Requirements: - A backend you control that can make Solana mainnet RPC calls - Storage for nonces and claim records - An RPC endpoint. A paid provider helps, since the check may enumerate many token accounts — keep that key server-side only, never in an `EXPO_PUBLIC_*` variable ## Prerequisites A working wallet connection. If the app has none, use the `solana-mobile-wallet` skill first; this skill assumes `useMobileWallet()` is available. Testing needs a physical Seeker device — an emulator cannot hold an SGT. Plan for a code path you can exercise without one, such as a server-side allowlist in development. ## Step 1: issue the payload from the server The server issues the **whole** SIWS payload, not just a nonce, and stores it under the nonce with a short TTL. Every field the client supplies is a field an attacker chooses, and each one is fed straight to the signature check, so pin them all at issue time. ```ts // POST /api/siws/nonce const issuedAt = new Date() const nonce = crypto.randomBytes(16).toString('hex') const payload = { chainId: 'solana:mainnet', domain: 'yourdapp.com', expirationTime: new Date(issuedAt.getTime() + 300_000).toISOString(), issuedAt: issuedAt.toISOString(), nonce, statement: 'Sign in to verify Seeker ownership', uri: 'https://yourdapp.com', version: '1', } await store.put(nonce, payload, { ttlSeconds: 300 }) return payload ``` The nonce must be **server-generated, single-use, and short-lived**. A client-generated or reusable nonce makes the signature replayable, which defeats the exercise. `address` is the one field the server cannot fill in. The client adds it in step 2. `chainId` is pinned to `solana:mainnet` deliberately rather than taken from the wallet's `chain`: SGTs exist only on mainnet, so a signature scoped to devnet proves nothing about a device. Issuing it server-side is what turns that into a guarantee instead of a comment. ## Step 2: sign in on the client `signIn` from the wallet hook authorizes and proves ownership in a single prompt. Spread the issued payload and add the address: ```ts import { useMobileWallet } from '@wallet-ui/react-native-kit' const { signIn } = useMobileWallet() const issued = await fetch('https://yourdapp.com/api/siws/nonce', { method: 'POST' }).then( (response) => response.json(), ) const address = account.address.toString() const output = await signIn({ ...issued, address }) await fetch('https://yourdapp.com/api/siws/verify', { body: JSON.stringify({ address, nonce: issued.nonce, signature: Array.from(output.signature), signedMessage: Array.from(output.signedMessage), }), headers: { 'Content-Type': 'application/json' }, method: 'POST', }) ``` Post exactly those four fields. **Do not post `output.account`, and the server must never accept an account object or a public key from the client** — the key the signature is checked against has to be derived from the address the server is about to act on. Step 3 shows why. `nonce` is only a lookup key here; the signature check is what binds it. This is the fully-specified payload, not the short `signIn` form. `domain`, `nonce`, and `version` are what make the signature non-replayable and bind it to your app, and the server has to have issued them for that to hold. The `solana-mobile-wallet` skill covers both forms and when each is appropriate. ## Step 3: verify the signature on the server ```bash npm install @solana/kit @solana/wallet-standard-util ``` ```ts import { getBase58Encoder } from '@solana/kit' import { verifySignIn } from '@solana/wallet-standard-util' function verifySiws(issued, { address, signature, signedMessage }) { // Reject malformed input here, not inside the ed25519 verify. if (!Array.isArray(signature) || signature.length !== 64) { throw new Error('Malformed signature.') } if (!Array.isArray(signedMessage)) throw new Error('Malformed signed message.') // Derive the verifying key from the address, never from the request body. const publicKey = getBase58Encoder().encode(address) if (publicKey.length !== 32) throw new Error('Malformed address.') return verifySignIn( { ...issued, address }, { account: { address, chains: [], features: [], publicKey }, signature: new Uint8Array(signature), signedMessage: new Uint8Array(signedMessage), }, ) } ``` The three shape checks come first because every one of those values is attacker-chosen. Without them the malformed cases reach `new Uint8Array()` and then the ed25519 verify, where they land inconsistently: a short signature throws a library error about byte lengths, while a non-array `signedMessage` coerces to an empty array and returns a plain `false`. Rejecting on shape gives one clear answer for both and does not lean on internals you do not control. `verifySignIn` compares the fields you pass it against the fields inside the signed text, then verifies the signature with `account.publicKey`. **It never checks that the key and the address agree.