461 lines
15 KiB
Dart
461 lines
15 KiB
Dart
import 'dart:io' as io;
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import 'dart:typed_data';
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import 'package:computer/computer.dart';
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import 'package:flutter_sodium/flutter_sodium.dart';
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import 'package:logging/logging.dart';
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import 'package:photos/models/derived_key_result.dart';
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import 'package:photos/models/encryption_result.dart';
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import "package:photos/utils/device_info.dart";
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const int encryptionChunkSize = 4 * 1024 * 1024;
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final int decryptionChunkSize =
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encryptionChunkSize + Sodium.cryptoSecretstreamXchacha20poly1305Abytes;
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const int hashChunkSize = 4 * 1024 * 1024;
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Uint8List cryptoSecretboxEasy(Map<String, dynamic> args) {
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return Sodium.cryptoSecretboxEasy(args["source"], args["nonce"], args["key"]);
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}
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Uint8List cryptoSecretboxOpenEasy(Map<String, dynamic> args) {
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return Sodium.cryptoSecretboxOpenEasy(
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args["cipher"],
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args["nonce"],
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args["key"],
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);
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}
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Uint8List cryptoPwHash(Map<String, dynamic> args) {
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return Sodium.cryptoPwhash(
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Sodium.cryptoSecretboxKeybytes,
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args["password"],
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args["salt"],
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args["opsLimit"],
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args["memLimit"],
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Sodium.cryptoPwhashAlgArgon2id13,
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);
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}
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// Returns the hash for a given file, chunking it in batches of hashChunkSize
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Future<Uint8List> cryptoGenericHash(Map<String, dynamic> args) async {
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final sourceFile = io.File(args["sourceFilePath"]);
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final sourceFileLength = await sourceFile.length();
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final inputFile = sourceFile.openSync(mode: io.FileMode.read);
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final state =
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Sodium.cryptoGenerichashInit(null, Sodium.cryptoGenerichashBytesMax);
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var bytesRead = 0;
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bool isDone = false;
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while (!isDone) {
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var chunkSize = hashChunkSize;
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if (bytesRead + chunkSize >= sourceFileLength) {
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chunkSize = sourceFileLength - bytesRead;
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isDone = true;
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}
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final buffer = await inputFile.read(chunkSize);
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bytesRead += chunkSize;
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Sodium.cryptoGenerichashUpdate(state, buffer);
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}
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await inputFile.close();
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return Sodium.cryptoGenerichashFinal(state, Sodium.cryptoGenerichashBytesMax);
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}
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EncryptionResult chachaEncryptData(Map<String, dynamic> args) {
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final initPushResult =
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Sodium.cryptoSecretstreamXchacha20poly1305InitPush(args["key"]);
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final encryptedData = Sodium.cryptoSecretstreamXchacha20poly1305Push(
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initPushResult.state,
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args["source"],
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null,
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Sodium.cryptoSecretstreamXchacha20poly1305TagFinal,
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);
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return EncryptionResult(
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encryptedData: encryptedData,
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header: initPushResult.header,
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);
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}
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// Encrypts a given file, in chunks of encryptionChunkSize
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Future<EncryptionResult> chachaEncryptFile(Map<String, dynamic> args) async {
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final encryptionStartTime = DateTime.now().millisecondsSinceEpoch;
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final logger = Logger("ChaChaEncrypt");
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final sourceFile = io.File(args["sourceFilePath"]);
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final destinationFile = io.File(args["destinationFilePath"]);
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final sourceFileLength = await sourceFile.length();
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logger.info("Encrypting file of size " + sourceFileLength.toString());
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final inputFile = sourceFile.openSync(mode: io.FileMode.read);
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final key = args["key"] ?? Sodium.cryptoSecretstreamXchacha20poly1305Keygen();
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final initPushResult =
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Sodium.cryptoSecretstreamXchacha20poly1305InitPush(key);
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var bytesRead = 0;
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var tag = Sodium.cryptoSecretstreamXchacha20poly1305TagMessage;
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while (tag != Sodium.cryptoSecretstreamXchacha20poly1305TagFinal) {
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var chunkSize = encryptionChunkSize;
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if (bytesRead + chunkSize >= sourceFileLength) {
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chunkSize = sourceFileLength - bytesRead;
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tag = Sodium.cryptoSecretstreamXchacha20poly1305TagFinal;
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}
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final buffer = await inputFile.read(chunkSize);
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bytesRead += chunkSize;
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final encryptedData = Sodium.cryptoSecretstreamXchacha20poly1305Push(
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initPushResult.state,
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buffer,
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null,
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tag,
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);
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await destinationFile.writeAsBytes(encryptedData, mode: io.FileMode.append);
