mirror of
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When the EC CPU is running at a decreased clock frequency, frequent
keyboard scans can starve other EC tasks of CPU and lead to dropped
data or watchdog timeouts.
Enforce a minimum number of EC clocks between keyboard scans to
prevent this from happening. The default chosen (16000 clocks) is
equal to the shortest post-scan delay (1 ms) of any current board when
the AP is in S0, so this should have no effect when the AP is in S0.
When the AP is in S3 or S5, we don't need to scan the keyboard as
frequently anyway. This can be overridden on a per-board basis for
future boards if needed.
BUG=chrome-os-partner:23247
BRANCH=pit
TEST=apshutdown, then hold down a key for 10 seconds. Should not see a
watchdog reset.
Change-Id: I228f53a32ad4769f6a137a9ab06903111bea115d
Signed-off-by: Randall Spangler <rspangler@chromium.org>
Reviewed-on: https://chromium-review.googlesource.com/172895
Reviewed-by: Vic Yang <victoryang@chromium.org>
680 lines
17 KiB
C
680 lines
17 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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/* Keyboard scanner module for Chrome EC */
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#include "chipset.h"
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#include "clock.h"
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#include "common.h"
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#include "console.h"
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#include "hooks.h"
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#include "host_command.h"
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#include "keyboard_config.h"
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#include "keyboard_protocol.h"
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#include "keyboard_raw.h"
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#include "keyboard_scan.h"
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#include "lid_switch.h"
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#include "switch.h"
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#include "system.h"
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#include "task.h"
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#include "timer.h"
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#include "util.h"
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/* Console output macros */
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#define CPUTS(outstr) cputs(CC_KEYSCAN, outstr)
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#define CPRINTF(format, args...) cprintf(CC_KEYSCAN, format, ## args)
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#define SCAN_TIME_COUNT 32 /* Number of last scan times to track */
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#ifndef CONFIG_KEYBOARD_POST_SCAN_CLOCKS
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/*
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* Default delay in clocks; this was experimentally determined to be long
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* enough to avoid watchdog warnings or I2C errors on a typical notebook
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* config on STM32.
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*/
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#define CONFIG_KEYBOARD_POST_SCAN_CLOCKS 16000
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#endif
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#ifndef CONFIG_KEYBOARD_BOARD_CONFIG
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/* Use default keyboard scan config, because board didn't supply one */
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struct keyboard_scan_config keyscan_config = {
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.output_settle_us = 50,
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.debounce_down_us = 9 * MSEC,
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.debounce_up_us = 30 * MSEC,
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.scan_period_us = 3 * MSEC,
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.min_post_scan_delay_us = 1000,
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.poll_timeout_us = 100 * MSEC,
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.actual_key_mask = {
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0x14, 0xff, 0xff, 0xff, 0xff, 0xf5, 0xff,
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0xa4, 0xff, 0xf6, 0x55, 0xfa, 0xca /* full set */
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},
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};
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#endif
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/* Boot key list. Must be in same order as enum boot_key. */
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struct boot_key_entry {
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uint8_t mask_index;
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uint8_t mask_value;
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};
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static const struct boot_key_entry boot_key_list[] = {
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{0, 0x00}, /* (none) */
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{KEYBOARD_COL_ESC, KEYBOARD_MASK_ESC}, /* Esc */
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{KEYBOARD_COL_DOWN, KEYBOARD_MASK_DOWN}, /* Down-arrow */
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};
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static enum boot_key boot_key_value = BOOT_KEY_OTHER;
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static uint8_t debounced_state[KEYBOARD_COLS]; /* Debounced key matrix */
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static uint8_t prev_state[KEYBOARD_COLS]; /* Matrix from previous scan */
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static uint8_t debouncing[KEYBOARD_COLS]; /* Mask of keys being debounced */
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static uint8_t simulated_key[KEYBOARD_COLS]; /* Keys simulated-pressed */
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static uint32_t scan_time[SCAN_TIME_COUNT]; /* Times of last scans */
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static int scan_time_index; /* Current scan_time[] index */
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/* Index into scan_time[] when each key started debouncing */
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static uint8_t scan_edge_index[KEYBOARD_COLS][KEYBOARD_ROWS];
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/* Minimum delay between keyboard scans based on current clock frequency */
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static uint32_t post_scan_clock_us;
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/*
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* Print all keyboard scan state changes? Off by default because it generates
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* a lot of debug output, which makes the saved EC console data less useful.
