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authorLibravatar Linus Torvalds <torvalds@linux-foundation.org>2023-02-21 18:24:12 -0800
committerLibravatar Linus Torvalds <torvalds@linux-foundation.org>2023-02-21 18:24:12 -0800
commit5b7c4cabbb65f5c469464da6c5f614cbd7f730f2 (patch)
treecc5c2d0a898769fd59549594fedb3ee6f84e59a0 /drivers/peci/request.c
downloadlinux-5b7c4cabbb65f5c469464da6c5f614cbd7f730f2.tar.gz
linux-5b7c4cabbb65f5c469464da6c5f614cbd7f730f2.zip
Merge tag 'net-next-6.3' of git://git.kernel.org/pub/scm/linux/kernel/git/netdev/net-nextgrafted
Pull networking updates from Jakub Kicinski: "Core: - Add dedicated kmem_cache for typical/small skb->head, avoid having to access struct page at kfree time, and improve memory use. - Introduce sysctl to set default RPS configuration for new netdevs. - Define Netlink protocol specification format which can be used to describe messages used by each family and auto-generate parsers. Add tools for generating kernel data structures and uAPI headers. - Expose all net/core sysctls inside netns. - Remove 4s sleep in netpoll if carrier is instantly detected on boot. - Add configurable limit of MDB entries per port, and port-vlan. - Continue populating drop reasons throughout the stack. - Retire a handful of legacy Qdiscs and classifiers. Protocols: - Support IPv4 big TCP (TSO frames larger than 64kB). - Add IP_LOCAL_PORT_RANGE socket option, to control local port range on socket by socket basis. - Track and report in procfs number of MPTCP sockets used. - Support mixing IPv4 and IPv6 flows in the in-kernel MPTCP path manager. - IPv6: don't check net.ipv6.route.max_size and rely on garbage collection to free memory (similarly to IPv4). - Support Penultimate Segment Pop (PSP) flavor in SRv6 (RFC8986). - ICMP: add per-rate limit counters. - Add support for user scanning requests in ieee802154. - Remove static WEP support. - Support minimal Wi-Fi 7 Extremely High Throughput (EHT) rate reporting. - WiFi 7 EHT channel puncturing support (client & AP). BPF: - Add a rbtree data structure following the "next-gen data structure" precedent set by recently added linked list, that is, by using kfunc + kptr instead of adding a new BPF map type. - Expose XDP hints via kfuncs with initial support for RX hash and timestamp metadata. - Add BPF_F_NO_TUNNEL_KEY extension to bpf_skb_set_tunnel_key to better support decap on GRE tunnel devices not operating in collect metadata. - Improve x86 JIT's codegen for PROBE_MEM runtime error checks. - Remove the need for trace_printk_lock for bpf_trace_printk and bpf_trace_vprintk helpers. - Extend libbpf's bpf_tracing.h support for tracing arguments of kprobes/uprobes and syscall as a special case. - Significantly reduce the search time for module symbols by livepatch and BPF. - Enable cpumasks to be used as kptrs, which is useful for tracing programs tracking which tasks end up running on which CPUs in different time intervals. - Add support for BPF trampoline on s390x and riscv64. - Add capability to export the XDP features supported by the NIC. - Add __bpf_kfunc tag for marking kernel functions as kfuncs. - Add cgroup.memory=nobpf kernel parameter option to disable BPF memory accounting for container environments. Netfilter: - Remove the CLUSTERIP target. It has been marked as obsolete for years, and we still have