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In a core, the SBAF test engine is shared between sibling CPUs. An SBAF test image contains multiple bundles. Each bundle is further composed of subunits called programs. When a SBAF test (for a particular core) is triggered by the user, each SBAF bundle from the loaded test image is executed sequentially on all the threads on the core using the stop_core_cpuslocked mechanism. Each bundle execution is initiated by writing to MSR_ACTIVATE_SBAF. SBAF test bundle execution may be aborted when an interrupt occurs or if the CPU does not have enough power budget for the test. In these cases the kernel restarts the test from the aborted bundle. SBAF execution is not retried if the test fails or if the test makes no forward progress after 5 retries. Reviewed-by: Ashok Raj <ashok.raj@intel.com> Reviewed-by: Tony Luck <tony.luck@intel.com> Reviewed-by: Ilpo Järvinen <ilpo.jarvinen@linux.intel.com> Signed-off-by: Jithu Joseph <jithu.joseph@intel.com> Signed-off-by: Kuppuswamy Sathyanarayanan <sathyanarayanan.kuppuswamy@linux.intel.com> Link: https://lore.kernel.org/r/20240801051814.1935149-4-sathyanarayanan.kuppuswamy@linux.intel.com Signed-off-by: Hans de Goede <hdegoede@redhat.com>
662 lines
19 KiB
C
662 lines
19 KiB
C
// SPDX-License-Identifier: GPL-2.0-only
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/* Copyright(c) 2022 Intel Corporation. */
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#include <linux/cpu.h>
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#include <linux/delay.h>
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#include <linux/fs.h>
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#include <linux/nmi.h>
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#include <linux/slab.h>
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#include <linux/stop_machine.h>
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#include "ifs.h"
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/*
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* Note all code and data in this file is protected by
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* ifs_sem. On HT systems all threads on a core will
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* execute together, but only the first thread on the
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* core will update results of the test.
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*/
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#define CREATE_TRACE_POINTS
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#include <trace/events/intel_ifs.h>
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/* Max retries on the same chunk */
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#define MAX_IFS_RETRIES 5
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struct run_params {
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struct ifs_data *ifsd;
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union ifs_scan *activate;
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union ifs_status status;
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};
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struct sbaf_run_params {
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struct ifs_data *ifsd;
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int *retry_cnt;
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union ifs_sbaf *activate;
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union ifs_sbaf_status status;
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};
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/*
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* Number of TSC cycles that a logical CPU will wait for the other
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* logical CPU on the core in the WRMSR(ACTIVATE_SCAN).
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*/
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#define IFS_THREAD_WAIT 100000
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enum ifs_status_err_code {
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IFS_NO_ERROR = 0,
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IFS_OTHER_THREAD_COULD_NOT_JOIN = 1,
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IFS_INTERRUPTED_BEFORE_RENDEZVOUS = 2,
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IFS_POWER_MGMT_INADEQUATE_FOR_SCAN = 3,
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IFS_INVALID_CHUNK_RANGE = 4,
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IFS_MISMATCH_ARGUMENTS_BETWEEN_THREADS = 5,
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IFS_CORE_NOT_CAPABLE_CURRENTLY = 6,
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IFS_UNASSIGNED_ERROR_CODE = 7,
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IFS_EXCEED_NUMBER_OF_THREADS_CONCURRENT = 8,
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IFS_INTERRUPTED_DURING_EXECUTION = 9,
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IFS_UNASSIGNED_ERROR_CODE_0xA = 0xA,
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IFS_CORRUPTED_CHUNK = 0xB,
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};
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static const char * const scan_test_status[] = {
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[IFS_NO_ERROR] = "SCAN no error",
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[IFS_OTHER_THREAD_COULD_NOT_JOIN] = "Other thread could not join.",
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[IFS_INTERRUPTED_BEFORE_RENDEZVOUS] = "Interrupt occurred prior to SCAN coordination.",
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[IFS_POWER_MGMT_INADEQUATE_FOR_SCAN] =
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"Core Abort SCAN Response due to power management condition.",
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[IFS_INVALID_CHUNK_RANGE] = "Non valid chunks in the range",
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[IFS_MISMATCH_ARGUMENTS_BETWEEN_THREADS] = "Mismatch in arguments between threads T0/T1.",
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[IFS_CORE_NOT_CAPABLE_CURRENTLY] = "Core not capable of performing SCAN currently",
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[IFS_UNASSIGNED_ERROR_CODE] = "Unassigned error code 0x7",
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[IFS_EXCEED_NUMBER_OF_THREADS_CONCURRENT] =
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"Exceeded number of Logical Processors (LP) allowed to run Scan-At-Field concurrently",
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[IFS_INTERRUPTED_DURING_EXECUTION] = "Interrupt occurred prior to SCAN start",
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[IFS_UNASSIGNED_ERROR_CODE_0xA] = "Unassigned error code 0xA",
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[IFS_CORRUPTED_CHUNK] = "Scan operation aborted due to corrupted image. Try reloading",
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};
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static void message_not_tested(struct device *dev, int cpu, union ifs_status status)
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{
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struct ifs_data *ifsd = ifs_get_data(dev);
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/*
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* control_error is set when the microcode runs into a problem
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* loading the image from the reserved BIOS memory, or it has
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* been corrupted. Reloading the image may fix this issue.