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*/
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static int print_state_changes;
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static int enable_scanning = 1; /* Must init to 1 for scanning at boot */
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static int is_scanning_enabled(void)
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{
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#ifdef CONFIG_LID_SWITCH
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/* Scanning is never enabled when lid is closed */
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if (!lid_is_open())
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return 0;
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#endif
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return enable_scanning;
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}
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/**
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* Print the keyboard state.
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*
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* @param state State array to print
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* @param msg Description of state
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*/
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static void print_state(const uint8_t *state, const char *msg)
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{
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int c;
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CPRINTF("[%T KB %s:", msg);
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for (c = 0; c < KEYBOARD_COLS; c++) {
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if (state[c])
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CPRINTF(" %02x", state[c]);
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else
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CPUTS(" --");
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}
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CPUTS("]\n");
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}
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/**
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* Simulate a keypress.
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*
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* @param row Row of key
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* @param col Column of key
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* @param pressed Non-zero if pressed, zero if released
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*/
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static void simulate_key(int row, int col, int pressed)
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{
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if ((simulated_key[col] & (1 << row)) == ((pressed ? 1 : 0) << row))
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return; /* No change */
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simulated_key[col] ^= (1 << row);
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print_state(simulated_key, "simulated ");
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/* Wake the task to handle changes in simulated keys */
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task_wake(TASK_ID_KEYSCAN);
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}
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/**
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* Read the raw keyboard matrix state.
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*
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* Used in pre-init, so must not make task-switching-dependent calls; udelay()
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* is ok because it's a spin-loop.
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*
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* @param state Destination for new state (must be KEYBOARD_COLS long).
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*
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* @return 1 if at least one key is pressed, else zero.
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*/
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static int read_matrix(uint8_t *state)
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{
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int c;
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uint8_t r;
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int pressed = 0;
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for (c = 0; c < KEYBOARD_COLS; c++) {
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/*
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* Stop if scanning becomes disabled. Check enable_cscanning
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* instead of is_scanning_enabled() so that we can scan the
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* matrix at boot time before the lid switch is readable.
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*/
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if (!enable_scanning)
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break;
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/* Select column, then wait a bit for it to settle */
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keyboard_raw_drive_column(c);
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udelay(keyscan_config.output_settle_us);
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/* Read the row state */
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r = keyboard_raw_read_rows();
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/* Mask off keys that don't exist on the actual keyboard */
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r &= keyscan_config.actual_key_mask[c];
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/* Add in simulated keypresses */
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r |= simulated_key[c];
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#ifdef CONFIG_KEYBOARD_TEST
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/* Use simulated keyscan sequence instead if testing active */
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r = keyscan_seq_get_scan(c, r);
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#endif
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state[c] = r;
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pressed |= r;
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}
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keyboard_raw_drive_column(KEYBOARD_COLUMN_NONE);
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return pressed ? 1 : 0;
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}
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/**
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* Check special runtime key combinations.
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*
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* @param state Keyboard state to use when checking keys.
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*
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* @return 1 if a special key was pressed, 0 if not
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*/
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static int check_runtime_keys(const uint8_t *state)
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{
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int num_press = 0;
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int c;
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/*
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* All runtime key combos are (right or left ) alt + volume up + (some
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* key NOT on the same col as alt or volume up )
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*/
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if (state[KEYBOARD_COL_VOL_UP] != KEYBOARD_MASK_VOL_UP)
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return 0;
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if (state[KEYBOARD_COL_RIGHT_ALT] != KEYBOARD_MASK_RIGHT_ALT &&
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state[KEYBOARD_COL_LEFT_ALT] != KEYBOARD_MASK_LEFT_ALT)
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return 0;
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/*
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* Count number of columns with keys pressed. We know two columns are
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* pressed for volume up and alt, so if only one more key is pressed
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* there will be exactly 3 non-zero columns.
