CodeSampleX

Exemple

golang.org/x/crypto v0.56.0: pbkdf2.Key

Échantillon vérifié pour golang golang.org/x/crypto v0.56.0: pbkdf2.Key. Le contrat s'est exécuté sur go 1.26 · linux debian/x64 · docker et a réussi …

sha256:e2e88860e3d3d29724e220b1f54baee1c917326dc7c2395b32622b363dce4792

Ce réseau offre une seule chose : un échantillon qui compile. Il l'a exécuté dans un bac à sable et conservé le reçu signé. Il ne note rien et ne garantit rien : si le même code compile chez vous, il ne l'a pas mesuré. Combien de clés de signature distinctes ont déposé un reçu de contrat réussi. Une seule, c'est l'auteur ; plus d'une signifie que quelqu'un d'autre l'a compilé aussi. Une clé est auto-générée sans identité enregistrée derrière, donc on compte des clés, pas des personnes. MIT-0

Preuves d'exécution

L'environnement déclaré et les exécutions signées sont séparés, pour que vous voyiez exactement ce que cet échantillon a exécuté et où.

Base de preuve
Contrat signé réussi
Reçus de vérification
1
Clés de signature qui l’ont compilé
1
Environnement déclaré linux 24 · ubuntu · glibc 2.39 x64 go

Environnements des exécutions de vérification

Environnement Contrat Étapes Exécution
go 1.26 · linux debian/x64 · docker ed25519:c1973797be207ac4 PASS compile:SKIPPED · contract:PASS · load:PASS · resolve:PASS
CONTAINER_RUN · golang@1golang:1.26@sha256:e30143be198a…
2026-09-04

Cas

HOW
Objectif
verify pkg:golang/golang.org/x/crypto@v0.56.0
Paquets
Symboles
  • pbkdf2.Key
Créé
2026-09-04T15:50:41Z

Contrat

  1. pbkdf2.Key derives key bytes matching requested length
  2. pbkdf2.Key produces identical derived keys for identical password, salt, and parameters
  3. pbkdf2.Key produces different derived keys for different passwords with identical parameters
  4. pbkdf2.Key produces different derived keys for different salts with identical parameters
  5. pbkdf2.Key matches RFC 6070 test vector for SHA-1 with 1 iteration
  6. pbkdf2.Key matches RFC 6070 test vector for SHA-1 with 4096 iterations
  7. pbkdf2.Key matches standard test vector for SHA-256 with 4096 iterations
  8. pbkdf2.Key correctly handles null bytes inside password and salt

Fichiers

  • PROMPT.md
  • csx.json
  • go.mod
  • go.sum
  • main.go
  • spec.json
  • test/contract.go

Télécharger l’artefact source (tar.gz)

Code source

PROMPT.md
Clean-room public code sample — generation instructions

Write a brand-new, minimal, self-contained code sample in this clean-room directory.
Do not copy, paraphrase, or reference any existing project source. Work only from this spec.

A csx.json manifest scaffold already exists. Do not recreate it from memory. Preserve its case.goal, packages and symbols; fill its empty case.contract with exact assertions and correct its environment, commands and verifierAdapter for the files you generate.

Goal: verify pkg:golang/golang.org/x/crypto@v0.56.0
Kind: HOW

Use EXACTLY these public packages and versions:
  - pkg:golang/golang.org/x/crypto@v0.56.0
Demonstrate these symbols/APIs:
  - pbkdf2.Key