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*/
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if (status.control_error) {
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dev_warn(dev, "CPU(s) %*pbl: Scan controller error. Batch: %02x version: 0x%x\n",
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cpumask_pr_args(cpu_smt_mask(cpu)), ifsd->cur_batch, ifsd->loaded_version);
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return;
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}
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if (status.error_code < ARRAY_SIZE(scan_test_status)) {
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dev_info(dev, "CPU(s) %*pbl: SCAN operation did not start. %s\n",
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cpumask_pr_args(cpu_smt_mask(cpu)),
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scan_test_status[status.error_code]);
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} else if (status.error_code == IFS_SW_TIMEOUT) {
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dev_info(dev, "CPU(s) %*pbl: software timeout during scan\n",
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cpumask_pr_args(cpu_smt_mask(cpu)));
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} else if (status.error_code == IFS_SW_PARTIAL_COMPLETION) {
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dev_info(dev, "CPU(s) %*pbl: %s\n",
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cpumask_pr_args(cpu_smt_mask(cpu)),
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"Not all scan chunks were executed. Maximum forward progress retries exceeded");
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} else {
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dev_info(dev, "CPU(s) %*pbl: SCAN unknown status %llx\n",
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cpumask_pr_args(cpu_smt_mask(cpu)), status.data);
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}
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}
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static void message_fail(struct device *dev, int cpu, union ifs_status status)
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{
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struct ifs_data *ifsd = ifs_get_data(dev);
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/*
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* signature_error is set when the output from the scan chains does not
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* match the expected signature. This might be a transient problem (e.g.
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* due to a bit flip from an alpha particle or neutron). If the problem
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* repeats on a subsequent test, then it indicates an actual problem in
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* the core being tested.
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*/
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if (status.signature_error) {
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dev_err(dev, "CPU(s) %*pbl: test signature incorrect. Batch: %02x version: 0x%x\n",
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cpumask_pr_args(cpu_smt_mask(cpu)), ifsd->cur_batch, ifsd->loaded_version);
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}
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}
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static bool can_restart(union ifs_status status)
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{
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enum ifs_status_err_code err_code = status.error_code;
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/* Signature for chunk is bad, or scan test failed */
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if (status.signature_error || status.control_error)
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return false;
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switch (err_code) {
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case IFS_NO_ERROR:
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case IFS_OTHER_THREAD_COULD_NOT_JOIN:
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case IFS_INTERRUPTED_BEFORE_RENDEZVOUS:
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case IFS_POWER_MGMT_INADEQUATE_FOR_SCAN:
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case IFS_EXCEED_NUMBER_OF_THREADS_CONCURRENT:
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case IFS_INTERRUPTED_DURING_EXECUTION:
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return true;
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case IFS_INVALID_CHUNK_RANGE:
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case IFS_MISMATCH_ARGUMENTS_BETWEEN_THREADS:
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case IFS_CORE_NOT_CAPABLE_CURRENTLY:
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case IFS_UNASSIGNED_ERROR_CODE:
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case IFS_UNASSIGNED_ERROR_CODE_0xA:
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case IFS_CORRUPTED_CHUNK:
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break;
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}
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return false;
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}
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#define SPINUNIT 100 /* 100 nsec */
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static atomic_t array_cpus_in;
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static atomic_t scan_cpus_in;
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static atomic_t sbaf_cpus_in;
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/*
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* Simplified cpu sibling rendezvous loop based on microcode loader __wait_for_cpus()
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*/
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static void wait_for_sibling_cpu(atomic_t *t, long long timeout)
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{
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int cpu = smp_processor_id();
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const struct cpumask *smt_mask = cpu_smt_mask(cpu);
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int all_cpus = cpumask_weight(smt_mask);
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atomic_inc(t);
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while (atomic_read(t) < all_cpus) {
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if (timeout < SPINUNIT)
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return;
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ndelay(SPINUNIT);
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timeout -= SPINUNIT;
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touch_nmi_watchdog();
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}
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}
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/*
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* Execute the scan. Called "simultaneously" on all threads of a core
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* at high priority using the stop_cpus mechanism.