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*/
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for (c = 0; c < KEYBOARD_COLS; c++) {
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if (state[c])
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num_press++;
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}
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if (num_press != 3)
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return 0;
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/* Check individual keys */
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if (state[KEYBOARD_COL_KEY_R] == KEYBOARD_MASK_KEY_R) {
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/* R = reboot */
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CPRINTF("[%T KB warm reboot]\n");
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keyboard_clear_buffer();
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chipset_reset(0);
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return 1;
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} else if (state[KEYBOARD_COL_KEY_H] == KEYBOARD_MASK_KEY_H) {
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/* H = hibernate */
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CPRINTF("[%T KB hibernate]\n");
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system_hibernate(0, 0);
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return 1;
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}
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return 0;
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}
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/**
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* Check for ghosting in the keyboard state.
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*
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* Assumes that the state has already been masked with the actual key mask, so
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* that coords which don't correspond with actual keys don't trigger ghosting
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* detection.
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*
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* @param state Keyboard state to check.
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*
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* @return 1 if ghosting detected, else 0.
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*/
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static int has_ghosting(const uint8_t *state)
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{
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int c, c2;
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for (c = 0; c < KEYBOARD_COLS; c++) {
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if (!state[c])
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continue;
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for (c2 = c + 1; c2 < KEYBOARD_COLS; c2++) {
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/*
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* A little bit of cleverness here. Ghosting happens
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* if 2 columns share at least 2 keys. So we OR the
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* columns together and then see if more than one bit
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* is set. x&(x-1) is non-zero only if x has more than
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* one bit set.
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*/
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uint8_t common = state[c] & state[c2];
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if (common & (common - 1))
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return 1;
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}
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}
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return 0;
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}
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/**
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* Update keyboard state using low-level interface to read keyboard.
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*
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* @param state Keyboard state to update.
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*
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* @return 1 if any key is still pressed, 0 if no key is pressed.
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*/
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static int check_keys_changed(uint8_t *state)
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{
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int any_pressed = 0;
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int c, i;
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int any_change = 0;
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static uint8_t new_state[KEYBOARD_COLS];
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uint32_t tnow = get_time().le.lo;
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/* Save the current scan time */
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if (++scan_time_index >= SCAN_TIME_COUNT)
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scan_time_index = 0;
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scan_time[scan_time_index] = tnow;
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/* Read the raw key state */
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any_pressed = read_matrix(new_state);
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/* Ignore if so many keys are pressed that we're ghosting */
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/*
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* TODO: maybe in this case we should reset all the debounce times,
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* because in the ghosting case we're not paying attention to any of
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* the keys which aren't ghosting.
