mirror of
https://github.com/AuxXxilium/linux_dsm_epyc7002.git
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b24413180f
Many source files in the tree are missing licensing information, which makes it harder for compliance tools to determine the correct license. By default all files without license information are under the default license of the kernel, which is GPL version 2. Update the files which contain no license information with the 'GPL-2.0' SPDX license identifier. The SPDX identifier is a legally binding shorthand, which can be used instead of the full boiler plate text. This patch is based on work done by Thomas Gleixner and Kate Stewart and Philippe Ombredanne. How this work was done: Patches were generated and checked against linux-4.14-rc6 for a subset of the use cases: - file had no licensing information it it. - file was a */uapi/* one with no licensing information in it, - file was a */uapi/* one with existing licensing information, Further patches will be generated in subsequent months to fix up cases where non-standard license headers were used, and references to license had to be inferred by heuristics based on keywords. The analysis to determine which SPDX License Identifier to be applied to a file was done in a spreadsheet of side by side results from of the output of two independent scanners (ScanCode & Windriver) producing SPDX tag:value files created by Philippe Ombredanne. Philippe prepared the base worksheet, and did an initial spot review of a few 1000 files. The 4.13 kernel was the starting point of the analysis with 60,537 files assessed. Kate Stewart did a file by file comparison of the scanner results in the spreadsheet to determine which SPDX license identifier(s) to be applied to the file. She confirmed any determination that was not immediately clear with lawyers working with the Linux Foundation. Criteria used to select files for SPDX license identifier tagging was: - Files considered eligible had to be source code files. - Make and config files were included as candidates if they contained >5 lines of source - File already had some variant of a license header in it (even if <5 lines). All documentation files were explicitly excluded. The following heuristics were used to determine which SPDX license identifiers to apply. - when both scanners couldn't find any license traces, file was considered to have no license information in it, and the top level COPYING file license applied. For non */uapi/* files that summary was: SPDX license identifier # files ---------------------------------------------------|------- GPL-2.0 11139 and resulted in the first patch in this series. If that file was a */uapi/* path one, it was "GPL-2.0 WITH Linux-syscall-note" otherwise it was "GPL-2.0". Results of that was: SPDX license identifier # files ---------------------------------------------------|------- GPL-2.0 WITH Linux-syscall-note 930 and resulted in the second patch in this series. - if a file had some form of licensing information in it, and was one of the */uapi/* ones, it was denoted with the Linux-syscall-note if any GPL family license was found in the file or had no licensing in it (per prior point). Results summary: SPDX license identifier # files ---------------------------------------------------|------ GPL-2.0 WITH Linux-syscall-note 270 GPL-2.0+ WITH Linux-syscall-note 169 ((GPL-2.0 WITH Linux-syscall-note) OR BSD-2-Clause) 21 ((GPL-2.0 WITH Linux-syscall-note) OR BSD-3-Clause) 17 LGPL-2.1+ WITH Linux-syscall-note 15 GPL-1.0+ WITH Linux-syscall-note 14 ((GPL-2.0+ WITH Linux-syscall-note) OR BSD-3-Clause) 5 LGPL-2.0+ WITH Linux-syscall-note 4 LGPL-2.1 WITH Linux-syscall-note 3 ((GPL-2.0 WITH Linux-syscall-note) OR MIT) 3 ((GPL-2.0 WITH Linux-syscall-note) AND MIT) 1 and that resulted in the third patch in this series. - when the two scanners agreed on the detected license(s), that became the concluded license(s). - when there was disagreement between the two scanners (one detected a license but the other didn't, or they both detected different licenses) a manual inspection of the file occurred. - In most cases a manual inspection of the information in the file resulted in a clear resolution of the license that should apply (and which scanner probably needed to revisit its heuristics). - When it was not immediately clear, the license identifier was confirmed with lawyers working with the Linux Foundation. - If there was any question as to the appropriate license identifier, the file was flagged for further research and to be revisited later in time. In total, over 70 hours of logged manual review was done on the spreadsheet to determine the SPDX license identifiers to apply to the source files by Kate, Philippe, Thomas and, in some cases, confirmation by lawyers working with the Linux Foundation. Kate also obtained a third independent scan of the 4.13 code base from FOSSology, and compared selected files where the other two scanners disagreed against that SPDX file, to see if there was new insights. The Windriver scanner is based on an older version of FOSSology in part, so they are related. Thomas did random spot checks in about 500 files from the spreadsheets for the uapi headers and agreed with SPDX license identifier in the files he inspected. For the non-uapi files Thomas did random spot checks in about 15000 files. In initial set of patches against 4.14-rc6, 3 files were found to have copy/paste license identifier errors, and have been fixed to reflect the correct identifier. Additionally Philippe spent 10 hours this week doing a detailed manual inspection and review