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*/
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static int doscan(void *data)
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{
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int cpu = smp_processor_id(), start, stop;
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struct run_params *params = data;
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union ifs_status status;
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struct ifs_data *ifsd;
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int first;
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ifsd = params->ifsd;
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if (ifsd->generation) {
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start = params->activate->gen2.start;
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stop = params->activate->gen2.stop;
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} else {
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start = params->activate->gen0.start;
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stop = params->activate->gen0.stop;
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}
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/* Only the first logical CPU on a core reports result */
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first = cpumask_first(cpu_smt_mask(cpu));
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wait_for_sibling_cpu(&scan_cpus_in, NSEC_PER_SEC);
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/*
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* This WRMSR will wait for other HT threads to also write
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* to this MSR (at most for activate.delay cycles). Then it
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* starts scan of each requested chunk. The core scan happens
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* during the "execution" of the WRMSR. This instruction can
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* take up to 200 milliseconds (in the case where all chunks
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* are processed in a single pass) before it retires.
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*/
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wrmsrl(MSR_ACTIVATE_SCAN, params->activate->data);
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rdmsrl(MSR_SCAN_STATUS, status.data);
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trace_ifs_status(ifsd->cur_batch, start, stop, status.data);
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/* Pass back the result of the scan */
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if (cpu == first)
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params->status = status;
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return 0;
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}
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/*
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* Use stop_core_cpuslocked() to synchronize writing to MSR_ACTIVATE_SCAN
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* on all threads of the core to be tested. Loop if necessary to complete
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* run of all chunks. Include some defensive tests to make sure forward
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* progress is made, and that the whole test completes in a reasonable time.
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*/
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static void ifs_test_core(int cpu, struct device *dev)
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{
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union ifs_scan activate;
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union ifs_status status;
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unsigned long timeout;
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struct ifs_data *ifsd;
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int to_start, to_stop;
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int status_chunk;
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struct run_params params;
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int retries;
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ifsd = ifs_get_data(dev);
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activate.gen0.rsvd = 0;
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activate.delay = IFS_THREAD_WAIT;
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activate.sigmce = 0;
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to_start = 0;
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to_stop = ifsd->valid_chunks - 1;
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params.ifsd = ifs_get_data(dev);
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if (ifsd->generation) {
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activate.gen2.start = to_start;
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activate.gen2.stop = to_stop;
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} else {
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activate.gen0.start = to_start;
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activate.gen0.stop = to_stop;
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}
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timeout = jiffies + HZ / 2;
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retries = MAX_IFS_RETRIES;
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while (to_start <= to_stop) {
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if (time_after(jiffies, timeout)) {
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status.error_code = IFS_SW_TIMEOUT;
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break;
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}
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params.activate = &activate;
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atomic_set(&scan_cpus_in, 0);
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stop_core_cpuslocked(cpu, doscan, ¶ms);
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status = params.status;
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/* Some cases can be retried, give up for others */
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if (!can_restart(status))
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break;
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status_chunk = ifsd->generation ? status.gen2.chunk_num : status.gen0.chunk_num;
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if (status_chunk == to_start) {
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/* Check for forward progress */
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if (--retries == 0) {
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if (status.error_code == IFS_NO_ERROR)
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status.error_code = IFS_SW_PARTIAL_COMPLETION;
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break;
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}
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} else {
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retries = MAX_IFS_RETRIES;
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if (ifsd->generation)
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activate.gen2.start = status_chunk;
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else
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activate.gen0.start = status_chunk;
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to_start = status_chunk;
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}
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}
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/* Update status for this core */
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ifsd->scan_details = status.data;
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if (status.signature_error) {
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ifsd->status = SCAN_TEST_FAIL;
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message_fail(dev, cpu, status);
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} else if (status.control_error || status.error_code) {
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ifsd->status = SCAN_NOT_TESTED;
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message_not_tested(dev, cpu, status);
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} else {
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ifsd->status = SCAN_TEST_PASS;
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}
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}
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static int do_array_test(void *data)
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{
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union ifs_array *command = data;
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int cpu = smp_processor_id();
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int first;
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wait_for_sibling_cpu(&array_cpus_in, NSEC_PER_SEC);
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/*
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* Only one logical CPU on a core needs to trigger the Array test via MSR write.
