1 // SPDX-License-Identifier: GPL-2.0 2 3 mod boot; 4 mod hal; 5 6 use kernel::{ 7 debugfs, 8 device, 9 dma::{ 10 Coherent, 11 CoherentBox, 12 CoherentView, 13 DmaAddress, // 14 }, 15 io::{ 16 io_project, 17 io_write, 18 Io, // 19 }, 20 pci, 21 prelude::*, // 22 }; 23 24 pub(crate) mod cmdq; 25 pub(crate) mod commands; 26 mod fw; 27 mod regs; 28 mod sequencer; 29 30 pub(crate) use fw::{ 31 GspFmcBootParams, 32 GspFwWprMeta, 33 LibosMemoryRegionInitArgument, 34 LibosParams, // 35 }; 36 pub(crate) use hal::boot_firmware_files; 37 38 use crate::{ 39 driver::Bar0, 40 falcon::{ 41 gsp::Gsp as GspFalcon, 42 sec2::Sec2 as Sec2Falcon, 43 Falcon, // 44 }, 45 fsp::Fsp, 46 gpu::Chipset, 47 gsp::{ 48 cmdq::Cmdq, 49 fw::GspArgumentsPadded, // 50 }, 51 num, 52 }; 53 54 pub(crate) const GSP_PAGE_SHIFT: usize = 12; 55 pub(crate) const GSP_PAGE_SIZE: usize = 1 << GSP_PAGE_SHIFT; 56 57 /// Common context for the GSP boot process. 58 /// 59 /// It carries two distinct lifetimes: 60 /// 61 /// - `'gpu` is the lifetime of the bound GPU device, as captured by the GPU subdevices. 62 /// - `'ctx` is a shorter lifetime during which this context borrows those subdevices. 63 pub(crate) struct GspBootContext<'ctx, 'gpu> { 64 pub(crate) pdev: &'gpu pci::Device<device::Bound>, 65 pub(crate) bar: Bar0<'gpu>, 66 pub(crate) chipset: Chipset, 67 pub(crate) gsp_falcon: &'ctx Falcon<'gpu, GspFalcon>, 68 pub(crate) sec2_falcon: &'ctx Falcon<'gpu, Sec2Falcon>, 69 pub(crate) fsp: Option<&'ctx mut Fsp<'gpu>>, 70 } 71 72 impl<'ctx, 'gpu> GspBootContext<'ctx, 'gpu> { 73 pub(crate) fn dev(&self) -> &'gpu device::Device<device::Bound> { 74 self.pdev.as_ref() 75 } 76 } 77 78 /// Number of GSP pages to use in a RM log buffer. 79 const RM_LOG_BUFFER_NUM_PAGES: usize = 0x10; 80 const LOG_BUFFER_SIZE: usize = RM_LOG_BUFFER_NUM_PAGES * GSP_PAGE_SIZE; 81 82 /// Array of page table entries, as understood by the GSP bootloader. 83 #[repr(C)] 84 #[derive(FromBytes, IntoBytes)] 85 struct PteArray<const NUM_ENTRIES: usize>([u64; NUM_ENTRIES]); 86 87 impl<const NUM_PAGES: usize> PteArray<NUM_PAGES> { 88 /// Initialize a new page table array mapping `NUM_PAGES` GSP pages starting at address `start`. 89 fn init(view: CoherentView<'_, Self>, start: DmaAddress) -> Result<()> { 90 for i in 0..NUM_PAGES { 91 io_write!(view, .0[build: i], 92 start 93 .checked_add(num::usize_as_u64(i) << GSP_PAGE_SHIFT) 94 .ok_or(EOVERFLOW)? 95 ); 96 } 97 98 Ok(()) 99 } 100 } 101 102 /// The logging buffers are byte queues that contain encoded printf-like 103 /// messages from GSP-RM. They need to be decoded by a special application 104 /// that can parse the buffers. 105 /// 106 /// The 'loginit' buffer contains logs from early GSP-RM init and 107 /// exception dumps. The 'logrm' buffer contains the subsequent logs. Both are 108 /// written to directly by GSP-RM and can be any multiple of GSP_PAGE_SIZE. 109 /// 110 /// The physical address map for the log buffer is stored in the buffer 111 /// itself, starting with offset 1. Offset 0 contains the "put" pointer (pp). 112 /// Initially, pp is equal to 0. If the buffer has valid logging data in it, 113 /// then pp points to index into the buffer where the next logging entry will 114 /// be written. Therefore, the logging data is valid if: 115 /// 1 <= pp < sizeof(buffer)/sizeof(u64) 116 struct LogBuffer(Coherent<[u8; LOG_BUFFER_SIZE]>); 117 118 impl LogBuffer { 119 /// Creates a new `LogBuffer` mapped on `dev`. 