WARN splats wrt races of the out-of-band /proc interface installed by this target. - Add 'destroy' commands to nf_tables. They are identical to the existing 'delete' commands, but do not return an error if the referenced object (set, chain, rule...) did not exist. Driver API: - Improve cpumask_local_spread() locality to help NICs set the right IRQ affinity on AMD platforms. - Separate C22 and C45 MDIO bus transactions more clearly. - Introduce new DCB table to control DSCP rewrite on egress. - Support configuration of Physical Layer Collision Avoidance (PLCA) Reconciliation Sublayer (RS) (802.3cg-2019). Modern version of shared medium Ethernet. - Support for MAC Merge layer (IEEE 802.3-2018 clause 99). Allowing preemption of low priority frames by high priority frames. - Add support for controlling MACSec offload using netlink SET. - Rework devlink instance refcounts to allow registration and de-registration under the instance lock. Split the code into multiple files, drop some of the unnecessarily granular locks and factor out common parts of netlink operation handling. - Add TX frame aggregation parameters (for USB drivers). - Add a new attr TCA_EXT_WARN_MSG to report TC (offload) warning messages with notifications for debug. - Allow offloading of UDP NEW connections via act_ct. - Add support for per action HW stats in TC. - Support hardware miss to TC action (continue processing in SW from a specific point in the action chain). - Warn if old Wireless Extension user space interface is used with modern cfg80211/mac80211 drivers. Do not support Wireless Extensions for Wi-Fi 7 devices at all. Everyone should switch to using nl80211 interface instead. - Improve the CAN bit timing configuration. Use extack to return error messages directly to user space, update the SJW handling, including the definition of a new default value that will benefit CAN-FD controllers, by increasing their oscillator tolerance. New hardware / drivers: - Ethernet: - nVidia BlueField-3 support (control traffic driver) - Ethernet support for imx93 SoCs - Motorcomm yt8531 gigabit Ethernet PHY - onsemi NCN26000 10BASE-T1S PHY (with support for PLCA) - Microchip LAN8841 PHY (incl. cable diagnostics and PTP) - Amlogic gxl MDIO mux - WiFi: - RealTek RTL8188EU (rtl8xxxu) - Qualcomm Wi-Fi 7 devices (ath12k) - CAN: - Renesas R-Car V4H Drivers: - Bluetooth: - Set Per Platform Antenna Gain (PPAG) for Intel controllers. - Ethernet NICs: - Intel (1G, igc): - support TSN / Qbv / packet scheduling features of i226 model - Intel (100G, ice): - use GNSS subsystem instead of TTY - multi-buffer XDP support - extend support for GPIO pins to E823 devices - nVidia/Mellanox: - update the shared buffer configuration on PFC commands - implement PTP adjphase function for HW offset control - TC support for Geneve and GRE with VF tunnel offload - more efficient crypto key management method - multi-port eswitch support - Netronome/Corigine: - add DCB IEEE support - support IPsec offloading for NFP3800 - Freescale/NXP (enetc): - support XDP_REDIRECT for XDP non-linear buffers - improve reconfig, avoid link flap and waiting for idle - support MAC Merge layer - Other NICs: - sfc/ef100: add basic devlink support for ef100 - ionic: rx_push mode operation (writing descriptors via MMIO) - bnxt: use the auxiliary bus abstraction for RDMA - r8169: disable