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*/
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first = cpumask_first(cpu_smt_mask(cpu));
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if (cpu == first) {
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wrmsrl(MSR_ARRAY_BIST, command->data);
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/* Pass back the result of the test */
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rdmsrl(MSR_ARRAY_BIST, command->data);
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}
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return 0;
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}
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static void ifs_array_test_core(int cpu, struct device *dev)
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{
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union ifs_array command = {};
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bool timed_out = false;
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struct ifs_data *ifsd;
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unsigned long timeout;
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ifsd = ifs_get_data(dev);
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command.array_bitmask = ~0U;
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timeout = jiffies + HZ / 2;
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do {
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if (time_after(jiffies, timeout)) {
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timed_out = true;
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break;
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}
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atomic_set(&array_cpus_in, 0);
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stop_core_cpuslocked(cpu, do_array_test, &command);
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if (command.ctrl_result)
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break;
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} while (command.array_bitmask);
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ifsd->scan_details = command.data;
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if (command.ctrl_result)
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ifsd->status = SCAN_TEST_FAIL;
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else if (timed_out || command.array_bitmask)
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ifsd->status = SCAN_NOT_TESTED;
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else
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ifsd->status = SCAN_TEST_PASS;
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}
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#define ARRAY_GEN1_TEST_ALL_ARRAYS 0x0ULL
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#define ARRAY_GEN1_STATUS_FAIL 0x1ULL
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static int do_array_test_gen1(void *status)
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{
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int cpu = smp_processor_id();
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int first;
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first = cpumask_first(cpu_smt_mask(cpu));
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if (cpu == first) {
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wrmsrl(MSR_ARRAY_TRIGGER, ARRAY_GEN1_TEST_ALL_ARRAYS);
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rdmsrl(MSR_ARRAY_STATUS, *((u64 *)status));
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}
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return 0;
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}
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static void ifs_array_test_gen1(int cpu, struct device *dev)
