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280 lines
11 KiB
Python
280 lines
11 KiB
Python
"""
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Message processing pipeline for envelope encryption.
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This module handles the core envelope encryption workflow:
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1. Decrypt client-encrypted message (transport encryption)
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2. Generate random MEK
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3. Encrypt plaintext with MEK
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4. Wrap MEK for compliance, sender, and recipient
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5. Store encrypted message + wrapped keys
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"""
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import io
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import logging
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import json
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import time
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import base64
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from pathlib import Path
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from typing import Dict, Any, Optional
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from cryptography.hazmat.primitives.asymmetric.x25519 import X25519PrivateKey
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from .encryption import (
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decrypt_transport_message,
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generate_mek,
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encrypt_message,
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wrap_mek,
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derive_shared_secret,
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derive_key_from_shared_secret,
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)
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logger = logging.getLogger("uvicorn.error")
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def process_encrypted_message(
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client_public_key_b64: str,
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transport_nonce_b64: str,
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transport_ciphertext_b64: str,
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compliance_public_key_b64: str,
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sender_public_key_b64: str,
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recipient_public_key_b64: str,
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ephemeral_private_key: X25519PrivateKey,
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) -> Dict[str, Any]:
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"""
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Process an encrypted message through the envelope encryption pipeline.
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Step 1: Decrypt client message using transport encryption (ephemeral keys)
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Step 2: Generate random MEK
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Step 3: Encrypt plaintext with MEK
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Step 4: Wrap MEK for compliance, sender, recipient (using their provided public keys)
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Step 5: Return encrypted message + 3 wrapped MEKs
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Args:
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client_public_key_b64: Client's ephemeral public key for transport decryption
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transport_nonce_b64: Nonce used for transport encryption
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transport_ciphertext_b64: Client's encrypted plaintext
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compliance_public_key_b64: Compliance system's public key for MEK wrapping
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sender_public_key_b64: Sender's public key for MEK wrapping
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recipient_public_key_b64: Recipient's public key for MEK wrapping
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ephemeral_private_key: Server's ephemeral X25519 private key
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Returns:
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Dict with encrypted message and wrapped MEKs:
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{
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"nonce": base64-encoded nonce for content encryption,
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"ciphertext": base64-encoded encrypted content,
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"compliance_wrapped_mek": base64-encoded wrapped MEK,
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"sender_wrapped_mek": base64-encoded wrapped MEK,
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"recipient_wrapped_mek": base64-encoded wrapped MEK,
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}
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"""
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try:
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start_time = time.time()
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# Step 1: Decrypt transport message
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logger.info("CRYPTO: Starting envelope encryption processing")
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plaintext = decrypt_transport_message(
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client_public_key_b64,
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transport_nonce_b64,
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transport_ciphertext_b64,
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ephemeral_private_key,
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)
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logger.info(
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"CRYPTO: Transport decryption complete, plaintext size: %d bytes",
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len(plaintext)
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)
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# Step 2: Generate random MEK
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mek = generate_mek()
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logger.info("CRYPTO: Generated random MEK (32 bytes)")
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# Step 3: Encrypt plaintext with MEK
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content_nonce, ciphertext = encrypt_message(plaintext, mek)
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logger.info(
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"CRYPTO: Content encryption with MEK complete, ciphertext size: %d bytes",
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len(ciphertext)
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)
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# Step 4a: Derive wrap keys deterministically from recipient public keys
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# This avoids needing to store the ephemeral transport key
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logger.info("CRYPTO: Deriving key wrap keys deterministically")
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# Use HKDF with recipient public key bytes as input to derive wrap keys
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# This is deterministic and doesn't require storing ephemeral keys
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import base64
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compliance_key_bytes = base64.b64decode(compliance_public_key_b64)
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sender_key_bytes = base64.b64decode(sender_public_key_b64)
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recipient_key_bytes = base64.b64decode(recipient_public_key_b64)
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logger.info(f"🔑 Deriving wrap keys for sender={sender_public_key_b64[:20]}... recipient={recipient_public_key_b64[:20]}...")