ASPM and reset bus in case of tx timeout - cpsw: support QSGMII mode for J721e CPSW9G - cpts: support pulse-per-second output - ngbe: add an mdio bus driver - usbnet: optimize usbnet_bh() by avoiding unnecessary queuing - r8152: handle devices with FW with NCM support - amd-xgbe: support 10Mbps, 2.5GbE speeds and rx-adaptation - virtio-net: support multi buffer XDP - virtio/vsock: replace virtio_vsock_pkt with sk_buff - tsnep: XDP support - Ethernet high-speed switches: - nVidia/Mellanox (mlxsw): - add support for latency TLV (in FW control messages) - Microchip (sparx5): - separate explicit and implicit traffic forwarding rules, make the implicit rules always active - add support for egress DSCP rewrite - IS0 VCAP support (Ingress Classification) - IS2 VCAP filters (protos, L3 addrs, L4 ports, flags, ToS etc.) - ES2 VCAP support (Egress Access Control) - support for Per-Stream Filtering and Policing (802.1Q, 8.6.5.1) - Ethernet embedded switches: - Marvell (mv88e6xxx): - add MAB (port auth) offload support - enable PTP receive for mv88e6390 - NXP (ocelot): - support MAC Merge layer - support for the the vsc7512 internal copper phys - Microchip: - lan9303: convert to PHYLINK - lan966x: support TC flower filter statistics - lan937x: PTP support for KSZ9563/KSZ8563 and LAN937x - lan937x: support Credit Based Shaper configuration - ksz9477: support Energy Efficient Ethernet - other: - qca8k: convert to regmap read/write API, use bulk operations - rswitch: Improve TX timestamp accuracy - Intel WiFi (iwlwifi): - EHT (Wi-Fi 7) rate reporting - STEP equalizer support: transfer some STEP (connection to radio on platforms with integrated wifi) related parameters from the BIOS to the firmware. - Qualcomm 802.11ax WiFi (ath11k): - IPQ5018 support - Fine Timing Measurement (FTM) responder role support - channel 177 support - MediaTek WiFi (mt76): - per-PHY LED support - mt7996: EHT (Wi-Fi 7) support - Wireless Ethernet Dispatch (WED) reset support - switch to using page pool allocator - RealTek WiFi (rtw89): - support new version of Bluetooth co-existance - Mobile: - rmnet: support TX aggregation" * tag 'net-next-6.3' of git://git.kernel.org/pub/scm/linux/kernel/git/netdev/net-next: (1872 commits) page_pool: add a comment explaining the fragment counter usage net: ethtool: fix __ethtool_dev_mm_supported() implementation ethtool: pse-pd: Fix double word in comments xsk: add linux/vmalloc.h to xsk.c sefltests: netdevsim: wait for devlink instance after netns removal selftest: fib_tests: Always cleanup before exit net/mlx5e: Align IPsec ASO result memory to be as required by hardware net/mlx5e: TC, Set CT miss to the specific ct action instance net/mlx5e: Rename CHAIN_TO_REG to MAPPED_OBJ_TO_REG net/mlx5: Refactor tc miss handling to a single function net/mlx5: Kconfig: Make tc offload depend on tc skb extension net/sched: flower: Support hardware miss to tc action net/sched: flower: Move filter handle initialization earlier net/sched: cls_api: Support hardware miss to tc action net/sched: Rename user cookie and act cookie sfc: fix builds without CONFIG_RTC_LIB sfc: clean up some inconsistent indentings net/mlx4_en: Introduce flexible array to silence overflow warning net: lan966x: Fix possible deadlock inside PTP net/ulp: Remove redundant ->clone() test in inet_clone_ulp(). ...
Diffstat (limited to 'drivers/peci/request.c')