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{
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struct ifs_data *ifsd = ifs_get_data(dev);
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u64 status = 0;
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stop_core_cpuslocked(cpu, do_array_test_gen1, &status);
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ifsd->scan_details = status;
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if (status & ARRAY_GEN1_STATUS_FAIL)
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ifsd->status = SCAN_TEST_FAIL;
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else
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ifsd->status = SCAN_TEST_PASS;
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}
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#define SBAF_STATUS_PASS 0
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#define SBAF_STATUS_SIGN_FAIL 1
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#define SBAF_STATUS_INTR 2
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#define SBAF_STATUS_TEST_FAIL 3
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enum sbaf_status_err_code {
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IFS_SBAF_NO_ERROR = 0,
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IFS_SBAF_OTHER_THREAD_COULD_NOT_JOIN = 1,
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IFS_SBAF_INTERRUPTED_BEFORE_RENDEZVOUS = 2,
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IFS_SBAF_UNASSIGNED_ERROR_CODE3 = 3,
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IFS_SBAF_INVALID_BUNDLE_INDEX = 4,
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IFS_SBAF_MISMATCH_ARGS_BETWEEN_THREADS = 5,
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IFS_SBAF_CORE_NOT_CAPABLE_CURRENTLY = 6,
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IFS_SBAF_UNASSIGNED_ERROR_CODE7 = 7,
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IFS_SBAF_EXCEED_NUMBER_OF_THREADS_CONCURRENT = 8,
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IFS_SBAF_INTERRUPTED_DURING_EXECUTION = 9,
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IFS_SBAF_INVALID_PROGRAM_INDEX = 0xA,
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IFS_SBAF_CORRUPTED_CHUNK = 0xB,
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IFS_SBAF_DID_NOT_START = 0xC,
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};
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static const char * const sbaf_test_status[] = {
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[IFS_SBAF_NO_ERROR] = "SBAF no error",
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[IFS_SBAF_OTHER_THREAD_COULD_NOT_JOIN] = "Other thread could not join.",
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[IFS_SBAF_INTERRUPTED_BEFORE_RENDEZVOUS] = "Interrupt occurred prior to SBAF coordination.",
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[IFS_SBAF_UNASSIGNED_ERROR_CODE3] = "Unassigned error code 0x3",
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[IFS_SBAF_INVALID_BUNDLE_INDEX] = "Non-valid sbaf bundles. Reload test image",
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[IFS_SBAF_MISMATCH_ARGS_BETWEEN_THREADS] = "Mismatch in arguments between threads T0/T1.",
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[IFS_SBAF_CORE_NOT_CAPABLE_CURRENTLY] = "Core not capable of performing SBAF currently",
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[IFS_SBAF_UNASSIGNED_ERROR_CODE7] = "Unassigned error code 0x7",
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[IFS_SBAF_EXCEED_NUMBER_OF_THREADS_CONCURRENT] = "Exceeded number of Logical Processors (LP) allowed to run Scan-At-Field concurrently",
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[IFS_SBAF_INTERRUPTED_DURING_EXECUTION] = "Interrupt occurred prior to SBAF start",
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[IFS_SBAF_INVALID_PROGRAM_INDEX] = "SBAF program index not valid",