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*/
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if (has_ghosting(new_state))
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return any_pressed;
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/* Check for changes between previous scan and this one */
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for (c = 0; c < KEYBOARD_COLS; c++) {
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int diff = new_state[c] ^ prev_state[c];
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if (!diff)
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continue;
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for (i = 0; i < KEYBOARD_ROWS; i++) {
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if (diff & (1 << i))
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scan_edge_index[c][i] = scan_time_index;
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}
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debouncing[c] |= diff;
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prev_state[c] = new_state[c];
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}
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/* Check for keys which are done debouncing */
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for (c = 0; c < KEYBOARD_COLS; c++) {
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int debc = debouncing[c];
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if (!debc)
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continue;
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for (i = 0; i < KEYBOARD_ROWS; i++) {
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int mask = 1 << i;
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int new_mask = new_state[c] & mask;
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/* Are we done debouncing this key? */
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if (!(debc & mask))
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continue; /* Not debouncing this key */
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if (tnow - scan_time[scan_edge_index[c][i]] <
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(new_mask ? keyscan_config.debounce_down_us :
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keyscan_config.debounce_up_us))
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continue; /* Not done debouncing */
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debouncing[c] &= ~mask;
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/* Did the key change from its previous state? */
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if ((state[c] & mask) == new_mask)
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continue; /* No */
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state[c] ^= mask;
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any_change = 1;
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#ifdef CONFIG_KEYBOARD_PROTOCOL_8042
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/* Inform keyboard module if scanning is enabled */
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if (is_scanning_enabled())
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keyboard_state_changed(i, c, new_mask ? 1 : 0);
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#endif
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}
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}
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if (any_change) {
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#ifdef CONFIG_KEYBOARD_SUPPRESS_NOISE
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/* Suppress keyboard noise */
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keyboard_suppress_noise();
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#endif
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if (print_state_changes)
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print_state(state, "state");
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#ifdef PRINT_SCAN_TIMES
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/* Print delta times from now back to each previous scan */
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for (i = 0; i < SCAN_TIME_COUNT; i++) {
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int tnew = scan_time[
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(SCAN_TIME_COUNT + scan_time_index - i) %
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SCAN_TIME_COUNT];
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CPRINTF(" %d", tnow - tnew);
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}
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CPRINTF("\n");
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#endif
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/* Swallow special keys */
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if (check_runtime_keys(state))
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return 0;
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#ifdef CONFIG_KEYBOARD_PROTOCOL_MKBP
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keyboard_fifo_add(state);
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#endif
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}
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return any_pressed;
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}
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/*
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* Return non-zero if the specified key is pressed, with at most the keys used
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* for keyboard-controlled reset also pressed.
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*/
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static int check_key(const uint8_t *state, int index, int mask)
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{
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uint8_t allowed_mask[KEYBOARD_COLS] = {0};
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int c;
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/* Check for the key */
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if (mask && !(state[index] & mask))
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return 0;
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/* Check for other allowed keys */
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allowed_mask[index] |= mask;
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allowed_mask[KEYBOARD_COL_REFRESH] |= KEYBOARD_MASK_REFRESH;
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for (c = 0; c < KEYBOARD_COLS; c++) {
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if (state[c] & ~allowed_mask[c])
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return 0; /* Disallowed key pressed */
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}
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return 1;
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}
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/**
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* Check what boot key is down, if any.
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*
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* @param state Keyboard state at boot.
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*
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* @return the key which is down, or BOOT_KEY_OTHER if an unrecognized
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* key combination is down or this isn't the right type of boot to look at
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* boot keys.
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*/
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static enum boot_key check_boot_key(const uint8_t *state)
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{
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const struct boot_key_entry *k = boot_key_list;
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int i;
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/*
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* If we jumped to this image, ignore boot keys. This prevents
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* re-triggering events in RW firmware that were already processed by
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* RO firmware.