-rw-r--r--drivers/peci/request.c482
1 files changed, 482 insertions, 0 deletions
diff --git a/drivers/peci/request.c b/drivers/peci/request.c
new file mode 100644
index 000000000..8d6dd7b6b
--- /dev/null
+++ b/drivers/peci/request.c
@@ -0,0 +1,482 @@
+// SPDX-License-Identifier: GPL-2.0-only
+// Copyright (c) 2021 Intel Corporation
+
+#include <linux/bug.h>
+#include <linux/export.h>
+#include <linux/pci.h>
+#include <linux/peci.h>
+#include <linux/slab.h>
+#include <linux/types.h>
+
+#include <asm/unaligned.h>
+
+#include "internal.h"
+
+#define PECI_GET_DIB_CMD 0xf7
+#define PECI_GET_DIB_WR_LEN 1
+#define PECI_GET_DIB_RD_LEN 8
+
+#define PECI_GET_TEMP_CMD 0x01
+#define PECI_GET_TEMP_WR_LEN 1
+#define PECI_GET_TEMP_RD_LEN 2
+
+#define PECI_RDPKGCFG_CMD 0xa1
+#define PECI_RDPKGCFG_WR_LEN 5
+#define PECI_RDPKGCFG_RD_LEN_BASE 1
+#define PECI_WRPKGCFG_CMD 0xa5
+#define PECI_WRPKGCFG_WR_LEN_BASE 6
+#define PECI_WRPKGCFG_RD_LEN 1
+
+#define PECI_RDIAMSR_CMD 0xb1
+#define PECI_RDIAMSR_WR_LEN 5
+#define PECI_RDIAMSR_RD_LEN 9
+#define PECI_WRIAMSR_CMD 0xb5
+#define PECI_RDIAMSREX_CMD 0xd1
+#define PECI_RDIAMSREX_WR_LEN 6
+#define PECI_RDIAMSREX_RD_LEN 9
+
+#define PECI_RDPCICFG_CMD 0x61
+#define PECI_RDPCICFG_WR_LEN 6
+#define PECI_RDPCICFG_RD_LEN 5
+#define PECI_RDPCICFG_RD_LEN_MAX 24
+#define PECI_WRPCICFG_CMD 0x65
+
+#define PECI_RDPCICFGLOCAL_CMD 0xe1
+#define PECI_RDPCICFGLOCAL_WR_LEN 5
+#define PECI_RDPCICFGLOCAL_RD_LEN_BASE 1
+#define PECI_WRPCICFGLOCAL_CMD 0xe5
+#define PECI_WRPCICFGLOCAL_WR_LEN_BASE 6
+#define PECI_WRPCICFGLOCAL_RD_LEN 1
+
+#define PECI_ENDPTCFG_TYPE_LOCAL_PCI 0x03
+#define PECI_ENDPTCFG_TYPE_PCI 0x04
+#define PECI_ENDPTCFG_TYPE_MMIO 0x05
+#define PECI_ENDPTCFG_ADDR_TYPE_PCI 0x04
+#define PECI_ENDPTCFG_ADDR_TYPE_MMIO_D 0x05
+#define PECI_ENDPTCFG_ADDR_TYPE_MMIO_Q 0x06
+#define PECI_RDENDPTCFG_CMD 0xc1
+#define PECI_RDENDPTCFG_PCI_WR_LEN 12
+#define PECI_RDENDPTCFG_MMIO_WR_LEN_BASE 10
+#define PECI_RDENDPTCFG_MMIO_D_WR_LEN 14
+#define PECI_RDENDPTCFG_MMIO_Q_WR_LEN 18
+#define PECI_RDENDPTCFG_RD_LEN_BASE 1
+#define PECI_WRENDPTCFG_CMD 0xc5
+#define PECI_WRENDPTCFG_PCI_WR_LEN_BASE 13
+#define PECI_WRENDPTCFG_MMIO_D_WR_LEN_BASE 15
+#define PECI_WRENDPTCFG_MMIO_Q_WR_LEN_BASE 19
+#define PECI_WRENDPTCFG_RD_LEN 1
+
+/* Device Specific Completion Code (CC) Definition */
+#define PECI_CC_SUCCESS 0x40
+#define PECI_CC_NEED_RETRY 0x80
+#define PECI_CC_OUT_OF_RESOURCE 0x81
+#define PECI_CC_UNAVAIL_RESOURCE 0x82
+#define PECI_CC_INVALID_REQ 0x90
+#define PECI_CC_MCA_ERROR 0x91
+#define PECI_CC_CATASTROPHIC_MCA_ERROR 0x93
+#define PECI_CC_FATAL_MCA_ERROR 0x94
+#define PECI_CC_PARITY_ERR_GPSB_OR_PMSB 0x98
+#define PECI_CC_PARITY_ERR_GPSB_OR_PMSB_IERR 0x9B
+#define PECI_CC_PARITY_ERR_GPSB_OR_PMSB_MCA 0x9C
+
+#define PECI_RETRY_BIT BIT(0)
+
+#define PECI_RETRY_TIMEOUT msecs_to_jiffies(700)
+#define PECI_RETRY_INTERVAL_MIN msecs_to_jiffies(1)
+#define PECI_RETRY_INTERVAL_MAX msecs_to_jiffies(128)
+
+static u8 peci_request_data_cc(struct peci_request *req)
+{
+ return req->rx.buf[0];
+}
+
+/**
+ * peci_request_status() - return -errno based on PECI completion code
+ * @req: the PECI request that contains response data with completion code
+ *
+ * It can't be used for Ping(), GetDIB() and GetTemp() - for those commands we
+ * don't expect completion code in the response.
