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persistence.zig 4.2 KB

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  1. const std = @import("std");
  2. const storage = @import("storage.zig");
  3. const MAX_PERSISTENCE_SIZE = 10_000_000 * 100;
  4. const BUFFER_SIZE = 1024 * 1024 * 8;
  5. const FLUSH_THRESHOLD = (BUFFER_SIZE * 3) / 4;
  6. var storage_file: ?std.fs.File = null;
  7. const c_allocator = std.heap.c_allocator;
  8. var mutex: std.Thread.Mutex = .{};
  9. var write_buffer: [BUFFER_SIZE]u8 = undefined;
  10. var buffer_position: usize = 0;
  11. const OPCode = enum {
  12. W,
  13. D,
  14. };
  15. pub fn init() !void {
  16. const cwd = std.fs.cwd();
  17. storage_file = cwd.openFile(".db", .{ .mode = .read_write }) catch |err| {
  18. if (err == std.fs.File.OpenError.FileNotFound) {
  19. std.debug.print("No persisted data found, starting fresh...\n", .{});
  20. storage_file = cwd.createFile(".db", .{ .read = true }) catch |ierr| {
  21. std.debug.print("Failed to create storage file: {any}\n", .{ierr});
  22. return;
  23. };
  24. std.debug.print("Created new storage file .db\n", .{});
  25. }
  26. return;
  27. };
  28. const storage_data = storage_file.?.readToEndAlloc(c_allocator, MAX_PERSISTENCE_SIZE) catch |err| {
  29. std.debug.print("Failed to read storage file: {any}\n", .{err});
  30. return;
  31. };
  32. defer c_allocator.free(storage_data);
  33. var records = std.mem.splitScalar(u8, storage_data, '\r');
  34. var record_count: usize = 0;
  35. while (records.next()) |record| {
  36. if (record.len == 0) {
  37. continue;
  38. }
  39. record_count += 1;
  40. std.debug.print("Restoring record N:{d}\r", .{record_count});
  41. var recordIterator = std.mem.splitScalar(u8, record, '|');
  42. const opcode = recordIterator.first();
  43. const key = recordIterator.next() orelse continue;
  44. const value = recordIterator.next() orelse continue;
  45. const opcodeEnum = std.meta.stringToEnum(OPCode, opcode) orelse continue;
  46. switch (opcodeEnum) {
  47. .W => _ = storage.restore(key, value),
  48. .D => _ = storage.restoreDelete(key),
  49. }
  50. }
  51. std.debug.print("Restored {d} records from persistence", .{record_count});
  52. storage_file.?.close();
  53. storage_file = cwd.openFile(".db", .{ .mode = .write_only }) catch |err| {
  54. std.debug.print("Failed to reopen storage file in append mode: {any}\n", .{err});
  55. return;
  56. };
  57. try storage_file.?.seekFromEnd(0);
  58. return;
  59. }
  60. pub fn persist(opcode: u8, key: []const u8, value: []const u8) void {
  61. const record_len = 1 + 1 + key.len + 1 + value.len + 1;
  62. mutex.lock();
  63. defer mutex.unlock();
  64. if (buffer_position + record_len > FLUSH_THRESHOLD) {
  65. flushBuffer() catch |err| {
  66. std.debug.print("Failed to flush buffer: {any}\n", .{err});
  67. return;
  68. };
  69. }
  70. if (record_len > BUFFER_SIZE) {
  71. var temp_buffer: [BUFFER_SIZE]u8 = undefined;
  72. var pos: usize = 0;
  73. temp_buffer[pos] = opcode;
  74. pos += 1;
  75. temp_buffer[pos] = '|';
  76. pos += 1;
  77. @memcpy(temp_buffer[pos .. pos + key.len], key);
  78. pos += key.len;
  79. temp_buffer[pos] = '|';
  80. pos += 1;
  81. @memcpy(temp_buffer[pos .. pos + value.len], value);
  82. pos += value.len;
  83. temp_buffer[pos] = '\r';
  84. pos += 1;
  85. _ = storage_file.?.write(temp_buffer[0..pos]) catch |err| {
  86. std.debug.print("Failed to write large record to storage file: {any}\n", .{err});
  87. return;
  88. };
  89. return;
  90. }
  91. if (buffer_position + record_len > BUFFER_SIZE) {
  92. flushBuffer() catch |err| {
  93. std.debug.print("Failed to flush buffer: {any}\n", .{err});
  94. return;
  95. };
  96. }
  97. var pos = buffer_position;
  98. write_buffer[pos] = opcode;
  99. pos += 1;
  100. write_buffer[pos] = '|';
  101. pos += 1;
  102. @memcpy(write_buffer[pos .. pos + key.len], key);
  103. pos += key.len;
  104. write_buffer[pos] = '|';
  105. pos += 1;
  106. @memcpy(write_buffer[pos .. pos + value.len], value);
  107. pos += value.len;
  108. write_buffer[pos] = '\r';
  109. pos += 1;
  110. buffer_position = pos;
  111. }
  112. pub fn flush() !void {
  113. mutex.lock();
  114. defer mutex.unlock();
  115. try flushBuffer();
  116. }
  117. fn flushBuffer() !void {
  118. if (buffer_position == 0) {
  119. return;
  120. }
  121. _ = try storage_file.?.write(write_buffer[0..buffer_position]);
  122. buffer_position = 0;
  123. }