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[IFS_SBAF_CORRUPTED_CHUNK] = "SBAF operation aborted due to corrupted chunk",
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[IFS_SBAF_DID_NOT_START] = "SBAF operation did not start",
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};
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static void sbaf_message_not_tested(struct device *dev, int cpu, u64 status_data)
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{
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union ifs_sbaf_status status = (union ifs_sbaf_status)status_data;
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if (status.error_code < ARRAY_SIZE(sbaf_test_status)) {
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dev_info(dev, "CPU(s) %*pbl: SBAF operation did not start. %s\n",
|
|
cpumask_pr_args(cpu_smt_mask(cpu)),
|
|
sbaf_test_status[status.error_code]);
|
|
} else if (status.error_code == IFS_SW_TIMEOUT) {
|
|
dev_info(dev, "CPU(s) %*pbl: software timeout during scan\n",
|
|
cpumask_pr_args(cpu_smt_mask(cpu)));
|
|
} else if (status.error_code == IFS_SW_PARTIAL_COMPLETION) {
|
|
dev_info(dev, "CPU(s) %*pbl: %s\n",
|
|
cpumask_pr_args(cpu_smt_mask(cpu)),
|
|
"Not all SBAF bundles executed. Maximum forward progress retries exceeded");
|
|
} else {
|
|
dev_info(dev, "CPU(s) %*pbl: SBAF unknown status %llx\n",
|
|
cpumask_pr_args(cpu_smt_mask(cpu)), status.data);
|
|
}
|
|
}
|
|
|
|
static void sbaf_message_fail(struct device *dev, int cpu, union ifs_sbaf_status status)
|
|
{
|
|
/* Failed signature check is set when SBAF signature did not match the expected value */
|
|
if (status.sbaf_status == SBAF_STATUS_SIGN_FAIL) {
|
|
dev_err(dev, "CPU(s) %*pbl: Failed signature check\n",
|
|
cpumask_pr_args(cpu_smt_mask(cpu)));
|
|
}
|
|
|
|
/* Failed to reach end of test */
|
|
if (status.sbaf_status == SBAF_STATUS_TEST_FAIL) {
|
|
dev_err(dev, "CPU(s) %*pbl: Failed to complete test\n",
|
|
cpumask_pr_args(cpu_smt_mask(cpu)));
|
|
}
|
|
}
|
|
|
|
static bool sbaf_bundle_completed(union ifs_sbaf_status status)
|
|
{
|
|
return !(status.sbaf_status || status.error_code);
|
|
}
|
|
|
|
static bool sbaf_can_restart(union ifs_sbaf_status status)
|
|
{
|
|
enum sbaf_status_err_code err_code = status.error_code;
|
|
|
|
/* Signature for chunk is bad, or scan test failed */
|
|
if (status.sbaf_status == SBAF_STATUS_SIGN_FAIL ||
|
|
status.sbaf_status == SBAF_STATUS_TEST_FAIL)
|
|
return false;
|
|
|
|
switch (err_code) {
|
|
case IFS_SBAF_NO_ERROR:
|
|
case IFS_SBAF_OTHER_THREAD_COULD_NOT_JOIN:
|
|
case IFS_SBAF_INTERRUPTED_BEFORE_RENDEZVOUS:
|
|
case IFS_SBAF_EXCEED_NUMBER_OF_THREADS_CONCURRENT:
|
|
case IFS_SBAF_INTERRUPTED_DURING_EXECUTION:
|
|
return true;
|
|
case IFS_SBAF_UNASSIGNED_ERROR_CODE3:
|
|
case IFS_SBAF_INVALID_BUNDLE_INDEX:
|
|
case IFS_SBAF_MISMATCH_ARGS_BETWEEN_THREADS:
|
|
case IFS_SBAF_CORE_NOT_CAPABLE_CURRENTLY:
|
|
case IFS_SBAF_UNASSIGNED_ERROR_CODE7:
|
|
case IFS_SBAF_INVALID_PROGRAM_INDEX:
|
|
case IFS_SBAF_CORRUPTED_CHUNK:
|
|
case IFS_SBAF_DID_NOT_START:
|
|
break;
|
|
}
|
|
return false;
|
|
}
|
|
|
|
/*
|
|
* Execute the SBAF test. Called "simultaneously" on all threads of a core
|
|
* at high priority using the stop_cpus mechanism.
|
|
*/
|
|
static int dosbaf(void *data)
|
|
{
|
|
struct sbaf_run_params *run_params = data;
|
|
int cpu = smp_processor_id();
|
|
union ifs_sbaf_status status;
|
|
struct ifs_data *ifsd;
|
|
int first;
|
|
|
|
ifsd = run_params->ifsd;
|
|
|
|
/* Only the first logical CPU on a core reports result */
|
|
first = cpumask_first(cpu_smt_mask(cpu));
|
|
wait_for_sibling_cpu(&sbaf_cpus_in, NSEC_PER_SEC);
|
|
|
|
/*
|
|
* This WRMSR will wait for other HT threads to also write
|
|
* to this MSR (at most for activate.delay cycles). Then it
|
|
* starts scan of each requested bundle. The core test happens
|
|
* during the "execution" of the WRMSR.