+ *
+ * Return: -errno
+ */
+int peci_request_status(struct peci_request *req)
+{
+ u8 cc = peci_request_data_cc(req);
+
+ if (cc != PECI_CC_SUCCESS)
+ dev_dbg(&req->device->dev, "ret: %#02x\n", cc);
+
+ switch (cc) {
+ case PECI_CC_SUCCESS:
+ return 0;
+ case PECI_CC_NEED_RETRY:
+ case PECI_CC_OUT_OF_RESOURCE:
+ case PECI_CC_UNAVAIL_RESOURCE:
+ return -EAGAIN;
+ case PECI_CC_INVALID_REQ:
+ return -EINVAL;
+ case PECI_CC_MCA_ERROR:
+ case PECI_CC_CATASTROPHIC_MCA_ERROR:
+ case PECI_CC_FATAL_MCA_ERROR:
+ case PECI_CC_PARITY_ERR_GPSB_OR_PMSB:
+ case PECI_CC_PARITY_ERR_GPSB_OR_PMSB_IERR:
+ case PECI_CC_PARITY_ERR_GPSB_OR_PMSB_MCA:
+ return -EIO;
+ }
+
+ WARN_ONCE(1, "Unknown PECI completion code: %#02x\n", cc);
+
+ return -EIO;
+}
+EXPORT_SYMBOL_NS_GPL(peci_request_status, PECI);
+
+static int peci_request_xfer(struct peci_request *req)
+{
+ struct peci_device *device = req->device;
+ struct peci_controller *controller = to_peci_controller(device->dev.parent);
+ int ret;
+
+ mutex_lock(&controller->bus_lock);
+ ret = controller->ops->xfer(controller, device->addr, req);
+ mutex_unlock(&controller->bus_lock);
+
+ return ret;
+}
+
+static int peci_request_xfer_retry(struct peci_request *req)
+{
+ long wait_interval = PECI_RETRY_INTERVAL_MIN;
+ struct peci_device *device = req->device;
+ struct peci_controller *controller = to_peci_controller(device->dev.parent);
+ unsigned long start = jiffies;
+ int ret;
+
+ /* Don't try to use it for ping */
+ if (WARN_ON(req->tx.len == 0))
+ return 0;
+
+ do {
+ ret = peci_request_xfer(req);
+ if (ret) {
+ dev_dbg(&controller->dev, "xfer error: %d\n", ret);
+ return ret;
+ }
+
+ if (peci_request_status(req) != -EAGAIN)
+ return 0;
+
+ /* Set the retry bit to indicate a retry attempt */
+ req->tx.buf[1] |= PECI_RETRY_BIT;
+
+ if (schedule_timeout_interruptible(wait_interval))
+ return -ERESTARTSYS;
+
+ wait_interval = min_t(long, wait_interval * 2, PECI_RETRY_INTERVAL_MAX);
+ } while (time_before(jiffies, start + PECI_RETRY_TIMEOUT));
+
+ dev_dbg(&controller->dev, "request timed out\n");
+
+ return -ETIMEDOUT;
+}
+
+/**
+ * peci_request_alloc() - allocate &struct peci_requests
+ * @device: PECI device to which request is going to be sent
+ * @tx_len: TX length
+ * @rx_len: RX length
+ *
+ * Return: A pointer to a newly allocated &struct peci_request on success or NULL otherwise.
+ */
+struct peci_request *peci_request_alloc(struct peci_device *device, u8 tx_len, u8 rx_len)
+{
+ struct peci_request *req;
+
+ /*
+ * TX and RX buffers are fixed length members of peci_request, this is
+ * just a warn for developers to make sure to expand the buffers (or
+ * change the allocation method) if we go over the current limit.