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}
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await inputFile.close();
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logger.info(
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"Encryption time: " +
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(DateTime.now().millisecondsSinceEpoch - encryptionStartTime)
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.toString(),
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);
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return EncryptionResult(key: key, header: initPushResult.header);
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}
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Future<void> chachaDecryptFile(Map<String, dynamic> args) async {
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final logger = Logger("ChaChaDecrypt");
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final decryptionStartTime = DateTime.now().millisecondsSinceEpoch;
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final sourceFile = io.File(args["sourceFilePath"]);
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final destinationFile = io.File(args["destinationFilePath"]);
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final sourceFileLength = await sourceFile.length();
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logger.info("Decrypting file of size " + sourceFileLength.toString());
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final inputFile = sourceFile.openSync(mode: io.FileMode.read);
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final pullState = Sodium.cryptoSecretstreamXchacha20poly1305InitPull(
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args["header"],
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args["key"],
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);
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var bytesRead = 0;
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var tag = Sodium.cryptoSecretstreamXchacha20poly1305TagMessage;
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while (tag != Sodium.cryptoSecretstreamXchacha20poly1305TagFinal) {
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var chunkSize = decryptionChunkSize;
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if (bytesRead + chunkSize >= sourceFileLength) {
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chunkSize = sourceFileLength - bytesRead;
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}
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final buffer = await inputFile.read(chunkSize);
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bytesRead += chunkSize;
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final pullResult =
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Sodium.cryptoSecretstreamXchacha20poly1305Pull(pullState, buffer, null);
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await destinationFile.writeAsBytes(pullResult.m, mode: io.FileMode.append);
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tag = pullResult.tag;
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}
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inputFile.closeSync();
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logger.info(
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"ChaCha20 Decryption time: " +
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(DateTime.now().millisecondsSinceEpoch - decryptionStartTime)
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.toString(),
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);
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}
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Uint8List chachaDecryptData(Map<String, dynamic> args) {
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final pullState = Sodium.cryptoSecretstreamXchacha20poly1305InitPull(
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args["header"],
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args["key"],
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);
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final pullResult = Sodium.cryptoSecretstreamXchacha20poly1305Pull(
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pullState,
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args["source"],
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null,
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);
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return pullResult.m;
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}
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class CryptoUtil {
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// Note: workers are turned on during app startup.
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static final Computer _computer = Computer.shared();
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static init() {
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Sodium.init();
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}
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static Uint8List base642bin(
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String b64, {
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String? ignore,
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int variant = Sodium.base64VariantOriginal,
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}) {
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return Sodium.base642bin(b64, ignore: ignore, variant: variant);
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}
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static String bin2base64(
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Uint8List bin, {
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bool urlSafe = false,
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}) {
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return Sodium.bin2base64(
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bin,
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variant:
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urlSafe ? Sodium.base64VariantUrlsafe : Sodium.base64VariantOriginal,
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);
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}
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static String bin2hex(Uint8List bin) {
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return Sodium.bin2hex(bin);
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}
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static Uint8List hex2bin(String hex) {
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return Sodium.hex2bin(hex);
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}
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// Encrypts the given source, with the given key and a randomly generated
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// nonce, using XSalsa20 (w Poly1305 MAC).
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// This function runs on the same thread as the caller, so should be used only
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// for small amounts of data where thread switching can result in a degraded
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// user experience
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static EncryptionResult encryptSync(Uint8List source, Uint8List key) {
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final nonce = Sodium.randombytesBuf(Sodium.cryptoSecretboxNoncebytes);
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final args = <String, dynamic>{};
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args["source"] = source;
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args["nonce"] = nonce;
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args["key"] = key;
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final encryptedData = cryptoSecretboxEasy(args);
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return EncryptionResult(
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key: key,
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nonce: nonce,
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encryptedData: encryptedData,
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);
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}
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// Decrypts the given cipher, with the given key and nonce using XSalsa20
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// (w Poly1305 MAC).