|
|
*/
|
|
wrmsrl(MSR_ACTIVATE_SBAF, run_params->activate->data);
|
|
rdmsrl(MSR_SBAF_STATUS, status.data);
|
|
|
|
/* Pass back the result of the test */
|
|
if (cpu == first)
|
|
run_params->status = status;
|
|
|
|
return 0;
|
|
}
|
|
|
|
static void ifs_sbaf_test_core(int cpu, struct device *dev)
|
|
{
|
|
struct sbaf_run_params run_params;
|
|
union ifs_sbaf_status status = {};
|
|
union ifs_sbaf activate;
|
|
unsigned long timeout;
|
|
struct ifs_data *ifsd;
|
|
int stop_bundle;
|
|
int retries;
|
|
|
|
ifsd = ifs_get_data(dev);
|
|
|
|
activate.data = 0;
|
|
activate.delay = IFS_THREAD_WAIT;
|
|
|
|
timeout = jiffies + 2 * HZ;
|
|
retries = MAX_IFS_RETRIES;
|
|
activate.bundle_idx = 0;
|
|
stop_bundle = ifsd->max_bundle;
|
|
|
|
while (activate.bundle_idx <= stop_bundle) {
|
|
if (time_after(jiffies, timeout)) {
|
|
status.error_code = IFS_SW_TIMEOUT;
|
|
break;
|
|
}
|
|
|
|
atomic_set(&sbaf_cpus_in, 0);
|
|
|
|
run_params.ifsd = ifsd;
|
|
run_params.activate = &activate;
|
|
run_params.retry_cnt = &retries;
|
|
stop_core_cpuslocked(cpu, dosbaf, &run_params);
|
|
|
|
status = run_params.status;
|
|
|
|
if (sbaf_bundle_completed(status)) {
|
|
activate.bundle_idx = status.bundle_idx + 1;
|
|
activate.pgm_idx = 0;
|
|
retries = MAX_IFS_RETRIES;
|
|
continue;
|
|
}
|
|
|
|
/* Some cases can be retried, give up for others */
|
|
if (!sbaf_can_restart(status))
|
|
break;
|
|
|
|
if (status.pgm_idx == activate.pgm_idx) {
|
|
/* If no progress retry */
|
|
if (--retries == 0) {
|
|
if (status.error_code == IFS_NO_ERROR)
|
|
status.error_code = IFS_SW_PARTIAL_COMPLETION;
|
|
break;
|
|
}
|
|
} else {
|
|
/* if some progress, more pgms remaining in bundle, reset retries */
|
|
retries = MAX_IFS_RETRIES;
|
|
activate.bundle_idx = status.bundle_idx;
|
|
activate.pgm_idx = status.pgm_idx;
|
|
}
|
|
}
|
|
|
|
/* Update status for this core */
|
|
ifsd->scan_details = status.data;
|
|
|
|
if (status.sbaf_status == SBAF_STATUS_SIGN_FAIL ||
|
|
status.sbaf_status == SBAF_STATUS_TEST_FAIL) {
|
|
ifsd->status = SCAN_TEST_FAIL;
|
|
sbaf_message_fail(dev, cpu, status);
|
|
} else if (status.error_code || status.sbaf_status == SBAF_STATUS_INTR ||
|
|
(activate.bundle_idx < stop_bundle)) {
|
|
ifsd->status = SCAN_NOT_TESTED;
|
|
sbaf_message_not_tested(dev, cpu, status.data);
|
|
} else {
|
|
ifsd->status = SCAN_TEST_PASS;
|
|
}
|
|
}
|
|
|
|
/*
|
|
* Initiate per core test. It wakes up work queue threads on the target cpu and
|
|
* its sibling cpu. Once all sibling threads wake up, the scan test gets executed and
|
|
* wait for all sibling threads to finish the scan test.
|
|
*/
|
|
int do_core_test(int cpu, struct device *dev)
|
|
{
|
|
const struct ifs_test_caps *test = ifs_get_test_caps(dev);
|
|
struct ifs_data *ifsd = ifs_get_data(dev);
|
|
int ret = 0;
|
|
|
|
/* Prevent CPUs from being taken offline during the scan test */
|
|
cpus_read_lock();
|
|
|
|
if (!cpu_online(cpu)) {
|
|
dev_info(dev, "cannot test on the offline cpu %d\n", cpu);
|
|
ret = -EINVAL;
|
|
goto out;
|
|
}
|
|
|
|
switch (test->test_num) {
|
|
case IFS_TYPE_SAF:
|
|
if (!ifsd->loaded)
|
|
ret = -EPERM;
|
|
else
|
|
ifs_test_core(cpu, dev);
|
|
break;
|
|
case IFS_TYPE_ARRAY_BIST:
|
|
if (ifsd->array_gen == ARRAY_GEN0)
|
|
ifs_array_test_core(cpu, dev);
|
|
else
|
|
ifs_array_test_gen1(cpu, dev);
|
|
break;
|
|
case IFS_TYPE_SBAF:
|
|
if (!ifsd->loaded)
|
|
ret = -EPERM;
|
|
else
|
|
ifs_sbaf_test_core(cpu, dev);
|
|
break;
|
|
default:
|
|
ret = -EINVAL;
|
|
}
|
|
out:
|
|
cpus_read_unlock();
|
|
return ret;
|
|
}
|