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https://github.com/clearlinux/kvmtool.git
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bca12bf637
PCI controller is what deals with PCI devices, and it depends on vcpus being there, so it should be in the dev_base group. Signed-off-by: Sasha Levin <sasha.levin@oracle.com> Signed-off-by: Pekka Enberg <penberg@kernel.org>
216 lines
4.8 KiB
C
216 lines
4.8 KiB
C
#include "kvm/pci.h"
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#include "kvm/ioport.h"
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#include "kvm/util.h"
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#include "kvm/kvm.h"
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#include <linux/err.h>
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#include <assert.h>
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#define PCI_BAR_OFFSET(b) (offsetof(struct pci_device_header, bar[b]))
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static struct pci_device_header *pci_devices[PCI_MAX_DEVICES];
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static union pci_config_address pci_config_address;
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/* This is within our PCI gap - in an unused area.
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* Note this is a PCI *bus address*, is used to assign BARs etc.!
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* (That's why it can still 32bit even with 64bit guests-- 64bit
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* PCI isn't currently supported.)
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*/
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static u32 io_space_blocks = KVM_PCI_MMIO_AREA;
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u32 pci_get_io_space_block(u32 size)
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{
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u32 block = io_space_blocks;
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io_space_blocks += size;
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return block;
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}
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static void *pci_config_address_ptr(u16 port)
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{
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unsigned long offset;
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void *base;
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offset = port - PCI_CONFIG_ADDRESS;
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base = &pci_config_address;
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return base + offset;
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}
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static bool pci_config_address_out(struct ioport *ioport, struct kvm *kvm, u16 port, void *data, int size)
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{
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void *p = pci_config_address_ptr(port);
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memcpy(p, data, size);
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return true;
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}
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static bool pci_config_address_in(struct ioport *ioport, struct kvm *kvm, u16 port, void *data, int size)
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{
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void *p = pci_config_address_ptr(port);
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memcpy(data, p, size);
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return true;
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}
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static struct ioport_operations pci_config_address_ops = {
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.io_in = pci_config_address_in,
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.io_out = pci_config_address_out,
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};
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static bool pci_device_exists(u8 bus_number, u8 device_number, u8 function_number)
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{
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struct pci_device_header *dev;
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if (pci_config_address.bus_number != bus_number)
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return false;
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if (pci_config_address.function_number != function_number)
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return false;
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if (device_number >= PCI_MAX_DEVICES)
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return false;
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dev = pci_devices[device_number];
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return dev != NULL;
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}
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static bool pci_config_data_out(struct ioport *ioport, struct kvm *kvm, u16 port, void *data, int size)
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{
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/*
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* If someone accesses PCI configuration space offsets that are not
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* aligned to 4 bytes, it uses ioports to signify that.
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*/
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pci_config_address.reg_offset = port - PCI_CONFIG_DATA;
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pci__config_wr(kvm, pci_config_address, data, size);
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return true;
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}
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static bool pci_config_data_in(struct ioport *ioport, struct kvm *kvm, u16 port, void *data, int size)
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{
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/*
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* If someone accesses PCI configuration space offsets that are not
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* aligned to 4 bytes, it uses ioports to signify that.
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*/
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pci_config_address.reg_offset = port - PCI_CONFIG_DATA;
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pci__config_rd(kvm, pci_config_address, data, size);
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return true;
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}
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static struct ioport_operations pci_config_data_ops = {
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.io_in = pci_config_data_in,
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.io_out = pci_config_data_out,
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};
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void pci__config_wr(struct kvm *kvm, union pci_config_address addr, void *data, int size)
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{
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u8 dev_num;
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dev_num = addr.device_number;
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if (pci_device_exists(0, dev_num, 0)) {
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unsigned long offset;
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offset = addr.w & 0xff;
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if (offset < sizeof(struct pci_device_header)) {
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void *p = pci_devices[dev_num];
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u8 bar = (offset - PCI_BAR_OFFSET(0)) / (sizeof(u32));
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u32 sz = PCI_IO_SIZE;
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if (bar < 6 && pci_devices[dev_num]->bar_size[bar])
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sz = pci_devices[dev_num]->bar_size[bar];
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/*
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* If the kernel masks the BAR it would expect to find the
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* size of the BAR there next time it reads from it.
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* When the kernel got the size it would write the address
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* back.
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*/
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if (*(u32 *)(p + offset)) {
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/* See if kernel tries to mask one of the BARs */
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if ((offset >= PCI_BAR_OFFSET(0)) &&
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(offset <= PCI_BAR_OFFSET(6)) &&
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(ioport__read32(data) == 0xFFFFFFFF))
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memcpy(p + offset, &sz, sizeof(sz));
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else
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memcpy(p + offset, data, size);
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}
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}
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}
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}
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void pci__config_rd(struct kvm *kvm, union pci_config_address addr, void *data, int size)
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{
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u8 dev_num;
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dev_num = addr.device_number;
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if (pci_device_exists(0, dev_num, 0)) {
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unsigned long offset;
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offset = addr.w & 0xff;
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if (offset < sizeof(struct pci_device_header)) {
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void *p = pci_devices[dev_num];
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memcpy(data, p + offset, size);
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} else {
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memset(data, 0x00, size);
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}
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} else {
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memset(data, 0xff, size);
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}
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}
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int pci__register(struct pci_device_header *dev, u8 dev_num)
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{
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if (dev_num >= PCI_MAX_DEVICES)
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return -ENOSPC;
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pci_devices[dev_num] = dev;
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return 0;
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}
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struct pci_device_header *pci__find_dev(u8 dev_num)
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{
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if (dev_num >= PCI_MAX_DEVICES)
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return ERR_PTR(-EOVERFLOW);
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return pci_devices[dev_num];
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}
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int pci__init(struct kvm *kvm)
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{
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int r;
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r = ioport__register(kvm, PCI_CONFIG_DATA + 0, &pci_config_data_ops, 4, NULL);
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if (r < 0)
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return r;
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r = ioport__register(kvm, PCI_CONFIG_ADDRESS + 0, &pci_config_address_ops, 4, NULL);
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if (r < 0) {
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ioport__unregister(kvm, PCI_CONFIG_DATA);
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return r;
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}
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return 0;
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}
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dev_base_init(pci__init);
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int pci__exit(struct kvm *kvm)
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{
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ioport__unregister(kvm, PCI_CONFIG_DATA);
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ioport__unregister(kvm, PCI_CONFIG_ADDRESS);
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return 0;
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}
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dev_base_exit(pci__exit);
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