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static Future<Uint8List> decrypt(
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Uint8List cipher,
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Uint8List key,
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Uint8List nonce,
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) async {
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final args = <String, dynamic>{};
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args["cipher"] = cipher;
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args["nonce"] = nonce;
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args["key"] = key;
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return _computer.compute(
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cryptoSecretboxOpenEasy,
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param: args,
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taskName: "decrypt",
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);
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}
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// Decrypts the given cipher, with the given key and nonce using XSalsa20
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// (w Poly1305 MAC).
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// This function runs on the same thread as the caller, so should be used only
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// for small amounts of data where thread switching can result in a degraded
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// user experience
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static Uint8List decryptSync(
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Uint8List cipher,
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Uint8List key,
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Uint8List nonce,
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) {
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final args = <String, dynamic>{};
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args["cipher"] = cipher;
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args["nonce"] = nonce;
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args["key"] = key;
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return cryptoSecretboxOpenEasy(args);
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}
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// Encrypts the given source, with the given key and a randomly generated
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// nonce, using XChaCha20 (w Poly1305 MAC).
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// This function runs on the isolate pool held by `_computer`.
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// TODO: Remove "ChaCha", an implementation detail from the function name
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static Future<EncryptionResult> encryptChaCha(
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Uint8List source,
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Uint8List key,
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) async {
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final args = <String, dynamic>{};
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args["source"] = source;
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args["key"] = key;
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return _computer.compute(
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chachaEncryptData,
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param: args,
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taskName: "encryptChaCha",
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);
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}
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// Decrypts the given source, with the given key and header using XChaCha20
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// (w Poly1305 MAC).
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// TODO: Remove "ChaCha", an implementation detail from the function name
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static Future<Uint8List> decryptChaCha(
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Uint8List source,
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Uint8List key,
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Uint8List header,
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) async {
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final args = <String, dynamic>{};
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args["source"] = source;
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args["key"] = key;
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args["header"] = header;
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return _computer.compute(
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chachaDecryptData,
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param: args,
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taskName: "decryptChaCha",
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);
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}
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// Encrypts the file at sourceFilePath, with the key (if provided) and a
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// randomly generated nonce using XChaCha20 (w Poly1305 MAC), and writes it
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// to the destinationFilePath.
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// If a key is not provided, one is generated and returned.
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static Future<EncryptionResult> encryptFile(
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String sourceFilePath,
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String destinationFilePath, {
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Uint8List? key,
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}) {
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final args = <String, dynamic>{};
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args["sourceFilePath"] = sourceFilePath;
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args["destinationFilePath"] = destinationFilePath;
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args["key"] = key;
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return _computer.compute(
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chachaEncryptFile,
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param: args,
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taskName: "encryptFile",
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);
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}
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// Decrypts the file at sourceFilePath, with the given key and header using
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// XChaCha20 (w Poly1305 MAC), and writes it to the destinationFilePath.
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static Future<void> decryptFile(
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String sourceFilePath,
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String destinationFilePath,
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Uint8List header,
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Uint8List key,
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) {
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final args = <String, dynamic>{};
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args["sourceFilePath"] = sourceFilePath;
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args["destinationFilePath"] = destinationFilePath;
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args["header"] = header;
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args["key"] = key;
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return _computer.compute(
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chachaDecryptFile,
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param: args,
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taskName: "decryptFile",
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);
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}
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// Generates and returns a 256-bit key.
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static Uint8List generateKey() {
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return Sodium.cryptoSecretboxKeygen();
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}
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// Generates and returns a random byte buffer of length
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// crypto_pwhash_SALTBYTES (16)
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static Uint8List getSaltToDeriveKey() {
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return Sodium.randombytesBuf(Sodium.cryptoPwhashSaltbytes);
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}
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// Generates and returns a secret key and the corresponding public key.
