mirror of
https://github.com/Telecominfraproject/OpenCellular.git
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This fixes a bug in which after a sysjump, the sleep_mask is reset, and the EC is allowed to go into a low power mode even though the AP is still running. This causes numerous problems, must notable of which is that a flashrom write fails with an EC protocol mismatch error. BUG=chrome-os-partner:23645 BRANCH=none TEST=Execute a flashrom write and make sure the system does not use the low power code immediately after. Change-Id: I4d50282da0c5ba5b6488ed14a267a4d8cafe09a7 Signed-off-by: Alec Berg <alecaberg@chromium.org> Reviewed-on: https://chromium-review.googlesource.com/174943 Reviewed-by: Randall Spangler <rspangler@chromium.org> Reviewed-by: Vincent Palatin <vpalatin@chromium.org>
409 lines
11 KiB
C
409 lines
11 KiB
C
/* Copyright (c) 2013 The Chromium OS Authors. All rights reserved.
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* Use of this source code is governed by a BSD-style license that can be
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* found in the LICENSE file.
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*/
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/* X86 chipset power control module for Chrome EC */
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#include "chipset.h"
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#include "chipset_x86_common.h"
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#include "common.h"
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#include "console.h"
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#include "ec_commands.h"
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#include "gpio.h"
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#include "hooks.h"
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#include "host_command.h"
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#include "lid_switch.h"
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#include "system.h"
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#include "timer.h"
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#include "util.h"
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#include "wireless.h"
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/* Console output macros */
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#define CPUTS(outstr) cputs(CC_CHIPSET, outstr)
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#define CPRINTF(format, args...) cprintf(CC_CHIPSET, format, ## args)
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/* Input state flags */
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#define IN_PGOOD_PP5000 X86_SIGNAL_MASK(X86_PGOOD_PP5000)
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#define IN_PGOOD_PP1350 X86_SIGNAL_MASK(X86_PGOOD_PP1350)
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#define IN_PGOOD_PP1050 X86_SIGNAL_MASK(X86_PGOOD_PP1050)
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#define IN_PGOOD_VCORE X86_SIGNAL_MASK(X86_PGOOD_VCORE)
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#define IN_PCH_SLP_S0n_DEASSERTED X86_SIGNAL_MASK(X86_PCH_SLP_S0n_DEASSERTED)
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#define IN_PCH_SLP_S3n_DEASSERTED X86_SIGNAL_MASK(X86_PCH_SLP_S3n_DEASSERTED)
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#define IN_PCH_SLP_S5n_DEASSERTED X86_SIGNAL_MASK(X86_PCH_SLP_S5n_DEASSERTED)
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#define IN_PCH_SLP_SUSn_DEASSERTED X86_SIGNAL_MASK(X86_PCH_SLP_SUSn_DEASSERTED)
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/* All always-on supplies */
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#define IN_PGOOD_ALWAYS_ON (IN_PGOOD_PP5000)
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/* All non-core power rails */
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#define IN_PGOOD_ALL_NONCORE (IN_PGOOD_PP1350 | IN_PGOOD_PP1050)
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/* All core power rails */
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#define IN_PGOOD_ALL_CORE (IN_PGOOD_VCORE)
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/* Rails required for S3 */
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#define IN_PGOOD_S3 (IN_PGOOD_ALWAYS_ON | IN_PGOOD_PP1350)
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/* Rails required for S0 */
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#define IN_PGOOD_S0 (IN_PGOOD_ALWAYS_ON | IN_PGOOD_ALL_NONCORE)
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/* All PM_SLP signals from PCH deasserted */
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#define IN_ALL_PM_SLP_DEASSERTED (IN_PCH_SLP_S3n_DEASSERTED | \
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IN_PCH_SLP_S5n_DEASSERTED)
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/* All inputs in the right state for S0 */
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#define IN_ALL_S0 (IN_PGOOD_ALWAYS_ON | IN_PGOOD_ALL_NONCORE | \
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IN_PGOOD_ALL_CORE | IN_ALL_PM_SLP_DEASSERTED)
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static int throttle_cpu; /* Throttle CPU? */
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static int pause_in_s5; /* Pause in S5 when shutting down? */
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void chipset_force_shutdown(void)
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{
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CPRINTF("[%T %s()]\n", __func__);
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/*
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* Force x86 off. This condition will reset once the state machine
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* transitions to G3.