** Take that key from the request body and any throwaway keypair can sign a message naming any address: the signature is genuine, it just is not the address holder's. Because the server issued `issued`, `domain` and `chainId` are pinned by construction. No client copy of either reaches the check, so no separate domain comparison is needed. If you want a defensive assertion anyway, assert against `issued.domain` — the stored copy — never a value off the request. ## Step 4: check the wallet for an SGT See [references/sgt-verification.md](references/sgt-verification.md) for the full implementation. It confirms three properties of a Token-2022 mint — mint authority, metadata pointer, and token group membership — and all three must match. ## Step 5: combine the checks correctly This is where the subtle bug lives. `verifySignIn` does not bind the account key to the address in the signed message, so the server has to do that binding itself: derive the key from the address it is going to act on, and look the SGT up against that same address. ```ts async function verifySeekerUser({ address, nonce, signature, signedMessage }) { // 1. Consume the nonce atomically. Read-then-mark leaves a window where two concurrent // requests both see it unused, and one signature is accepted twice. // Redis: GETDEL. SQL: DELETE FROM nonces WHERE nonce = $1 RETURNING payload. const issued = await store.consume(nonce) if (!issued) throw new Error('Invalid, reused, or expired nonce.') // 2. The signature must be valid for the payload we issued and for this address. if (!verifySiws(issued, { address, signature, signedMessage })) { throw new Error('Invalid signature.') } // 3. Check the SGT against the address the signature was just verified against. const { hasSGT, mintAddress } = await checkWalletForSGT(address) return { address, hasSGT, mintAddress } } ``` Checking the SGT against any other address lets a caller submit a real Seeker owner's address with their own signature and be granted access. ## Anti-Sybil: one claim per device An SGT is per-device, so the **mint address** is the device identity. Store that, not the wallet address — a wallet can hold a different SGT later, and a device's SGT can move between wallets. A `UNIQUE` constraint is what enforces one claim, not application code: ```sql CREATE TABLE claims ( claimed_at timestamptz NOT NULL DEFAULT now(), mint_address text NOT NULL UNIQUE, paid_at timestamptz ); ``` ```ts const { address, hasSGT, mintAddress } = await verifySeekerUser(request.body) if (!hasSGT) throw new Error('No Seeker Genesis Token found.') // Insert first and let the constraint decide. Asking whether a row exists and then // inserting is a double-claim bug: two concurrent requests both find nothing. try { await claims.insert({ claimedAt: new Date(), mintAddress }) } catch (error) { // 23505 is the Postgres unique violation. Other drivers report it differently. if (error.code === '23505') throw new Error('This device has already claimed.') throw error } // Pay out only once the insert has landed. Anything paid before it can be paid twice. await grantReward(address) await claims.markPaid(mintAddress) ``` The insert and the payout are two separate writes, so decide what happens when the second one fails. As written, a `grantReward` that throws after the row commits leaves that device unable to retry: the constraint now rejects it as already claimed. Either drive retries off rows with a null `paid_at`, or make `grantReward` idempotent on `mintAddress` so replaying it is free. This one is robustness rather than security: getting it wrong denies a real owner their reward, it does not let anyone claim twice. Have `checkWalletForSGT` return the mint address rather than a bare boolean — see the end of the reference file. ## Reference material - [references/sgt-verification.md](references/sgt-verification.md) — full verification implementation, SGT constants, standard-RPC and Helius variants ## Related skills - `solana-mobile-wallet` — wallet connection and the two `signIn` payload forms - `seeker-domains` — `.skr` domain resolution, which Seeker users have by default ## Links - Detecting Seeker users: https://docs.solanamobile.com/react-native/detecting-seeker-users - Sign-in-with-Solana spec: https://github.com/phantom/sign-in-with-solana