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compliance_wrap_key = derive_key_from_shared_secret(compliance_key_bytes, "compliance_wrap_key")
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sender_wrap_key = derive_key_from_shared_secret(sender_key_bytes, "sender_wrap_key")
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recipient_wrap_key = derive_key_from_shared_secret(recipient_key_bytes, "recipient_wrap_key")
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logger.info("✅ Wrap keys derived successfully")
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# Step 4b: Wrap MEK for each recipient
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compliance_wrapped_mek = wrap_mek(mek, compliance_wrap_key)
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sender_wrapped_mek = wrap_mek(mek, sender_wrap_key)
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recipient_wrapped_mek = wrap_mek(mek, recipient_wrap_key)
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logger.info(f"🔐 MEK wrapping complete:")
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logger.info(f" Compliance MEK: {compliance_wrapped_mek[:30]}... ({len(compliance_wrapped_mek)} chars)")
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logger.info(f" Sender MEK: {sender_wrapped_mek[:30]}... ({len(sender_wrapped_mek)} chars)")
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logger.info(f" Recipient MEK: {recipient_wrapped_mek[:30]}... ({len(recipient_wrapped_mek)} chars)")
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duration = time.time() - start_time
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logger.info(
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"CRYPTO: Successfully processed message with 3 MEK wraps (compliance/sender/recipient) in %.2fms",
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duration * 1000
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)
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# Get the transport public key for storage with the message
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transport_public_key_b64 = base64.b64encode(ephemeral_private_key.public_key().public_bytes_raw()).decode("ascii")
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return {
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"nonce": content_nonce,
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"ciphertext": ciphertext,
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"compliance_wrapped_mek": compliance_wrapped_mek,
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"sender_wrapped_mek": sender_wrapped_mek,
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"recipient_wrapped_mek": recipient_wrapped_mek,
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}
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except Exception as e:
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duration = time.time() - start_time
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logger.exception(
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"CRYPTO: Failed to process encrypted message after %.2fms: %s",
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duration * 1000, str(e)
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)
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raise
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_IMAGE_EXTENSIONS = frozenset({".png", ".jpg", ".jpeg", ".gif", ".webp"})
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_THUMB_SIZE = 80
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def _generate_thumbnail(image_bytes: bytes) -> tuple[str | None, list[int]]:
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"""Generate tiny JPEG thumbnail (Telegram-style). Returns (base64_jpeg, [w,h]) or (None, [1,1]) on error."""
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try:
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from math import gcd
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from PIL import Image
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img = Image.open(io.BytesIO(image_bytes))
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img = img.convert("RGB")
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if hasattr(img, "info") and img.info:
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img.info.pop("icc_profile", None)
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w, h = img.size
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g = gcd(w, h) if h else 1
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aspect_wh = [w // g, h // g] if g else [1, 1]
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if w > _THUMB_SIZE or h > _THUMB_SIZE:
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scale = min(_THUMB_SIZE / w, _THUMB_SIZE / h)
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new_w = max(1, int(w * scale))
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new_h = max(1, int(h * scale))
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img = img.resize((new_w, new_h), Image.Resampling.LANCZOS)
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buf = io.BytesIO()
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img.save(buf, format="JPEG", quality=85, optimize=True)
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jpeg_b64 = base64.b64encode(buf.getvalue()).decode("ascii")
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logger.info("THUMB: Image %dx%d -> thumb %dx%d, b64len=%d", w, h, img.width, img.height, len(jpeg_b64))
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return (jpeg_b64, aspect_wh)
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except Exception as e:
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logger.warning("THUMB: Generation failed: %s", e)
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return (None, [1, 1])
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def process_encrypted_message_and_files(
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plaintext_message: bytes,
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plaintext_files: list[bytes],
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filenames: list[str],
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compliance_public_key_b64: str,
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sender_public_key_b64: str,
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recipient_public_key_b64: str,
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) -> Dict[str, Any]:
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"""
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Process a message and its attached files using a single MEK.