of the 12,461 patched files from the initial patch version early this week with: - a full scancode scan run, collecting the matched texts, detected license ids and scores - reviewing anything where there was a license detected (about 500+ files) to ensure that the applied SPDX license was correct - reviewing anything where there was no detection but the patch license was not GPL-2.0 WITH Linux-syscall-note to ensure that the applied SPDX license was correct This produced a worksheet with 20 files needing minor correction. This worksheet was then exported into 3 different .csv files for the different types of files to be modified. These .csv files were then reviewed by Greg. Thomas wrote a script to parse the csv files and add the proper SPDX tag to the file, in the format that the file expected. This script was further refined by Greg based on the output to detect more types of files automatically and to distinguish between header and source .c files (which need different comment types.) Finally Greg ran the script using the .csv files to generate the patches. Reviewed-by: Kate Stewart <kstewart@linuxfoundation.org> Reviewed-by: Philippe Ombredanne <pombredanne@nexb.com> Reviewed-by: Thomas Gleixner <tglx@linutronix.de> Signed-off-by: Greg Kroah-Hartman <gregkh@linuxfoundation.org>
425 lines
9.8 KiB
C
425 lines
9.8 KiB
C
// SPDX-License-Identifier: GPL-2.0
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/*
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* PCI Backend - Handles the virtual fields in the configuration space headers.
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*
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* Author: Ryan Wilson <hap9@epoch.ncsc.mil>
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*/
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#define pr_fmt(fmt) KBUILD_MODNAME ": " fmt
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#include <linux/kernel.h>
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#include <linux/pci.h>
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#include "pciback.h"
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#include "conf_space.h"
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struct pci_cmd_info {
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u16 val;
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};
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struct pci_bar_info {
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u32 val;
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u32 len_val;
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int which;
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};
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#define is_enable_cmd(value) ((value)&(PCI_COMMAND_MEMORY|PCI_COMMAND_IO))
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#define is_master_cmd(value) ((value)&PCI_COMMAND_MASTER)
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/* Bits guests are allowed to control in permissive mode. */
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#define PCI_COMMAND_GUEST (PCI_COMMAND_MASTER|PCI_COMMAND_SPECIAL| \
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PCI_COMMAND_INVALIDATE|PCI_COMMAND_VGA_PALETTE| \
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PCI_COMMAND_WAIT|PCI_COMMAND_FAST_BACK)
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static void *command_init(struct pci_dev *dev, int offset)
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{
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struct pci_cmd_info *cmd = kmalloc(sizeof(*cmd), GFP_KERNEL);
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int err;
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if (!cmd)
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return ERR_PTR(-ENOMEM);
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err = pci_read_config_word(dev, PCI_COMMAND, &cmd->val);
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if (err) {
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kfree(cmd);
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return ERR_PTR(err);
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}
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return cmd;
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}
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static int command_read(struct pci_dev *dev, int offset, u16 *value, void *data)
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{
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int ret = pci_read_config_word(dev, offset, value);
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const struct pci_cmd_info *cmd = data;
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*value &= PCI_COMMAND_GUEST;
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*value |= cmd->val & ~PCI_COMMAND_GUEST;
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return ret;
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}
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static int command_write(struct pci_dev *dev, int offset, u16 value, void *data)
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{
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struct xen_pcibk_dev_data *dev_data;
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int err;
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u16 val;
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struct pci_cmd_info *cmd = data;
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dev_data = pci_get_drvdata(dev);
