The load-bearing step. The FAT service stops acquiring its own volume: the volume manager spawns it (per volume), defines its partition range on the storage driver BEFORE it runs, and answers its startup hello with the range-confined block channel over a new volume-manager protocol. fat never finds its storage by name and never sees the whole device — establishment by lineage, one layer up from the driver tree. - New library/protocol/volume-manager: one verb, hello(volume-id) -> the block channel as the reply capability (the P0 reply-cap path). - The volume manager becomes the confinement CONTROLLER: it defines the first range on usb-storage, so no other party can confine a filesystem. It supervises the filesystems it spawns and respawns one on death (the reap- and-rebuild the device manager proved, one layer up). - fat: drops acquireVolume(device-manager); hellos the volume manager for its channel; reads its volume id from argv[1]. main takes process.Init now. - init.csv no longer spawns fat (the volume manager does); protocol.csv rewires fat to be supervised by the volume manager (bind vfs, open volume-manager) and drops fat open device-manager. - The block-range fixture boots registry + device-manager only (not the full tree), so the volume manager is absent and the fixture stays the sole confinement definer — otherwise the volume manager would take the controller first and refuse it. Verified end to end (VM probes -> spawns fat -> confines it -> hands over the channel -> fat mounts) and neutral: 18/18 across the fat family, logging, shutdown, both IOMMU variants, usb restart, vfs, conformance, confinement.
178 lines
8.4 KiB
Zig
178 lines
8.4 KiB
Zig
//! system/services/fat — the FAT filesystem service. This is FAT's FAT-specific
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//! half: it finds its block device, sets up the DMA bounce buffer, mounts the
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//! FAT engine on it, and hands the mounted volume to the shared filesystem
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//! harness (library/kernel/file-system-harness), which owns everything else —
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//! the vfs-protocol serving, the open-node table, mount registration, the exit
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//! sweep, durable-on-close. The engine (engine.zig) is the pure, host-testable
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//! format code; on-disk.zig its byte layout. A second filesystem reuses the
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//! harness and supplies its own engine
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//! (docs/file-system-development/storage-architecture.md).
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//!
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//! The block data path never crosses IPC: a DMA bounce buffer is handed to the
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//! block driver by physical address, and the engine copies sectors in and out.
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const std = @import("std");
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const channel = @import("channel");
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const volume_manager_protocol = @import("volume-manager-protocol");
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const ipc = @import("ipc");
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const process = @import("process");
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const block = @import("block");
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const memory = @import("memory");
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const logging = @import("logging");
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const time = @import("time");
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const engine = @import("engine.zig");
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const envelope = @import("envelope");
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const harness = @import("file-system-harness");
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/// The serving harness, specialized for the FAT engine. One volume per process.
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const Harness = harness.Server(engine.FileSystem);
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// The engine's BlockDevice, backed by the `.block` driver plus a DMA bounce
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// buffer the driver reads/writes by physical address.
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const IpcBlock = struct {
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device: block.Device,
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bounce: memory.DmaRegion, // engine.max_transfer_sectors * 512 bytes
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fn readBlocks(context: *anyopaque, lba: u64, count: u32, buffer: []u8) bool {
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const self: *IpcBlock = @ptrCast(@alignCast(context));
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if (count == 0 or count > engine.max_transfer_sectors) return false;
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const len = count * 512;
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if (!self.device.read(lba, count, self.bounce.physical)) return false;
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const source: [*]const u8 = @ptrFromInt(self.bounce.virtual);
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@memcpy(buffer[0..len], source[0..len]);
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return true;
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}
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fn writeBlocks(context: *anyopaque, lba: u64, count: u32, buffer: []const u8) bool {
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const self: *IpcBlock = @ptrCast(@alignCast(context));
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if (count == 0 or count > engine.max_transfer_sectors) return false;
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const len = count * 512;
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const destination: [*]u8 = @ptrFromInt(self.bounce.virtual);
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@memcpy(destination[0..len], buffer[0..len]);
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if (!self.device.write(lba, count, self.bounce.physical)) return false;
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device_dirty = true; // a block reached the device; a close will flush it
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return true;
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}
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};
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var ipc_block: IpcBlock = undefined;
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// Set whenever a block is written, cleared when the device cache is flushed on a
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// file close — so writes are committed to stable media before a power-off.
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var device_dirty: bool = false;
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var filesystem: engine.FileSystem = undefined;
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/// The volume this FAT process serves, its id given as argv[1] by the volume
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/// manager that spawned it. The startup hello names it so the manager returns
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/// the right volume's channel.
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var my_volume_id: u64 = 0;
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/// The prefixes this volume installs: /volumes/usb from the volume root, plus
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/// the two hierarchy subtrees the boot volume carries (rewrite == prefix), so
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/// hierarchy paths (the logger's /system/logs) stay decoupled from which volume
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/// backs them.