+ */
+ if (WARN_ON_ONCE(tx_len > PECI_REQUEST_MAX_BUF_SIZE || rx_len > PECI_REQUEST_MAX_BUF_SIZE))
+ return NULL;
+ /*
+ * PECI controllers that we are using now don't support DMA, this
+ * should be converted to DMA API once support for controllers that do
+ * allow it is added to avoid an extra copy.
+ */
+ req = kzalloc(sizeof(*req), GFP_KERNEL);
+ if (!req)
+ return NULL;
+
+ req->device = device;
+ req->tx.len = tx_len;
+ req->rx.len = rx_len;
+
+ return req;
+}
+EXPORT_SYMBOL_NS_GPL(peci_request_alloc, PECI);
+
+/**
+ * peci_request_free() - free peci_request
+ * @req: the PECI request to be freed
+ */
+void peci_request_free(struct peci_request *req)
+{
+ kfree(req);
+}
+EXPORT_SYMBOL_NS_GPL(peci_request_free, PECI);
+
+struct peci_request *peci_xfer_get_dib(struct peci_device *device)
+{
+ struct peci_request *req;
+ int ret;
+
+ req = peci_request_alloc(device, PECI_GET_DIB_WR_LEN, PECI_GET_DIB_RD_LEN);
+ if (!req)
+ return ERR_PTR(-ENOMEM);
+
+ req->tx.buf[0] = PECI_GET_DIB_CMD;
+
+ ret = peci_request_xfer(req);
+ if (ret) {
+ peci_request_free(req);
+ return ERR_PTR(ret);
+ }
+
+ return req;
+}
+EXPORT_SYMBOL_NS_GPL(peci_xfer_get_dib, PECI);
+
+struct peci_request *peci_xfer_get_temp(struct peci_device *device)
+{
+ struct peci_request *req;
+ int ret;
+
+ req = peci_request_alloc(device, PECI_GET_TEMP_WR_LEN, PECI_GET_TEMP_RD_LEN);
+ if (!req)
+ return ERR_PTR(-ENOMEM);
+
+ req->tx.buf[0] = PECI_GET_TEMP_CMD;
+
+ ret = peci_request_xfer(req);
+ if (ret) {
+ peci_request_free(req);
+ return ERR_PTR(ret);
+ }
+
+ return req;
+}
+EXPORT_SYMBOL_NS_GPL(peci_xfer_get_temp, PECI);
+
+static struct peci_request *
+__pkg_cfg_read(struct peci_device *device, u8 index, u16 param, u8 len)
+{
+ struct peci_request *req;
+ int ret;
+
+ req = peci_request_alloc(device, PECI_RDPKGCFG_WR_LEN, PECI_RDPKGCFG_RD_LEN_BASE + len);
+ if (!req)
+ return ERR_PTR(-ENOMEM);
+
+ req->tx.buf[0] = PECI_RDPKGCFG_CMD;
+ req->tx.buf[1] = 0;
+ req->tx.buf[2] = index;
+ put_unaligned_le16(param, &req->tx.buf[3]);
+
+ ret = peci_request_xfer_retry(req);
+ if (ret) {
+ peci_request_free(req);
+ return ERR_PTR(ret);
+ }
+
+ return req;
+}
+
+static u32 __get_pci_addr(u8 bus, u8 dev, u8 func, u16 reg)
+{
+ return reg | PCI_DEVID(bus, PCI_DEVFN(dev, func)) << 12;
+}
+
+static struct peci_request *
+__pci_cfg_local_read(struct peci_device *device, u8 bus, u8 dev, u8 func, u16 reg, u8 len)
+{
+ struct peci_request *req;
+ u32 pci_addr;
+ int ret;
+
+ req = peci_request_alloc(device, PECI_RDPCICFGLOCAL_WR_LEN,
+ PECI_RDPCICFGLOCAL_RD_LEN_BASE + len);
+ if (!req)