120 fn new(dev: &device::Device<device::Bound>) -> Result<Self> { 121 let obj = Self(Coherent::zeroed(dev, GFP_KERNEL)?); 122 123 let start_addr = obj.0.dma_handle(); 124 125 let pte_view = io_project!( 126 obj.0, 127 [build: size_of::<u64>()..][build: ..RM_LOG_BUFFER_NUM_PAGES * size_of::<u64>()] 128 ) 129 .try_cast::<PteArray<RM_LOG_BUFFER_NUM_PAGES>>()?; 130 PteArray::init(pte_view, start_addr)?; 131 132 Ok(obj) 133 } 134 } 135 136 struct LogBuffers { 137 /// Init log buffer. 138 loginit: LogBuffer, 139 /// Interrupts log buffer. 140 logintr: LogBuffer, 141 /// RM log buffer. 142 logrm: LogBuffer, 143 } 144 145 /// GSP runtime data. 146 #[pin_data] 147 pub(crate) struct Gsp { 148 /// Libos arguments. 149 pub(crate) libos: Coherent<[LibosMemoryRegionInitArgument]>, 150 /// Log buffers, optionally exposed via debugfs. 151 #[pin] 152 logs: debugfs::Scope<LogBuffers>, 153 /// Command queue. 154 #[pin] 155 pub(crate) cmdq: Cmdq, 156 /// RM arguments. 157 rmargs: Coherent<GspArgumentsPadded>, 158 } 159 160 impl Gsp { 161 // Creates an in-place initializer for a `Gsp` manager for `pdev`. 162 pub(crate) fn new(pdev: &pci::Device<device::Bound>) -> impl PinInit<Self, Error> + '_ { 163 pin_init::pin_init_scope(move || { 164 let dev = pdev.as_ref(); 165 166 let loginit = LogBuffer::new(dev)?; 167 let logintr = LogBuffer::new(dev)?; 168 let logrm = LogBuffer::new(dev)?; 169 170 // Initialise the logging structures. The OpenRM equivalents are in: 171 // _kgspInitLibosLoggingStructures (allocates memory for buffers) 172 // kgspSetupLibosInitArgs_IMPL (creates pLibosInitArgs[] array) 173 Ok(try_pin_init!(Self { 174 cmdq <- Cmdq::new(dev), 175 rmargs: Coherent::init(dev, GFP_KERNEL, GspArgumentsPadded::new(&cmdq))?, 176 libos: { 177 let mut libos = CoherentBox::zeroed_slice( 178 dev, 179 GSP_PAGE_SIZE / size_of::<LibosMemoryRegionInitArgument>(), 180 GFP_KERNEL, 181 )?; 182 183 libos.init_at(0, LibosMemoryRegionInitArgument::new("LOGINIT", &loginit.0))?; 184 libos.init_at(1, LibosMemoryRegionInitArgument::new("LOGINTR", &logintr.0))?; 185 libos.init_at(2, LibosMemoryRegionInitArgument::new("LOGRM", &logrm.0))?; 186 libos.init_at(3, LibosMemoryRegionInitArgument::new("RMARGS", rmargs))?; 187 188 libos.into() 189 }, 190 logs <- { 191 let log_buffers = LogBuffers { 192 loginit, 193 logintr, 194 logrm, 195 }; 196 197 #[allow(static_mut_refs)] 198 // SAFETY: `DEBUGFS_ROOT` is created before driver registration and cleared 199 // after driver unregistration, so no probe() can race with its modification. 200 // 201 // PANIC: `DEBUGFS_ROOT` cannot be `None` here. It is set before driver 202 // registration and cleared after driver unregistration, so it is always 203 // `Some` for the entire lifetime that probe() can be called. 204 let log_parent: &debugfs::Dir = unsafe { crate::DEBUGFS_ROOT.as_ref() } 205 .expect("DEBUGFS_ROOT not initialized"); 206 207 log_parent.scope(log_buffers, dev.name(), |logs, dir| { 208 dir.read_binary_file(c"loginit", &logs.loginit.0); 209 dir.read_binary_file(c"logintr", &logs.logintr.0); 210 dir.read_binary_file(c"logrm", &logs.logrm.0); 211 }) 212 }, 213 })) 214 }) 215 } 216 217 /// Query the GSP for the static GPU information. 218 pub(crate) fn get_static_info(&self, bar: Bar0<'_>) -> Result<commands::GetGspStaticInfoReply> { 219 self.cmdq.send_command(bar, commands::GetGspStaticInfo) 220 } 221 } 222 223 /// Opaque bundle required to unload the GSP. Created by [`Gsp::boot`], consumed by [`Gsp::unload`]. 224 pub(crate) struct UnloadBundle(KBox<dyn hal::UnloadBundle>); 225