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if (!pci_is_enabled(dev) && is_enable_cmd(value)) {
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if (unlikely(verbose_request))
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printk(KERN_DEBUG DRV_NAME ": %s: enable\n",
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pci_name(dev));
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err = pci_enable_device(dev);
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if (err)
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return err;
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if (dev_data)
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dev_data->enable_intx = 1;
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} else if (pci_is_enabled(dev) && !is_enable_cmd(value)) {
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if (unlikely(verbose_request))
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printk(KERN_DEBUG DRV_NAME ": %s: disable\n",
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pci_name(dev));
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pci_disable_device(dev);
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if (dev_data)
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dev_data->enable_intx = 0;
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}
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if (!dev->is_busmaster && is_master_cmd(value)) {
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if (unlikely(verbose_request))
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printk(KERN_DEBUG DRV_NAME ": %s: set bus master\n",
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pci_name(dev));
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pci_set_master(dev);
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} else if (dev->is_busmaster && !is_master_cmd(value)) {
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if (unlikely(verbose_request))
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printk(KERN_DEBUG DRV_NAME ": %s: clear bus master\n",
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pci_name(dev));
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pci_clear_master(dev);
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}
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if (!(cmd->val & PCI_COMMAND_INVALIDATE) &&
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(value & PCI_COMMAND_INVALIDATE)) {
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if (unlikely(verbose_request))
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printk(KERN_DEBUG
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DRV_NAME ": %s: enable memory-write-invalidate\n",
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pci_name(dev));
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err = pci_set_mwi(dev);
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if (err) {
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pr_warn("%s: cannot enable memory-write-invalidate (%d)\n",
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pci_name(dev), err);
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value &= ~PCI_COMMAND_INVALIDATE;
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}
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} else if ((cmd->val & PCI_COMMAND_INVALIDATE) &&
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!(value & PCI_COMMAND_INVALIDATE)) {
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if (unlikely(verbose_request))
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printk(KERN_DEBUG
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DRV_NAME ": %s: disable memory-write-invalidate\n",
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pci_name(dev));
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pci_clear_mwi(dev);
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}
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cmd->val = value;
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if (!xen_pcibk_permissive && (!dev_data || !dev_data->permissive))
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return 0;
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/* Only allow the guest to control certain bits. */
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err = pci_read_config_word(dev, offset, &val);
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if (err || val == value)
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return err;
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value &= PCI_COMMAND_GUEST;
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value |= val & ~PCI_COMMAND_GUEST;
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return pci_write_config_word(dev, offset, value);
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}
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static int rom_write(struct pci_dev *dev, int offset, u32 value, void *data)
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{
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struct pci_bar_info *bar = data;
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if (unlikely(!bar)) {
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pr_warn(DRV_NAME ": driver data not found for %s\n",
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pci_name(dev));
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return XEN_PCI_ERR_op_failed;
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}
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/* A write to obtain the length must happen as a 32-bit write.
