CodeSampleX

Ejemplo

golang.org/x/crypto v0.48.0: sha3.New256

Muestra verificada para golang golang.org/x/crypto v0.48.0: sha3.New256. El contrato se ejecutó en go 1.26 · linux debian/x64 · docker y pasó.

sha256:7a54ae2e8b90cc30c3156d389e0ebc8c6e6deb5e8930d5d2202dec0ae4d23531

Esta red ofrece una sola cosa: una muestra que compila. La ejecutó en un sandbox y guardó el recibo firmado. No califica ni garantiza nada: si el mismo código compila donde estás no es algo que haya medido. Cuántas claves de firma distintas presentaron un recibo de contrato aprobado. Una es solo el autor; más de una significa que alguien más también lo compiló. Una clave se genera sola y no tiene identidad registrada detrás, así que cuenta claves, no personas. MIT-0

Evidencia de ejecución

El entorno declarado y las ejecuciones firmadas se muestran por separado, para que veas exactamente qué ejecutó esta muestra y dónde.

Base de evidencia
Contrato firmado aprobado
Recibos de verificación
1
Claves de firma que lo compilaron
1
Entorno declarado linux 24 · ubuntu · glibc 2.39 x64 go

Entornos de las ejecuciones de verificación

Entorno Contrato Etapas Ejecución
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

Caso

HOW
Objetivo
verify golang.org/x/crypto/sha3.New256 in pkg:golang/golang.org/x/crypto@v0.48.0
Paquetes
Símbolos
  • golang.org/x/crypto/sha3.New256
Creado
2026-09-04T16:44:54Z

Contrato

  1. sha3.New256 returns a hash.Hash with Size 32 bytes and BlockSize 136 bytes
  2. sha3.New256 computes the correct SHA3-256 digest for empty input
  3. sha3.New256 computes the correct SHA3-256 digest for standard test message
  4. sha3.New256 produces identical digest when written in single write or incremental chunks
  5. sha3.New256 Reset clears state and produces same digest as new instance
  6. sha3.New256 Sum appends the 32-byte digest to existing slice buffer

Archivos

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

Descargar el artefacto de código fuente (tar.gz)

Código fuente

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 golang.org/x/crypto/sha3.New256 in pkg:golang/golang.org/x/crypto@v0.48.0
Kind: HOW

Use EXACTLY these public packages and versions:
  - pkg:golang/golang.org/x/crypto@v0.48.0
Demonstrate these symbols/APIs:
  - golang.org/x/crypto/sha3.New256

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:sha256:69514281bd496a19b3e77ac52e5719195f97a8a8f5085946a4e4e63470792018","contract":["sha3.New256 returns a hash.Hash with Size 32 bytes and BlockSize 136 bytes","sha3.New256 computes the correct SHA3-256 digest for empty input","sha3.New256 computes the correct SHA3-256 digest for standard test message","sha3.New256 produces identical digest when written in single write or incremental chunks","sha3.New256 Reset clears state and produces same digest as new instance","sha3.New256 Sum appends the 32-byte digest to existing slice buffer"],"goal":"verify golang.org/x/crypto/sha3.New256 in pkg:golang/golang.org/x/crypto@v0.48.0","kind":"HOW","packages":["pkg:golang/golang.org/x/crypto@v0.48.0"],"schemaVersion":1,"symbols":["golang.org/x/crypto/sha3.New256"]},"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@v0.48.0"],"schemaVersion":1,"subject":"pkg:golang/golang.org/x/crypto@v0.48.0","symbols":["golang.org/x/crypto/sha3.New256"],"verifierAdapter":"golang@1"}
go.mod
module example.com/sample

go 1.26.6

require golang.org/x/crypto v0.48.0

require golang.org/x/sys v0.47.0 // indirect
go.sum
golang.org/x/crypto v0.48.0 h1:/VRzVqiRSggnhY7gNRxPauEQ5Drw9haKdM0jqfcCFts=
golang.org/x/crypto v0.48.0/go.mod h1:r0kV5h3qnFPlQnBSrULhlsRfryS2pmewsg+XfMgkVos=
golang.org/x/sys v0.47.0 h1:o7XGOvZQCADBQQ4Y7VNq2dRWQR7JmOUW8Kxx4ZsNgWs=
golang.org/x/sys v0.47.0/go.mod h1:4GL1E5IUh+htKOUEOaiffhrAeqysfVGipDYzABqnCmw=
main.go
package main

import (
	"encoding/hex"
	"fmt"
	"log"

	"golang.org/x/crypto/sha3"
)

func main() {
	msg := []byte("The quick brown fox jumps over the lazy dog")

	// Initialize SHA3-256 hasher
	hasher := sha3.New256()

	// Hash the input message
	if _, err := hasher.Write(msg); err != nil {
		log.Fatalf("failed to write data: %v", err)
	}