+ return ERR_PTR(-ENOMEM);
+
+ pci_addr = __get_pci_addr(bus, dev, func, reg);
+
+ req->tx.buf[0] = PECI_RDPCICFGLOCAL_CMD;
+ req->tx.buf[1] = 0;
+ put_unaligned_le24(pci_addr, &req->tx.buf[2]);
+
+ ret = peci_request_xfer_retry(req);
+ if (ret) {
+ peci_request_free(req);
+ return ERR_PTR(ret);
+ }
+
+ return req;
+}
+
+static struct peci_request *
+__ep_pci_cfg_read(struct peci_device *device, u8 msg_type, u8 seg,
+ u8 bus, u8 dev, u8 func, u16 reg, u8 len)
+{
+ struct peci_request *req;
+ u32 pci_addr;
+ int ret;
+
+ req = peci_request_alloc(device, PECI_RDENDPTCFG_PCI_WR_LEN,
+ PECI_RDENDPTCFG_RD_LEN_BASE + len);
+ if (!req)
+ return ERR_PTR(-ENOMEM);
+
+ pci_addr = __get_pci_addr(bus, dev, func, reg);
+
+ req->tx.buf[0] = PECI_RDENDPTCFG_CMD;
+ req->tx.buf[1] = 0;
+ req->tx.buf[2] = msg_type;
+ req->tx.buf[3] = 0;
+ req->tx.buf[4] = 0;
+ req->tx.buf[5] = 0;
+ req->tx.buf[6] = PECI_ENDPTCFG_ADDR_TYPE_PCI;
+ req->tx.buf[7] = seg; /* PCI Segment */
+ put_unaligned_le32(pci_addr, &req->tx.buf[8]);
+
+ ret = peci_request_xfer_retry(req);
+ if (ret) {
+ peci_request_free(req);
+ return ERR_PTR(ret);
+ }
+
+ return req;
+}
+
+static struct peci_request *
+__ep_mmio_read(struct peci_device *device, u8 bar, u8 addr_type, u8 seg,
+ u8 bus, u8 dev, u8 func, u64 offset, u8 tx_len, u8 len)
+{
+ struct peci_request *req;
+ int ret;
+
+ req = peci_request_alloc(device, tx_len, PECI_RDENDPTCFG_RD_LEN_BASE + len);
+ if (!req)
+ return ERR_PTR(-ENOMEM);
+
+ req->tx.buf[0] = PECI_RDENDPTCFG_CMD;
+ req->tx.buf[1] = 0;
+ req->tx.buf[2] = PECI_ENDPTCFG_TYPE_MMIO;
+ req->tx.buf[3] = 0; /* Endpoint ID */
+ req->tx.buf[4] = 0; /* Reserved */
+ req->tx.buf[5] = bar;
+ req->tx.buf[6] = addr_type;
+ req->tx.buf[7] = seg; /* PCI Segment */
+ req->tx.buf[8] = PCI_DEVFN(dev, func);
+ req->tx.buf[9] = bus; /* PCI Bus */
+
+ if (addr_type == PECI_ENDPTCFG_ADDR_TYPE_MMIO_D)
+ put_unaligned_le32(offset, &req->tx.buf[10]);
+ else
+ put_unaligned_le64(offset, &req->tx.buf[10]);
+
+ ret = peci_request_xfer_retry(req);
+ if (ret) {
+ peci_request_free(req);
+ return ERR_PTR(ret);
+ }
+
+ return req;
+}
+
+u8 peci_request_data_readb(struct peci_request *req)
+{
+ return req->rx.buf[1];
+}
+EXPORT_SYMBOL_NS_GPL(peci_request_data_readb, PECI);
+
+u16 peci_request_data_readw(struct peci_request *req)
+{
+ return get_unaligned_le16(&req->rx.buf[1]);
+}
+EXPORT_SYMBOL_NS_GPL(peci_request_data_readw, PECI);
+
+u32 peci_request_data_readl(struct peci_request *req)
+{
+ return get_unaligned_le32(&req->rx.buf[1]);
+}
+EXPORT_SYMBOL_NS_GPL(peci_request_data_readl, PECI);