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*/
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gpio_set_level(GPIO_PCH_DPWROK, 0);
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gpio_set_level(GPIO_PCH_RSMRST_L, 0);
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}
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void chipset_reset(int cold_reset)
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{
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CPRINTF("[%T %s(%d)]\n", __func__, cold_reset);
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if (cold_reset) {
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/*
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* Drop and restore PWROK. This causes the PCH to reboot,
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* regardless of its after-G3 setting. This type of reboot
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* causes the PCH to assert PLTRST#, SLP_S3#, and SLP_S5#, so
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* we actually drop power to the rest of the system (hence, a
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* "cold" reboot).
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*/
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/* Ignore if PWROK is already low */
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if (gpio_get_level(GPIO_PCH_PWROK) == 0)
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return;
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/* PWROK must deassert for at least 3 RTC clocks = 91 us */
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gpio_set_level(GPIO_PCH_PWROK, 0);
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udelay(100);
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gpio_set_level(GPIO_PCH_PWROK, 1);
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} else {
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/*
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* Send a RCIN# pulse to the PCH. This just causes it to
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* assert INIT# to the CPU without dropping power or asserting
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* PLTRST# to reset the rest of the system. Pulse must be at
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* least 16 PCI clocks long = 500 ns.
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*/
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/*
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* The gpio pin used by the EC (PL6) does not behave in the
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* correct manner when configured as open drain. In order to
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* mimic open drain, the pin is initially configured as an
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* input. When it is needed to drive low, the flags are
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* updated which changes the pin to an output and drives the
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* pin low. Note that this logic will work fine even on boards
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* where RCIN# has been moved to a different pin, so there's no
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* need to #ifdef this behavior. See crosbug.com/p/20173.
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*/
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gpio_set_flags(GPIO_PCH_RCIN_L, GPIO_OUT_LOW);
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udelay(10);
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gpio_set_flags(GPIO_PCH_RCIN_L, GPIO_INPUT);
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}
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}
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void chipset_throttle_cpu(int throttle)
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{
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if (chipset_in_state(CHIPSET_STATE_ON))
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gpio_set_level(GPIO_CPU_PROCHOT, throttle);
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}
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enum x86_state x86_chipset_init(void)
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{
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/* Enable interrupts for our GPIOs */
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gpio_enable_interrupt(GPIO_PCH_EDP_VDD_EN);
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/*
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* If we're switching between images without rebooting, see if the x86
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* is already powered on; if so, leave it there instead of cycling
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* through G3.
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*/
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if (system_jumped_to_this_image()) {
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if ((x86_get_signals() & IN_ALL_S0) == IN_ALL_S0) {
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/* Disable idle task deep sleep when in S0. */
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disable_sleep(SLEEP_MASK_AP_RUN);
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CPRINTF("[%T x86 already in S0]\n");
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return X86_S0;
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} else {
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/* Force all signals to their G3 states */
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CPRINTF("[%T x86 forcing G3]\n");
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gpio_set_level(GPIO_PCH_PWROK, 0);
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gpio_set_level(GPIO_VCORE_EN, 0);
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gpio_set_level(GPIO_SUSP_VR_EN, 0);
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gpio_set_level(GPIO_PP1350_EN, 0);
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gpio_set_level(GPIO_EC_EDP_VDD_EN, 0);
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gpio_set_level(GPIO_PP3300_DX_EN, 0);
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gpio_set_level(GPIO_PP5000_EN, 0);
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gpio_set_level(GPIO_PCH_RSMRST_L, 0);
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gpio_set_level(GPIO_PCH_DPWROK, 0);
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wireless_enable(0);
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}
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}
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return X86_G3;
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}
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enum x86_state x86_handle_state(enum x86_state state)
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{
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switch (state) {
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case X86_G3:
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break;
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case X86_S5:
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if (gpio_get_level(GPIO_PCH_SLP_S5_L) == 1)
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return X86_S5S3; /* Power up to next state */
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break;
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case X86_S3:
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/*
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* If lid is closed; hold touchscreen in reset to cut power
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* usage. If lid is open, take touchscreen out of reset so it
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* can wake the processor. Chipset task is awakened on lid
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* switch transitions.