Rules:
  - One focused purpose; the smallest project that proves the goal.
  - Include a contract test (test/contract.*) that runs OFFLINE and exits 0 exactly when the goal behavior works.
  - Pin every dependency with a lockfile so resolution is reproducible.
  - No secrets, credentials, or tokens. No real URLs (only example.com or localhost). No absolute paths.
  - No personal names, emails, company names, or project identifiers of any kind.
  - No binaries and no generated output (node_modules, dist, target, venv, .git, .env).
  - Keep it under 200 files and 256KB packed.
csx.json
{"case":{"caseId":"case:sha256:163c48b020a160ec86af5fab7b209514cb52901e6992cc6755382783f5a643b5","contract":["pbkdf2.Key derives key bytes matching requested length","pbkdf2.Key produces identical derived keys for identical password, salt, and parameters","pbkdf2.Key produces different derived keys for different passwords with identical parameters","pbkdf2.Key produces different derived keys for different salts with identical parameters","pbkdf2.Key matches RFC 6070 test vector for SHA-1 with 1 iteration","pbkdf2.Key matches RFC 6070 test vector for SHA-1 with 4096 iterations","pbkdf2.Key matches standard test vector for SHA-256 with 4096 iterations","pbkdf2.Key correctly handles null bytes inside password and salt"],"goal":"verify pkg:golang/golang.org/x/crypto@v0.56.0","kind":"HOW","packages":["pkg:golang/golang.org/x/crypto@v0.56.0"],"schemaVersion":1,"symbols":["pbkdf2.Key"]},"contractCommand":["go","run","./test"],"environment":{"arch":"x64","distro":"ubuntu","ecosystem":"golang","libc":"glibc","libcVersion":"2.39","os":"linux","osVersionBucket":"24","packageManager":"go","schemaVersion":1},"license":"MIT-0","packages":["pkg:golang/golang.org/x/crypto@v0.56.0"],"schemaVersion":1,"subject":"pkg:golang/golang.org/x/crypto@v0.56.0","symbols":["pbkdf2.Key"],"verifierAdapter":"golang@1"}
go.mod
module example.com/sample

go 1.26.6

require golang.org/x/crypto v0.56.0
go.sum
golang.org/x/crypto v0.56.0 h1:GUh5Ii4J5jtcseSMiRqr1jXCNHoxjeV9Fmekc2oLy6Y=
golang.org/x/crypto v0.56.0/go.mod h1:OMW5y6CY9l38uPLmxU6l6pwcXp1obtLo3e6gT7gQR2I=
main.go
package main

import (
	"crypto/sha256"
	"encoding/hex"
	"fmt"

	"golang.org/x/crypto/pbkdf2"
)

func main() {
	password := []byte("example-password")
	salt := []byte("example-salt")
	iterations := 4096
	keyLength := 32

	derivedKey := pbkdf2.Key(password, salt, iterations, keyLength, sha256.New)
	fmt.Printf("Derived key (%d bytes): %s\n", len(derivedKey), hex.EncodeToString(derivedKey))
}
spec.json
{
  "schemaVersion": 1,
  "goal": "verify pkg:golang/golang.org/x/crypto@v0.56.0",
  "kind": "HOW",
  "packages": [
    "pkg:golang/golang.org/x/crypto@v0.56.0"
  ],
  "symbols": [
    "pbkdf2.Key"
  ]
}
test/contract.go
package main

import (
	"bytes"
	"crypto/sha1"
	"crypto/sha256"
	"fmt"
	"os"

	"golang.org/x/crypto/pbkdf2"
)

func main() {
	pass := []byte("example-secret-passphrase")
	salt := []byte("example-cryptographic-salt")

	// 1. pbkdf2.Key derives key bytes matching requested length
	for _, expectedLen := range []int{16, 32, 64} {
		key := pbkdf2.Key(pass, salt, 1000, expectedLen, sha256.New)
		if len(key) != expectedLen {
			fmt.Fprintf(os.Stderr, "Key length mismatch: expected %d, got %d\n", expectedLen, len(key))
			os.Exit(1)
		}
	}

	// 2. pbkdf2.Key produces identical derived keys for identical password, salt, and parameters
	keyA := pbkdf2.Key(pass, salt, 2048, 32, sha256.New)
	keyB := pbkdf2.Key(pass, salt, 2048, 32, sha256.New)
	if !bytes.Equal(keyA, keyB) {
		fmt.Fprintf(os.Stderr, "Deterministic derivation failed: identical inputs yielded different keys\n")
		os.Exit(1)
	}

	// 3. pbkdf2.Key produces different derived keys for different passwords with identical parameters
	diffPassKey := pbkdf2.Key([]byte("another-secret-passphrase"), salt, 2048, 32, sha256.New)
	if bytes.Equal(keyA, diffPassKey) {
		fmt.Fprintf(os.Stderr, "Different passwords unexpectedly produced identical keys\n")
		os.Exit(1)
	}