+
+u64 peci_request_data_readq(struct peci_request *req)
+{
+ return get_unaligned_le64(&req->rx.buf[1]);
+}
+EXPORT_SYMBOL_NS_GPL(peci_request_data_readq, PECI);
+
+u64 peci_request_dib_read(struct peci_request *req)
+{
+ return get_unaligned_le64(&req->rx.buf[0]);
+}
+EXPORT_SYMBOL_NS_GPL(peci_request_dib_read, PECI);
+
+s16 peci_request_temp_read(struct peci_request *req)
+{
+ return get_unaligned_le16(&req->rx.buf[0]);
+}
+EXPORT_SYMBOL_NS_GPL(peci_request_temp_read, PECI);
+
+#define __read_pkg_config(x, type) \
+struct peci_request *peci_xfer_pkg_cfg_##x(struct peci_device *device, u8 index, u16 param) \
+{ \
+ return __pkg_cfg_read(device, index, param, sizeof(type)); \
+} \
+EXPORT_SYMBOL_NS_GPL(peci_xfer_pkg_cfg_##x, PECI)
+
+__read_pkg_config(readb, u8);
+__read_pkg_config(readw, u16);
+__read_pkg_config(readl, u32);
+__read_pkg_config(readq, u64);
+
+#define __read_pci_config_local(x, type) \
+struct peci_request * \
+peci_xfer_pci_cfg_local_##x(struct peci_device *device, u8 bus, u8 dev, u8 func, u16 reg) \
+{ \
+ return __pci_cfg_local_read(device, bus, dev, func, reg, sizeof(type)); \
+} \
+EXPORT_SYMBOL_NS_GPL(peci_xfer_pci_cfg_local_##x, PECI)
+
+__read_pci_config_local(readb, u8);
+__read_pci_config_local(readw, u16);
+__read_pci_config_local(readl, u32);
+
+#define __read_ep_pci_config(x, msg_type, type) \
+struct peci_request * \
+peci_xfer_ep_pci_cfg_##x(struct peci_device *device, u8 seg, u8 bus, u8 dev, u8 func, u16 reg) \
+{ \
+ return __ep_pci_cfg_read(device, msg_type, seg, bus, dev, func, reg, sizeof(type)); \
+} \
+EXPORT_SYMBOL_NS_GPL(peci_xfer_ep_pci_cfg_##x, PECI)
+
+__read_ep_pci_config(local_readb, PECI_ENDPTCFG_TYPE_LOCAL_PCI, u8);
+__read_ep_pci_config(local_readw, PECI_ENDPTCFG_TYPE_LOCAL_PCI, u16);
+__read_ep_pci_config(local_readl, PECI_ENDPTCFG_TYPE_LOCAL_PCI, u32);
+__read_ep_pci_config(readb, PECI_ENDPTCFG_TYPE_PCI, u8);
+__read_ep_pci_config(readw, PECI_ENDPTCFG_TYPE_PCI, u16);
+__read_ep_pci_config(readl, PECI_ENDPTCFG_TYPE_PCI, u32);
+
+#define __read_ep_mmio(x, y, addr_type, type1, type2) \
+struct peci_request *peci_xfer_ep_mmio##y##_##x(struct peci_device *device, u8 bar, u8 seg, \
+ u8 bus, u8 dev, u8 func, u64 offset) \
+{ \
+ return __ep_mmio_read(device, bar, addr_type, seg, bus, dev, func, \
+ offset, PECI_RDENDPTCFG_MMIO_WR_LEN_BASE + sizeof(type1), \
+ sizeof(type2)); \
+} \
+EXPORT_SYMBOL_NS_GPL(peci_xfer_ep_mmio##y##_##x, PECI)
+
+__read_ep_mmio(readl, 32, PECI_ENDPTCFG_ADDR_TYPE_MMIO_D, u32, u32);
+__read_ep_mmio(readl, 64, PECI_ENDPTCFG_ADDR_TYPE_MMIO_Q, u64, u32);