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static Future<KeyPair> generateKeyPair() async {
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return Sodium.cryptoBoxKeypair();
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}
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// Decrypts the input using the given publicKey-secretKey pair
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static Uint8List openSealSync(
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Uint8List input,
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Uint8List publicKey,
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Uint8List secretKey,
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) {
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return Sodium.cryptoBoxSealOpen(input, publicKey, secretKey);
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}
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// Encrypts the input using the given publicKey
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static Uint8List sealSync(Uint8List input, Uint8List publicKey) {
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return Sodium.cryptoBoxSeal(input, publicKey);
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}
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// Derives a key for a given password and salt using Argon2id, v1.3.
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// The function first attempts to derive a key with both memLimit and opsLimit
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// set to their Sensitive variants.
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// If this fails, say on a device with insufficient RAM, we retry by halving
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// the memLimit and doubling the opsLimit, while ensuring that we stay within
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// the min and max limits for both parameters.
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// At all points, we ensure that the product of these two variables (the area
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// under the graph that determines the amount of work required) is a constant.
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static Future<DerivedKeyResult> deriveSensitiveKey(
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Uint8List password,
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Uint8List salt,
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) async {
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final logger = Logger("pwhash");
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int memLimit = Sodium.cryptoPwhashMemlimitSensitive;
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int opsLimit = Sodium.cryptoPwhashOpslimitSensitive;
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if (await isLowSpecDevice()) {
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logger.info("low spec device detected");
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// When sensitive memLimit (1 GB) is used, on low spec device the OS might
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// kill the app with OOM. To avoid that, start with 256 MB and
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// corresponding ops limit (16).
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// This ensures that the product of these two variables
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// (the area under the graph that determines the amount of work required)
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// stays the same
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// SODIUM_CRYPTO_PWHASH_MEMLIMIT_SENSITIVE: 1073741824
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// SODIUM_CRYPTO_PWHASH_MEMLIMIT_MODERATE: 268435456
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// SODIUM_CRYPTO_PWHASH_OPSLIMIT_SENSITIVE: 4
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memLimit = Sodium.cryptoPwhashMemlimitModerate;
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final factor = Sodium.cryptoPwhashMemlimitSensitive ~/
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Sodium.cryptoPwhashMemlimitModerate; // = 4
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opsLimit = opsLimit * factor; // = 16
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}
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Uint8List key;
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while (memLimit >= Sodium.cryptoPwhashMemlimitMin &&
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opsLimit <= Sodium.cryptoPwhashOpslimitMax) {
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try {
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key = await deriveKey(password, salt, memLimit, opsLimit);
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return DerivedKeyResult(key, memLimit, opsLimit);
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} catch (e, s) {
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logger.severe(
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"failed to derive memLimit: $memLimit and opsLimit: $opsLimit",
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e,
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s,
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);
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}
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memLimit = (memLimit / 2).round();
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opsLimit = opsLimit * 2;
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}
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throw UnsupportedError("Cannot perform this operation on this device");
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}
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// Derives a key for the given password and salt, using Argon2id, v1.3
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// with memory and ops limit hardcoded to their Interactive variants
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// NOTE: This is only used while setting passwords for shared links, as an
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// extra layer of authentication (atop the access token and collection key).
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// More details @ https://ente.io/blog/building-shareable-links/
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static Future<DerivedKeyResult> deriveInteractiveKey(
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Uint8List password,
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Uint8List salt,
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) async {
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final int memLimit = Sodium.cryptoPwhashMemlimitInteractive;
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final int opsLimit = Sodium.cryptoPwhashOpslimitInteractive;
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final key = await deriveKey(password, salt, memLimit, opsLimit);
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return DerivedKeyResult(key, memLimit, opsLimit);
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}
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// Derives a key for a given password, salt, memLimit and opsLimit using
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// Argon2id, v1.3.
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static Future<Uint8List> deriveKey(
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Uint8List password,
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Uint8List salt,
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int memLimit,
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int opsLimit,
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) {
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return _computer.compute(
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cryptoPwHash,
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param: {
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"password": password,
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"salt": salt,
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"memLimit": memLimit,
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"opsLimit": opsLimit,
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},
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taskName: "deriveKey",
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);
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}
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// Computes and returns the hash of the source file
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static Future<Uint8List> getHash(io.File source) {
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return _computer.compute(
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cryptoGenericHash,
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param: {
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"sourceFilePath": source.path,
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},
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taskName: "fileHash",
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);
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}
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}
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