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*/
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gpio_set_level(GPIO_TOUCHSCREEN_RESET_L, lid_is_open());
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/* Check for state transitions */
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if (!x86_has_signals(IN_PGOOD_S3)) {
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/* Required rail went away */
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chipset_force_shutdown();
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return X86_S3S5;
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} else if (gpio_get_level(GPIO_PCH_SLP_S3_L) == 1) {
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/* Power up to next state */
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return X86_S3S0;
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} else if (gpio_get_level(GPIO_PCH_SLP_S5_L) == 0) {
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/* Power down to next state */
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return X86_S3S5;
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}
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break;
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case X86_S0:
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if (!x86_has_signals(IN_PGOOD_S0)) {
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/* Required rail went away */
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chipset_force_shutdown();
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return X86_S0S3;
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} else if (gpio_get_level(GPIO_PCH_SLP_S3_L) == 0) {
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/* Power down to next state */
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return X86_S0S3;
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}
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break;
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case X86_G3S5:
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/*
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* Wait 10ms after +3VALW good, since that powers VccDSW and
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* VccSUS.
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*/
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msleep(10);
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/* Assert DPWROK */
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gpio_set_level(GPIO_PCH_DPWROK, 1);
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if (x86_wait_signals(IN_PCH_SLP_SUSn_DEASSERTED)) {
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chipset_force_shutdown();
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return X86_G3;
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}
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gpio_set_level(GPIO_SUSP_VR_EN, 1);
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if (x86_wait_signals(IN_PGOOD_PP1050)) {
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chipset_force_shutdown();
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return X86_G3;
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}
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/* Deassert RSMRST# */
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gpio_set_level(GPIO_PCH_RSMRST_L, 1);
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/* Wait 5ms for SUSCLK to stabilize */
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msleep(5);
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return X86_S5;
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case X86_S5S3:
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/* Enable PP5000 (5V) rail. */
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gpio_set_level(GPIO_PP5000_EN, 1);
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if (x86_wait_signals(IN_PGOOD_PP5000)) {
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chipset_force_shutdown();
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return X86_G3;
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}
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/* Wait for the always-on rails to be good */
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if (x86_wait_signals(IN_PGOOD_ALWAYS_ON)) {
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chipset_force_shutdown();
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return X86_S5G3;
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}
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/* Turn on power to RAM */
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gpio_set_level(GPIO_PP1350_EN, 1);
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if (x86_wait_signals(IN_PGOOD_S3)) {
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chipset_force_shutdown();
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return X86_S5G3;
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}
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/*
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* Enable touchpad power so it can wake the system from
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* suspend.
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*/
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gpio_set_level(GPIO_ENABLE_TOUCHPAD, 1);
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/* Call hooks now that rails are up */
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hook_notify(HOOK_CHIPSET_STARTUP);
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return X86_S3;
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case X86_S3S0:
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/* Turn on power rails */
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gpio_set_level(GPIO_PP3300_DX_EN, 1);
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/* Enable wireless */
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wireless_enable(EC_WIRELESS_SWITCH_ALL);
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/*
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* Make sure touchscreen is out if reset (even if the lid is
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* still closed); it may have been turned off if the lid was
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* closed in S3.
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*/
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gpio_set_level(GPIO_TOUCHSCREEN_RESET_L, 1);
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/* Wait for non-core power rails good */
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if (x86_wait_signals(IN_PGOOD_S0)) {
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chipset_force_shutdown();
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wireless_enable(0);
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gpio_set_level(GPIO_EC_EDP_VDD_EN, 0);
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gpio_set_level(GPIO_PP3300_DX_EN, 0);
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gpio_set_level(GPIO_TOUCHSCREEN_RESET_L, 0);
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return X86_S3;
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}
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/*
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* Enable +CPU_CORE. The CPU itself will request the supplies
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* when it's ready.
