blob: b447a9461c0d5c1875cd3bf2f1c711a4abf5b067 [file] [log] [blame]
/*
* This file is part of the flashprog project.
*
* Copyright (C) 2024 Nico Huber <nico.h@gmx.de>
*
* This program is free software; you can redistribute it and/or modify
* it under the terms of the GNU General Public License as published by
* the Free Software Foundation; either version 2 of the License, or
* (at your option) any later version.
*
* This program is distributed in the hope that it will be useful,
* but WITHOUT ANY WARRANTY; without even the implied warranty of
* MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
* GNU General Public License for more details.
*/
#include <stdint.h>
#include <stdlib.h>
#include <flash.h>
#include <hwaccess_x86_io.h>
#include <hwaccess_physmap.h>
#include <platform/pci.h>
#include <programmer.h>
#define PCI_VENDOR_ID_AMD 0x1022
static const struct dev_entry nics_amd[] = {
{PCI_VENDOR_ID_AMD, 0x2000, OK, "AMD", "79C97x [PCnet32 LANCE]"},
{0},
};
static uint8_t readb(const struct par_master *, chipaddr);
static void writeb(const struct par_master *, uint8_t val, chipaddr);
static int shutdown(void *);
static const struct par_master par_master = {
.chip_readb = readb,
.chip_readw = fallback_chip_readw,
.chip_readl = fallback_chip_readl,
.chip_readn = fallback_chip_readn,
.chip_writeb = writeb,
.chip_writew = fallback_chip_writew,
.chip_writel = fallback_chip_writel,
.chip_writen = fallback_chip_writen,
.shutdown = shutdown,
};
#define ROM_BAR_SIZE (1*MiB)
/* ----- i/o space ----- */
#define ANY_IO_RDP 0x10 /* Register Data Port */
#define WORD_IO_RAP 0x12
#define WORD_IO_RESET 0x14
#define WORD_IO_BDP 0x16
#define DWORD_IO_RAP 0x14 /* Register Address Port */
#define DWORD_IO_RESET 0x18
#define DWORD_IO_BDP 0x1c /* BCR (Bus Configuration Register) Data Port */
/* ----- BCR space ----- */
#define EXP_BUS_ADDR_LOWER 28
#define EXP_BUS_ADDR_UPPER 29
#define EBADDRU_FLASH (1 << 15)
#define EXP_BUS_DATA_PORT 30
/* all BCR registers are 16-bit wide */
static uint16_t bcr_read16(unsigned int io_base, unsigned int reg)
{
OUTL(reg, io_base + DWORD_IO_RAP);
return INL(io_base + DWORD_IO_BDP);
}
static void bcr_write16(unsigned int io_base, unsigned int reg, uint16_t val)
{
OUTL(reg, io_base + DWORD_IO_RAP);
OUTL(val, io_base + DWORD_IO_BDP);
}
static int init(struct flashprog_programmer *const prog)
{
size_t max_decode = 0;
char *const decode_override = extract_programmer_param("max_decode_kb");
if (decode_override) {
char *endptr;
max_decode = strtoul(decode_override, &endptr, 10);
if (*endptr || max_decode < 16 || max_decode > 1024 || (max_decode & (max_decode - 1))) {
msg_perr("Error: Invalid ROM decode override: \"%s\".\n"
"Valid values are powers of 2 from 16 through 1024 (KiB).\n",
decode_override);
free(decode_override);
return 1;
}
max_decode *= KiB;
}
free(decode_override);
if (rget_io_perms())
return 1;
struct pci_dev *const dev = pcidev_init(nics_amd, PCI_BASE_ADDRESS_0);
if (!dev)
return 1;
uintptr_t io_base = pcidev_readbar(dev, PCI_BASE_ADDRESS_0);
if (!io_base)
return 1;
if (!max_decode) {
msg_pinfo("Trying to guess addressable size based on read contents and patterns. If this\n"
"doesn't work, you can override probing with `-p nicamd:max_decode_kb=<size>`.\n");
const uint16_t command = pci_read_word(dev, PCI_COMMAND);
if (!(command & PCI_COMMAND_MEMORY)) {
msg_perr("Error: PCI memory access is disabled.\n");
return 1;
}
const uint32_t rom_base = pci_read_long(dev, PCI_ROM_ADDRESS);
if (!rom_base) {
msg_perr("Error: PCI ROM base is not configured.\n");
return 1;
}
void *physmap(const char *descr, uintptr_t phys_addr, size_t len);
void *const rom = physmap("ROM BAR", rom_base & ~1u, ROM_BAR_SIZE);
if (rom == ERROR_PTR)
return 1;
if (!(rom_base & 1u))
pci_write_long(dev, PCI_ROM_ADDRESS, rom_base | 1);
max_decode = estimate_addressable_size(rom, ROM_BAR_SIZE);
if (!(rom_base & 1u))
pci_write_long(dev, PCI_ROM_ADDRESS, rom_base);
physunmap(rom, ROM_BAR_SIZE);
if (!max_decode) {
max_decode = 256*KiB;
msg_pwarn("Estimating addressable size failed. Using default of %zuKiB.\n",
max_decode / KiB);
}
}
/*
* Now comes the fun part: This controller knows two i/o modes,
* word and dword. Writing with the wrong width is illegal, and
* it's impossible to tell the current mode without writing.
*
* The datasheet was reasoned with and we concluded:
* * A soft reset can be performed with read requests only.
* * Trying a dword-i/o reset in word i/o mode is only a read
* from a reserved register and shouldn't hurt.
* * Trying a word-i/o reset in dword i/o mode is only a read
* with the wrong length.
* * After reset we still don't know the mode (it is decided
* by EEPROM bits), though we can switch to dword i/o mode,
* blindly.
*/
INW(io_base + WORD_IO_RESET);
INL(io_base + DWORD_IO_RESET);
OUTL(0, io_base + ANY_IO_RDP); /* supposed to enable dword i/o mode */
OUTL(18, io_base + DWORD_IO_RAP);
msg_pdbg2("BBCR: 0x%04x\n", INL(io_base + DWORD_IO_BDP) & 0xffff);
OUTL(0x98e1, io_base + DWORD_IO_BDP);
msg_pdbg2("BCR25: 0x%04x\n", bcr_read16(io_base, 25));
bcr_write16(io_base, 25, 0);
return register_par_master(&par_master, BUS_PARALLEL, 0, max_decode, (void *)io_base);
}
static uint8_t readb(const struct par_master *par, chipaddr addr)
{
uintptr_t io_base = (uintptr_t)par->data;
bcr_write16(io_base, EXP_BUS_ADDR_UPPER, EBADDRU_FLASH | addr >> 16);
bcr_write16(io_base, EXP_BUS_ADDR_LOWER, addr);
return bcr_read16(io_base, EXP_BUS_DATA_PORT);
}
static void writeb(const struct par_master *par, uint8_t val, chipaddr addr)
{
uintptr_t io_base = (uintptr_t)par->data;
bcr_write16(io_base, EXP_BUS_ADDR_UPPER, EBADDRU_FLASH | addr >> 16);
bcr_write16(io_base, EXP_BUS_ADDR_LOWER, addr);
bcr_write16(io_base, EXP_BUS_DATA_PORT, val);
}
static int shutdown(void *data)
{
uintptr_t io_base = (uintptr_t)data;
/* Reset just in case. */
INL(io_base + DWORD_IO_RESET);
return 0;
}
const struct programmer_entry programmer_nicamd = {
.name = "nicamd",
.type = PCI,
.devs.dev = nics_amd,
.init = init,
};