	// Compute final digest
	digest := hasher.Sum(nil)
	fmt.Printf("SHA3-256 digest: %s\n", hex.EncodeToString(digest))
	fmt.Printf("Digest size: %d bytes, rate block size: %d bytes\n", hasher.Size(), hasher.BlockSize())
}
spec.json
{
  "schemaVersion": 1,
  "goal": "verify golang.org/x/crypto/sha3.New256 in pkg:golang/golang.org/x/crypto@v0.48.0",
  "kind": "HOW",
  "packages": [
    "pkg:golang/golang.org/x/crypto@v0.48.0"
  ],
  "symbols": [
    "golang.org/x/crypto/sha3.New256"
  ]
}
test/contract.go
package main

import (
	"bytes"
	"encoding/hex"
	"fmt"
	"os"

	"golang.org/x/crypto/sha3"
)

func main() {
	// 1. sha3.New256 returns a hash.Hash with Size 32 bytes and BlockSize 136 bytes
	h := sha3.New256()
	if h.Size() != 32 {
		fmt.Fprintf(os.Stderr, "assertion 1 failed: Size expected 32, got %d\n", h.Size())
		os.Exit(1)
	}
	if h.BlockSize() != 136 {
		fmt.Fprintf(os.Stderr, "assertion 1 failed: BlockSize expected 136, got %d\n", h.BlockSize())
		os.Exit(1)
	}

	// 2. sha3.New256 computes the correct SHA3-256 digest for empty input
	hEmpty := sha3.New256()
	emptyDigest := hEmpty.Sum(nil)
	expectedEmptyHex := "a7ffc6f8bf1ed76651c14756a061d662f580ff4de43b49fa82d80a4b80f8434a"
	if hex.EncodeToString(emptyDigest) != expectedEmptyHex {
		fmt.Fprintf(os.Stderr, "assertion 2 failed: empty digest expected %s, got %s\n", expectedEmptyHex, hex.EncodeToString(emptyDigest))
		os.Exit(1)
	}

	// 3. sha3.New256 computes the correct SHA3-256 digest for standard test message
	hMsg := sha3.New256()
	msg := []byte("The quick brown fox jumps over the lazy dog")
	if n, err := hMsg.Write(msg); err != nil || n != len(msg) {
		fmt.Fprintf(os.Stderr, "assertion 3 failed: Write returned err %v, n %d\n", err, n)
		os.Exit(1)
	}
	msgDigest := hMsg.Sum(nil)
	expectedMsgHex := "69070dda01975c8c120c3aada1b282394e7f032fa9cf32f4cb2259a0897dfc04"
	if hex.EncodeToString(msgDigest) != expectedMsgHex {
		fmt.Fprintf(os.Stderr, "assertion 3 failed: msg digest expected %s, got %s\n", expectedMsgHex, hex.EncodeToString(msgDigest))
		os.Exit(1)
	}

	// 4. sha3.New256 produces identical digest when written in single write or incremental chunks
	hChunked := sha3.New256()
	chunks := [][]byte{
		[]byte("The quick brown "),
		[]byte("fox jumps over "),
		[]byte("the lazy dog"),
	}
	for _, chunk := range chunks {
		if _, err := hChunked.Write(chunk); err != nil {
			fmt.Fprintf(os.Stderr, "assertion 4 failed: Write chunk err: %v\n", err)
			os.Exit(1)
		}
	}
	chunkedDigest := hChunked.Sum(nil)
	if !bytes.Equal(chunkedDigest, msgDigest) {
		fmt.Fprintf(os.Stderr, "assertion 4 failed: chunked digest != single write digest\n")
		os.Exit(1)
	}

	// 5. sha3.New256 Reset clears state and produces same digest as new instance
	hReset := sha3.New256()
	hReset.Write([]byte("some completely different intermediate state"))
	hReset.Reset()
	hReset.Write(msg)
	resetDigest := hReset.Sum(nil)
	if !bytes.Equal(resetDigest, msgDigest) {
		fmt.Fprintf(os.Stderr, "assertion 5 failed: reset digest != original digest\n")
		os.Exit(1)
	}

	// 6. sha3.New256 Sum appends the 32-byte digest to existing slice buffer
	hSum := sha3.New256()
	hSum.Write(msg)
	prefix := []byte{0xDE, 0xAD, 0xBE, 0xEF}
	combined := hSum.Sum(prefix)
	if len(combined) != len(prefix)+32 {
		fmt.Fprintf(os.Stderr, "assertion 6 failed: length mismatch, expected %d, got %d\n", len(prefix)+32, len(combined))
		os.Exit(1)
	}
	if !bytes.Equal(combined[:len(prefix)], prefix) {
		fmt.Fprintf(os.Stderr, "assertion 6 failed: prefix not preserved\n")
		os.Exit(1)
	}
	if !bytes.Equal(combined[len(prefix):], msgDigest) {
		fmt.Fprintf(os.Stderr, "assertion 6 failed: appended digest does not match\n")
		os.Exit(1)
	}

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

Seeder de origen

anónimo