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*/
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gpio_set_level(GPIO_VCORE_EN, 1);
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/* Call hooks now that rails are up */
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hook_notify(HOOK_CHIPSET_RESUME);
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/*
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* Disable idle task deep sleep. This means that the low
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* power idle task will not go into deep sleep while in S0.
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*/
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disable_sleep(SLEEP_MASK_AP_RUN);
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/* Wait 99ms after all voltages good */
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msleep(99);
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/*
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* Throttle CPU if necessary. This should only be asserted
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* when +VCCP is powered (it is by now).
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*/
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gpio_set_level(GPIO_CPU_PROCHOT, throttle_cpu);
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/* Set PCH_PWROK */
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gpio_set_level(GPIO_PCH_PWROK, 1);
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gpio_set_level(GPIO_SYS_PWROK, 1);
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return X86_S0;
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case X86_S0S3:
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/* Call hooks before we remove power rails */
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hook_notify(HOOK_CHIPSET_SUSPEND);
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/* Clear PCH_PWROK */
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gpio_set_level(GPIO_SYS_PWROK, 0);
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gpio_set_level(GPIO_PCH_PWROK, 0);
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/* Wait 40ns */
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udelay(1);
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/* Disable +CPU_CORE */
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gpio_set_level(GPIO_VCORE_EN, 0);
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/* Disable wireless */
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wireless_enable(0);
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/*
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* Enable idle task deep sleep. Allow the low power idle task
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* to go into deep sleep in S3 or lower.
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*/
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enable_sleep(SLEEP_MASK_AP_RUN);
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/*
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* Deassert prochot since CPU is off and we're about to drop
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* +VCCP.
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*/
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gpio_set_level(GPIO_CPU_PROCHOT, 0);
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/* Turn off power rails */
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gpio_set_level(GPIO_EC_EDP_VDD_EN, 0);
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gpio_set_level(GPIO_PP3300_DX_EN, 0);
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return X86_S3;
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case X86_S3S5:
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/* Call hooks before we remove power rails */
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hook_notify(HOOK_CHIPSET_SHUTDOWN);
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/* Disable touchpad power */
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gpio_set_level(GPIO_ENABLE_TOUCHPAD, 0);
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/* Turn off power to RAM */
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gpio_set_level(GPIO_PP1350_EN, 0);
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/* Disable PP5000 (5V) rail. */
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gpio_set_level(GPIO_PP5000_EN, 0);
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/* Start shutting down */
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return pause_in_s5 ? X86_S5 : X86_S5G3;
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case X86_S5G3:
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/* Deassert DPWROK, assert RSMRST# */
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gpio_set_level(GPIO_PCH_DPWROK, 0);
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gpio_set_level(GPIO_PCH_RSMRST_L, 0);
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gpio_set_level(GPIO_SUSP_VR_EN, 0);
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return X86_G3;
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}
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return state;
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}
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void power_interrupt(enum gpio_signal signal)
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{
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/* Pass through eDP VDD enable from PCH */
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gpio_set_level(GPIO_EC_EDP_VDD_EN, gpio_get_level(GPIO_PCH_EDP_VDD_EN));
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}
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static int host_command_gsv(struct host_cmd_handler_args *args)
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{
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const struct ec_params_get_set_value *p = args->params;
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struct ec_response_get_set_value *r = args->response;
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if (p->flags & EC_GSV_SET)
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pause_in_s5 = p->value;
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r->value = pause_in_s5;
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args->response_size = sizeof(*r);
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return EC_RES_SUCCESS;
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}
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DECLARE_HOST_COMMAND(EC_CMD_GSV_PAUSE_IN_S5,
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host_command_gsv,
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EC_VER_MASK(0));
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static int console_command_gsv(int argc, char **argv)
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{
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if (argc > 1 && !parse_bool(argv[1], &pause_in_s5))
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return EC_ERROR_INVAL;
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ccprintf("pause_in_s5 = %s\n", pause_in_s5 ? "on" : "off");
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return EC_SUCCESS;
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}
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DECLARE_CONSOLE_COMMAND(pause_in_s5, console_command_gsv,
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"[on|off]",
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"Should the AP pause in S5 during shutdown?",
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NULL);
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