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- Generates one random MEK
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- Encrypts message and each file with AES-GCM using that MEK (unique nonce per item)
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- Wraps the MEK for compliance, sender, and recipient
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Returns:
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{
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"message": {"nonce": str, "ciphertext": str},
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"files": [{"nonce": str, "ciphertext": str}, ...],
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...
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}
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"""
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start_time = time.time()
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if len(filenames) != len(plaintext_files):
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filenames = [f"file_{i}" for i in range(len(plaintext_files))]
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# One MEK for everything in this envelope
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mek = generate_mek()
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# Build message plaintext: when we have files, use JSON with text + fileThumbnails + fileAspectRatios + fileSizes
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file_thumbnails: list[str] = []
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file_aspect_ratios: list[list[int]] = []
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file_sizes: list[int] = []
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for i, f_bytes in enumerate(plaintext_files):
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name = filenames[i] if i < len(filenames) else ""
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file_sizes.append(len(f_bytes))
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if Path(name).suffix.lower() in _IMAGE_EXTENSIONS:
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thumb_b64, wh = _generate_thumbnail(f_bytes)
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file_thumbnails.append(thumb_b64 or "")
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file_aspect_ratios.append(wh)
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else:
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file_thumbnails.append("")
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file_aspect_ratios.append([1, 1])
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if plaintext_files:
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msg_obj = {
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"text": plaintext_message.decode("utf-8", errors="replace"),
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"fileThumbnails": file_thumbnails,
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"fileAspectRatios": file_aspect_ratios,
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"fileSizes": file_sizes,
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}
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logger.info(
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"THUMB: Message with %d files, thumbnails=%s, aspectRatios=%s",
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len(file_thumbnails),
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[f"len={len(t)}" if t else "empty" for t in file_thumbnails],
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file_aspect_ratios,
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)
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plaintext_to_encrypt = json.dumps(msg_obj, ensure_ascii=False).encode("utf-8")
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else:
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plaintext_to_encrypt = plaintext_message
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# Encrypt message
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msg_nonce, msg_ciphertext = encrypt_message(plaintext_to_encrypt, mek)
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# Encrypt files (same MEK, per-file nonce)
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files_out: list[Dict[str, Any]] = []
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for i, f_bytes in enumerate(plaintext_files):
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f_nonce, f_ciphertext = encrypt_message(f_bytes, mek)
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entry: Dict[str, Any] = {"nonce": f_nonce, "ciphertext": f_ciphertext}
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files_out.append(entry)
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# Derive wrap keys deterministically (same as existing flow)
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compliance_key_bytes = base64.b64decode(compliance_public_key_b64)
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sender_key_bytes = base64.b64decode(sender_public_key_b64)
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recipient_key_bytes = base64.b64decode(recipient_public_key_b64)
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compliance_wrap_key = derive_key_from_shared_secret(compliance_key_bytes, "compliance_wrap_key")
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sender_wrap_key = derive_key_from_shared_secret(sender_key_bytes, "sender_wrap_key")
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recipient_wrap_key = derive_key_from_shared_secret(recipient_key_bytes, "recipient_wrap_key")
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compliance_wrapped_mek = wrap_mek(mek, compliance_wrap_key)
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sender_wrapped_mek = wrap_mek(mek, sender_wrap_key)
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recipient_wrapped_mek = wrap_mek(mek, recipient_wrap_key)
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duration = time.time() - start_time
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logger.info(
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"CRYPTO: Processed message+%d files with single MEK in %.2fms",
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len(files_out),
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duration * 1000,
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)
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return {
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"message": {"nonce": msg_nonce, "ciphertext": msg_ciphertext},
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"files": files_out,
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"compliance_wrapped_mek": compliance_wrapped_mek,
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"sender_wrapped_mek": sender_wrapped_mek,
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"recipient_wrapped_mek": recipient_wrapped_mek,
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}
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