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const fat_mounts = [_]harness.MountSpec{
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.{ .prefix = "/volumes/usb" },
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.{ .prefix = "/system/configuration", .rewrite = "/system/configuration" },
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.{ .prefix = "/system/logs", .rewrite = "/system/logs" },
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};
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/// Get this volume's block channel from the volume manager (establishment by
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/// lineage, communication.md "Establishment: two planes" — `block` is not a
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/// registry name). The manager spawned this process, confined it to its
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/// partition, and answers the hello with the channel; the channel is
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/// range-confined to this process's badge, so reads and writes are
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/// volume-relative and cannot reach the neighbouring partition. Null until the
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/// manager has the volume ready — this retries.
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fn acquireVolume() ?block.Device {
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var attempts: u32 = 0;
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const vm = while (attempts < 500) : (attempts += 1) {
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if (channel.openEndpoint("volume-manager")) |handle| break handle;
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time.sleepMillis(20);
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} else return null;
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attempts = 0;
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while (attempts < 500) : (attempts += 1) {
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var packet: [volume_manager_protocol.message_maximum]u8 = undefined;
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const framed = volume_manager_protocol.Protocol.encodeRequest(.hello, my_volume_id, .{}, &.{}, &packet) orelse return null;
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var reply: [volume_manager_protocol.message_maximum]u8 = undefined;
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const answered = ipc.callCap(vm, framed, &reply, null) catch return null;
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const status = envelope.statusOf(reply[0..answered.len]) orelse return null;
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if (status.status != 0) {
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if (answered.cap) |stray| _ = ipc.close(stray);
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_ = logging.write("/system/services/fat: volume manager refused the hello\n");
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return null;
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}
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if (answered.cap) |bus| return .{ .endpoint = bus };
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// Acked with no channel: the volume is not ready yet — retry.
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time.sleepMillis(20);
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}
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return null;
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}
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/// Durable-on-close: commit the device write cache if any block reached it since
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/// the last flush. The harness calls this on every close; the dirty check keeps
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/// it cheap. `device_dirty` lives here because `IpcBlock.writeBlocks` sets it.
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fn flushIfDirty() void {
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if (device_dirty) {
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_ = ipc_block.device.flush();
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device_dirty = false;
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}
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}
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/// FAT bring-up: find the block device, set up DMA, mount the engine, and hand
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/// the volume to the harness — or null to retry on the harness's timer.
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fn fatBringUp(endpoint: ipc.Handle) ?Harness.Volume {
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_ = endpoint;
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const device = acquireVolume() orelse return null;
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const geometry = device.geometry() orelse {
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_ = logging.write("/system/services/fat: block geometry unavailable\n");
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return null;
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};
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// Shareable so the buffer's capability can be attached down the chain (block
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// server -> controller), making its physical addresses reachable by the
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// device under an enforcing IOMMU. No-op binding otherwise.
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const bounce = memory.dmaAlloc(engine.max_transfer_sectors * 512, memory.dma_coherent | memory.dma_shareable) orelse return null;
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if (bounce.handle) |handle| {
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// Attach, detach, and attach again: the round trip exercises BOTH verbs
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// of the DMA-window lifecycle through the whole chain (fat -> storage ->
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// bus -> kernel) on every boot, so a broken detach fails every fat case
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// rather than lying dormant until the first buffer replacement.
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if (!device.attach(handle)) {
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_ = logging.write("/system/services/fat: could not attach the DMA bounce buffer\n");
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return null;
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}
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if (!device.detach(handle)) {
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_ = logging.write("/system/services/fat: could not detach the DMA bounce buffer\n");
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return null;
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}
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if (!device.attach(handle)) {
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_ = logging.write("/system/services/fat: could not re-attach the DMA bounce buffer\n");
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return null;
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}
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_ = ipc.close(handle); // the binding holds its own reference now
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}
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ipc_block = .{ .device = device, .bounce = bounce };
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const block_device = engine.BlockDevice{
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.context = &ipc_block,
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.block_size = geometry.block_size,
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.block_count = geometry.block_count,
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.readBlocksFn = IpcBlock.readBlocks,
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.writeBlocksFn = IpcBlock.writeBlocks,
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};
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filesystem = engine.FileSystem.mount(block_device) orelse {
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_ = logging.write("/system/services/fat: not a FAT filesystem\n");
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return null;
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};
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std.log.info("mounted FAT ({s}, {d} clusters, partition lba {d})", .{ @tagName(filesystem.geometry.fat_type), filesystem.geometry.cluster_count, filesystem.base_lba });
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return .{ .engine = &filesystem, .mounts = &fat_mounts, .flush = flushIfDirty };
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}
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pub fn main(init: process.Init) void {
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// The volume manager spawns this process with its volume id as argv[1].
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if (init.arguments.get(1)) |id| {
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my_volume_id = std.fmt.parseInt(u64, id, 10) catch 0;
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}
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_ = logging.write("/system/services/fat: starting, waiting for a block device\n");
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Harness.run(.{ .bringUp = fatBringUp });
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}
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