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* This does not (yet) support writing individual bytes
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*/
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if ((value | ~PCI_ROM_ADDRESS_MASK) == ~0U)
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bar->which = 1;
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else {
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u32 tmpval;
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pci_read_config_dword(dev, offset, &tmpval);
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if (tmpval != bar->val && value == bar->val) {
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/* Allow restoration of bar value. */
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pci_write_config_dword(dev, offset, bar->val);
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}
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bar->which = 0;
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}
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/* Do we need to support enabling/disabling the rom address here? */
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return 0;
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}
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/* For the BARs, only allow writes which write ~0 or
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* the correct resource information
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* (Needed for when the driver probes the resource usage)
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*/
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static int bar_write(struct pci_dev *dev, int offset, u32 value, void *data)
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{
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struct pci_bar_info *bar = data;
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unsigned int pos = (offset - PCI_BASE_ADDRESS_0) / 4;
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const struct resource *res = dev->resource;
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u32 mask;
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if (unlikely(!bar)) {
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pr_warn(DRV_NAME ": driver data not found for %s\n",
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pci_name(dev));
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return XEN_PCI_ERR_op_failed;
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}
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/* A write to obtain the length must happen as a 32-bit write.
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* This does not (yet) support writing individual bytes
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*/
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if (res[pos].flags & IORESOURCE_IO)
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mask = ~PCI_BASE_ADDRESS_IO_MASK;
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else if (pos && (res[pos - 1].flags & IORESOURCE_MEM_64))
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mask = 0;
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else
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mask = ~PCI_BASE_ADDRESS_MEM_MASK;
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if ((value | mask) == ~0U)
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bar->which = 1;
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else {
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u32 tmpval;
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pci_read_config_dword(dev, offset, &tmpval);
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if (tmpval != bar->val && value == bar->val) {
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/* Allow restoration of bar value. */
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pci_write_config_dword(dev, offset, bar->val);
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}
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bar->which = 0;
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}
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return 0;
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}
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static int bar_read(struct pci_dev *dev, int offset, u32 * value, void *data)
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{
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struct pci_bar_info *bar = data;
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if (unlikely(!bar)) {
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pr_warn(DRV_NAME ": driver data not found for %s\n",
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pci_name(dev));
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return XEN_PCI_ERR_op_failed;
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}
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*value = bar->which ? bar->len_val : bar->val;
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return 0;
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}
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static void *bar_init(struct pci_dev *dev, int offset)
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{
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unsigned int pos;
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const struct resource *res = dev->resource;
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struct pci_bar_info *bar = kzalloc(sizeof(*bar), GFP_KERNEL);
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if (!bar)
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return ERR_PTR(-ENOMEM);
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if (offset == PCI_ROM_ADDRESS || offset == PCI_ROM_ADDRESS1)
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pos = PCI_ROM_RESOURCE;
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else {
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pos = (offset - PCI_BASE_ADDRESS_0) / 4;
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if (pos && (res[pos - 1].flags & IORESOURCE_MEM_64)) {
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bar->val = res[pos - 1].start >> 32;
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bar->len_val = -resource_size(&res[pos - 1]) >> 32;
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return bar;
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}
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}
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if (!res[pos].flags ||
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(res[pos].flags & (IORESOURCE_DISABLED | IORESOURCE_UNSET |
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IORESOURCE_BUSY)))
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return bar;
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bar->val = res[pos].start |
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(res[pos].flags & PCI_REGION_FLAG_MASK);
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bar->len_val = -resource_size(&res[pos]) |
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(res[pos].flags & PCI_REGION_FLAG_MASK);
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return bar;
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}
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static void bar_reset(struct pci_dev *dev, int offset, void *data)
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{
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struct pci_bar_info *bar = data;
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bar->which = 0;
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}
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static void bar_release(struct pci_dev *dev, int offset, void *data)
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{
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kfree(data);
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}
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static int xen_pcibk_read_vendor(struct pci_dev *dev, int offset,
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u16 *value, void *data)
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{
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*value = dev->vendor;
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return 0;
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}
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static int xen_pcibk_read_device(struct pci_dev *dev, int offset,
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u16 *value, void *data)
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{
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*value = dev->device;
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return 0;
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}
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static int interrupt_read(struct pci_dev *dev, int offset, u8 * value,
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void *data)
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{