	// 4. pbkdf2.Key produces different derived keys for different salts with identical parameters
	diffSaltKey := pbkdf2.Key(pass, []byte("different-salt-value"), 2048, 32, sha256.New)
	if bytes.Equal(keyA, diffSaltKey) {
		fmt.Fprintf(os.Stderr, "Different salts unexpectedly produced identical keys\n")
		os.Exit(1)
	}

	// 5. pbkdf2.Key matches RFC 6070 test vector for SHA-1 with 1 iteration
	expectedRfcSha1Iter1 := []byte{
		0x0c, 0x60, 0xc8, 0x0f, 0x96, 0x1f, 0x0e, 0x71,
		0xf3, 0xa9, 0xb5, 0x24, 0xaf, 0x60, 0x12, 0x06,
		0x2f, 0xe0, 0x37, 0xa6,
	}
	actualRfcSha1Iter1 := pbkdf2.Key([]byte("password"), []byte("salt"), 1, 20, sha1.New)
	if !bytes.Equal(actualRfcSha1Iter1, expectedRfcSha1Iter1) {
		fmt.Fprintf(os.Stderr, "RFC 6070 SHA-1 (iter=1) mismatch: got %x, want %x\n", actualRfcSha1Iter1, expectedRfcSha1Iter1)
		os.Exit(1)
	}

	// 6. pbkdf2.Key matches RFC 6070 test vector for SHA-1 with 4096 iterations
	expectedRfcSha1Iter4096 := []byte{
		0x4b, 0x00, 0x79, 0x01, 0xb7, 0x65, 0x48, 0x9a,
		0xbe, 0xad, 0x49, 0xd9, 0x26, 0xf7, 0x21, 0xd0,
		0x65, 0xa4, 0x29, 0xc1,
	}
	actualRfcSha1Iter4096 := pbkdf2.Key([]byte("password"), []byte("salt"), 4096, 20, sha1.New)
	if !bytes.Equal(actualRfcSha1Iter4096, expectedRfcSha1Iter4096) {
		fmt.Fprintf(os.Stderr, "RFC 6070 SHA-1 (iter=4096) mismatch: got %x, want %x\n", actualRfcSha1Iter4096, expectedRfcSha1Iter4096)
		os.Exit(1)
	}

	// 7. pbkdf2.Key matches standard test vector for SHA-256 with 4096 iterations
	expectedSha256Iter4096 := []byte{
		0xc5, 0xe4, 0x78, 0xd5, 0x92, 0x88, 0xc8, 0x41,
		0xaa, 0x53, 0x0d, 0xb6, 0x84, 0x5c, 0x4c, 0x8d,
		0x96, 0x28, 0x93, 0xa0,
	}
	actualSha256Iter4096 := pbkdf2.Key([]byte("password"), []byte("salt"), 4096, 20, sha256.New)
	if !bytes.Equal(actualSha256Iter4096, expectedSha256Iter4096) {
		fmt.Fprintf(os.Stderr, "SHA-256 (iter=4096) mismatch: got %x, want %x\n", actualSha256Iter4096, expectedSha256Iter4096)
		os.Exit(1)
	}

	// 8. pbkdf2.Key correctly handles null bytes inside password and salt
	expectedNullBytes := []byte{
		0x56, 0xfa, 0x6a, 0xa7, 0x55, 0x48, 0x09, 0x9d,
		0xcc, 0x37, 0xd7, 0xf0, 0x34, 0x25, 0xe0, 0xc3,
	}
	actualNullBytes := pbkdf2.Key([]byte("pass\x00word"), []byte("sa\x00lt"), 4096, 16, sha1.New)
	if !bytes.Equal(actualNullBytes, expectedNullBytes) {
		fmt.Fprintf(os.Stderr, "Null-byte handling mismatch: got %x, want %x\n", actualNullBytes, expectedNullBytes)
		os.Exit(1)
	}

	fmt.Println("All contract assertions passed.")
}

Seeder d'origine

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