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*/
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if (system_jumped_to_this_image())
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return BOOT_KEY_OTHER;
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/* If reset was not caused by reset pin, refresh must be held down */
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if (!(system_get_reset_flags() & RESET_FLAG_RESET_PIN) &&
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!(state[KEYBOARD_COL_REFRESH] & KEYBOARD_MASK_REFRESH))
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return BOOT_KEY_OTHER;
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/* Check what single key is down */
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for (i = 0; i < ARRAY_SIZE(boot_key_list); i++, k++) {
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if (check_key(state, k->mask_index, k->mask_value)) {
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CPRINTF("[%T KB boot key %d]\n", i);
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return i;
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}
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}
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return BOOT_KEY_OTHER;
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}
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static void keyboard_freq_change(void)
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{
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post_scan_clock_us = (CONFIG_KEYBOARD_POST_SCAN_CLOCKS * 1000) /
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(clock_get_freq() / 1000);
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}
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DECLARE_HOOK(HOOK_FREQ_CHANGE, keyboard_freq_change, HOOK_PRIO_DEFAULT);
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/*****************************************************************************/
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/* Interface */
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struct keyboard_scan_config *keyboard_scan_get_config(void)
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{
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return &keyscan_config;
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}
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enum boot_key keyboard_scan_get_boot_key(void)
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{
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return boot_key_value;
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}
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const uint8_t *keyboard_scan_get_state(void)
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{
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return debounced_state;
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}
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void keyboard_scan_init(void)
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{
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/* Configure GPIO */
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keyboard_raw_init();
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/* Tri-state the columns */
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keyboard_raw_drive_column(KEYBOARD_COLUMN_NONE);
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/* Initialize raw state */
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read_matrix(debounced_state);
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memcpy(prev_state, debounced_state, sizeof(prev_state));
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/* Check for keys held down at boot */
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boot_key_value = check_boot_key(debounced_state);
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/* Trigger event if recovery key was pressed */
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if (boot_key_value == BOOT_KEY_ESC)
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host_set_single_event(EC_HOST_EVENT_KEYBOARD_RECOVERY);
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}
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void keyboard_scan_task(void)
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{
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timestamp_t poll_deadline, start;
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int wait_time;
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print_state(debounced_state, "init state");
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keyboard_raw_task_start();
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/* Set initial clock frequency-based minimum delay between scans */
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keyboard_freq_change();
|
|
|
|
while (1) {
|
|
/* Enable all outputs */
|
|
CPRINTF("[%T KB wait]\n");
|
|
if (is_scanning_enabled())
|
|
keyboard_raw_drive_column(KEYBOARD_COLUMN_ALL);
|
|
keyboard_raw_enable_interrupt(1);
|
|
|
|
/* Wait for scanning enabled and key pressed. */
|
|
do {
|
|
/*
|
|
* Don't wait if scanning is enabled and a key is
|
|
* already pressed. This prevents a race between the
|
|
* user pressing a key and enable_interrupt()
|
|
* starting to pay attention to edges.
|
|
*/
|
|
if (!keyboard_raw_read_rows() || !is_scanning_enabled())
|
|
task_wait_event(-1);
|
|
} while (!is_scanning_enabled());
|
|
|
|
/* Enter polling mode */
|
|
CPRINTF("[%T KB poll]\n");
|
|
keyboard_raw_enable_interrupt(0);
|
|
keyboard_raw_drive_column(KEYBOARD_COLUMN_NONE);
|
|
|
|
/* Busy polling keyboard state. */
|
|
while (is_scanning_enabled()) {
|
|
start = get_time();
|
|
|
|
/* Check for keys down */
|
|
if (check_keys_changed(debounced_state)) {
|
|
poll_deadline.val = start.val
|
|
+ keyscan_config.poll_timeout_us;
|
|
} else if (timestamp_expired(poll_deadline, &start)) {
|
|
break;
|
|
}
|
|
|
|
/* Delay between scans */
|
|
wait_time = keyscan_config.scan_period_us -
|
|
(get_time().val - start.val);
|
|
|
|
if (wait_time < keyscan_config.min_post_scan_delay_us)
|
|
wait_time =
|
|
keyscan_config.min_post_scan_delay_us;
|
|
|
|
if (wait_time < post_scan_clock_us)
|
|
wait_time = post_scan_clock_us;
|
|
|
|
usleep(wait_time);
|
|
}
|
|
}
|
|
}
|
|
|
|
void keyboard_scan_enable(int enable)
|
|
{
|
|
enable_scanning = enable;
|
|
|
|
if (enable) {
|
|
/*
|
|
* A power button press had tri-stated all columns (see the
|
|
* 'else' statement below); we need a wake-up to unlock the
|
|
* task_wait_event() loop after enable_interrupt().