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*value = (u8) dev->irq;
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return 0;
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}
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static int bist_write(struct pci_dev *dev, int offset, u8 value, void *data)
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{
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u8 cur_value;
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int err;
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err = pci_read_config_byte(dev, offset, &cur_value);
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if (err)
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goto out;
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if ((cur_value & ~PCI_BIST_START) == (value & ~PCI_BIST_START)
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|| value == PCI_BIST_START)
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err = pci_write_config_byte(dev, offset, value);
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out:
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return err;
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}
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static const struct config_field header_common[] = {
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{
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.offset = PCI_VENDOR_ID,
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.size = 2,
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.u.w.read = xen_pcibk_read_vendor,
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},
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{
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.offset = PCI_DEVICE_ID,
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.size = 2,
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.u.w.read = xen_pcibk_read_device,
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},
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{
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.offset = PCI_COMMAND,
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.size = 2,
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.init = command_init,
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.release = bar_release,
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.u.w.read = command_read,
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.u.w.write = command_write,
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},
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{
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.offset = PCI_INTERRUPT_LINE,
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.size = 1,
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.u.b.read = interrupt_read,
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},
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{
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.offset = PCI_INTERRUPT_PIN,
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.size = 1,
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.u.b.read = xen_pcibk_read_config_byte,
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},
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{
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/* Any side effects of letting driver domain control cache line? */
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.offset = PCI_CACHE_LINE_SIZE,
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.size = 1,
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.u.b.read = xen_pcibk_read_config_byte,
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.u.b.write = xen_pcibk_write_config_byte,
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},
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{
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.offset = PCI_LATENCY_TIMER,
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.size = 1,
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.u.b.read = xen_pcibk_read_config_byte,
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},
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{
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.offset = PCI_BIST,
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.size = 1,
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.u.b.read = xen_pcibk_read_config_byte,
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.u.b.write = bist_write,
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},
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{}
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};
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#define CFG_FIELD_BAR(reg_offset) \
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{ \
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.offset = reg_offset, \
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.size = 4, \
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.init = bar_init, \
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.reset = bar_reset, \
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.release = bar_release, \
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.u.dw.read = bar_read, \
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.u.dw.write = bar_write, \
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}
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#define CFG_FIELD_ROM(reg_offset) \
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{ \
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.offset = reg_offset, \
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.size = 4, \
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.init = bar_init, \
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.reset = bar_reset, \
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.release = bar_release, \
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.u.dw.read = bar_read, \
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.u.dw.write = rom_write, \
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}
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static const struct config_field header_0[] = {
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CFG_FIELD_BAR(PCI_BASE_ADDRESS_0),
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CFG_FIELD_BAR(PCI_BASE_ADDRESS_1),
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CFG_FIELD_BAR(PCI_BASE_ADDRESS_2),
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CFG_FIELD_BAR(PCI_BASE_ADDRESS_3),
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CFG_FIELD_BAR(PCI_BASE_ADDRESS_4),
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CFG_FIELD_BAR(PCI_BASE_ADDRESS_5),
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CFG_FIELD_ROM(PCI_ROM_ADDRESS),
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{}
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};
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static const struct config_field header_1[] = {
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CFG_FIELD_BAR(PCI_BASE_ADDRESS_0),
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CFG_FIELD_BAR(PCI_BASE_ADDRESS_1),
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CFG_FIELD_ROM(PCI_ROM_ADDRESS1),
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{}
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};
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int xen_pcibk_config_header_add_fields(struct pci_dev *dev)
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{
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int err;
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err = xen_pcibk_config_add_fields(dev, header_common);
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if (err)
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goto out;
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switch (dev->hdr_type) {
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case PCI_HEADER_TYPE_NORMAL:
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err = xen_pcibk_config_add_fields(dev, header_0);
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break;
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case PCI_HEADER_TYPE_BRIDGE:
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err = xen_pcibk_config_add_fields(dev, header_1);
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break;
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default:
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err = -EINVAL;
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pr_err("%s: Unsupported header type %d!\n",
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pci_name(dev), dev->hdr_type);
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break;
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}
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out:
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return err;
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}
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