|
|
*/
|
|
task_wake(TASK_ID_KEYSCAN);
|
|
} else {
|
|
keyboard_raw_drive_column(KEYBOARD_COLUMN_NONE);
|
|
keyboard_clear_buffer();
|
|
}
|
|
}
|
|
|
|
#ifdef CONFIG_LID_SWITCH
|
|
|
|
static void keyboard_lid_change(void)
|
|
{
|
|
/* If lid is open, wake the keyboard task */
|
|
if (lid_is_open())
|
|
task_wake(TASK_ID_KEYSCAN);
|
|
}
|
|
DECLARE_HOOK(HOOK_LID_CHANGE, keyboard_lid_change, HOOK_PRIO_DEFAULT);
|
|
|
|
#endif
|
|
|
|
/*****************************************************************************/
|
|
/* Host commands */
|
|
|
|
static int mkbp_command_simulate_key(struct host_cmd_handler_args *args)
|
|
{
|
|
const struct ec_params_mkbp_simulate_key *p = args->params;
|
|
|
|
/* Only available on unlocked systems */
|
|
if (system_is_locked())
|
|
return EC_RES_ACCESS_DENIED;
|
|
|
|
if (p->col >= KEYBOARD_COLS || p->row >= KEYBOARD_ROWS)
|
|
return EC_RES_INVALID_PARAM;
|
|
|
|
simulate_key(p->row, p->col, p->pressed);
|
|
|
|
return EC_RES_SUCCESS;
|
|
}
|
|
DECLARE_HOST_COMMAND(EC_CMD_MKBP_SIMULATE_KEY,
|
|
mkbp_command_simulate_key,
|
|
EC_VER_MASK(0));
|
|
|
|
/*****************************************************************************/
|
|
/* Console commands */
|
|
|
|
static int command_ksstate(int argc, char **argv)
|
|
{
|
|
if (argc > 1 && !parse_bool(argv[1], &print_state_changes))
|
|
return EC_ERROR_PARAM1;
|
|
|
|
print_state(debounced_state, "debounced ");
|
|
print_state(prev_state, "prev ");
|
|
print_state(debouncing, "debouncing");
|
|
|
|
ccprintf("Keyboard scan state printing %s\n",
|
|
print_state_changes ? "on" : "off");
|
|
return EC_SUCCESS;
|
|
}
|
|
DECLARE_CONSOLE_COMMAND(ksstate, command_ksstate,
|
|
"ksstate [on | off]",
|
|
"Show or toggle printing keyboard scan state",
|
|
NULL);
|
|
|
|
static int command_keyboard_press(int argc, char **argv)
|
|
{
|
|
if (argc == 1) {
|
|
int i, j;
|
|
|
|
ccputs("Simulated keys:\n");
|
|
for (i = 0; i < KEYBOARD_COLS; ++i) {
|
|
if (simulated_key[i] == 0)
|
|
continue;
|
|
for (j = 0; j < KEYBOARD_ROWS; ++j)
|
|
if (simulated_key[i] & (1 << j))
|
|
ccprintf("\t%d %d\n", i, j);
|
|
}
|
|
|
|
} else if (argc == 4) {
|
|
int r, c, p;
|
|
char *e;
|
|
|
|
c = strtoi(argv[1], &e, 0);
|
|
if (*e || c < 0 || c >= KEYBOARD_COLS)
|
|
return EC_ERROR_PARAM1;
|
|
|
|
r = strtoi(argv[2], &e, 0);
|
|
if (*e || r < 0 || r >= KEYBOARD_ROWS)
|
|
return EC_ERROR_PARAM2;
|
|
|
|
p = strtoi(argv[3], &e, 0);
|
|
if (*e || p < 0 || p > 1)
|
|
return EC_ERROR_PARAM3;
|
|
|
|
simulate_key(r, c, p);
|
|
}
|
|
|
|
return EC_SUCCESS;
|
|
}
|
|
DECLARE_CONSOLE_COMMAND(kbpress, command_keyboard_press,
|
|
"[col] [row] [0 | 1]",
|
|
"Simulate keypress",
|
|
NULL);
|