mirror of
git://projects.qi-hardware.com/openwrt-xburst.git
synced 2024-11-10 19:02:28 +02:00
d4aeb1b5c8
git-svn-id: svn://svn.openwrt.org/openwrt/trunk@6848 3c298f89-4303-0410-b956-a3cf2f4a3e73
583 lines
19 KiB
C
583 lines
19 KiB
C
/*
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<:copyright-gpl
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Copyright 2002 Broadcom Corp. All Rights Reserved.
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This program is free software; you can distribute it and/or modify it
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under the terms of the GNU General Public License (Version 2) as
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published by the Free Software Foundation.
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This program is distributed in the hope it will be useful, but WITHOUT
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ANY WARRANTY; without even the implied warranty of MERCHANTABILITY or
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FITNESS FOR A PARTICULAR PURPOSE. See the GNU General Public License
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for more details.
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You should have received a copy of the GNU General Public License along
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with this program; if not, write to the Free Software Foundation, Inc.,
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59 Temple Place - Suite 330, Boston MA 02111-1307, USA.
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:>
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*/
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/***************************************************************************
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* File Name : bcm63xx_led.c
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*
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* Description:
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*
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* This file contains bcm963xx board led control API functions.
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*
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* To use it, do the following
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*
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* 1). define in the board.c the following led mappping (this is for 6345GW board):
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* const LED_MAP_PAIR cLedMapping45GW[] =
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* { // led name Initial state physical pin (ledMask)
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* {kLedUsb, kLedStateOff, GPIO_LED_PIN_7},
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* {kLedAdsl, kLedStateOff, GPIO_LED_PIN_8},
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* {kLedPPP, kLedStateOff, GPIO_LED_PIN_9}, // PPP and WanData share PIN_9
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* {kLedWanData, kLedStateOff, GPIO_LED_PIN_9},
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* {kLedWireless, kLedStateOff, GPIO_LED_PIN_10},
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* {kLedEnd, kLedStateOff, 0 } // NOTE: kLedEnd has to be at the end.
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*
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* 2). };To initialize led API and initial state of the leds, call the following function with the mapping
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* pointer from the above struct
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*
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* boardLedInit((PLED_MAP_PAIR) &cLedMapping45R);
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*
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* 3). Sample call for kernel mode:
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*
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* kerSysLedCtrl(kLedAdsl, kLedStateBlinkOnce); // kLedxxx defines in board.h
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*
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* 4). Sample call for user mode
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*
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* sysLedCtrl(kLedAdsl, kLedStateBlinkOnce); // kLedxxx defines in board_api.h
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*
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*
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* Created on : 10/28/2002 seanl
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*
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***************************************************************************/
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/* Includes. */
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#include <linux/init.h>
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#include <linux/fs.h>
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#include <linux/capability.h>
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#include <linux/slab.h>
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#include <linux/errno.h>
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#include <linux/module.h>
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#include <linux/netdevice.h>
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#include <asm/uaccess.h>
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#include <bcm_map_part.h>
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#include <board.h>
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#define k100ms (HZ / 10) // ~100 ms
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#define kFastBlinkCount 0 // ~100ms
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#define kSlowBlinkCount 5 // ~600ms
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#define MAX_VIRT_LEDS 12
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// uncomment // for debug led
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//#define DEBUG_LED
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// global variables:
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struct timer_list gLedTimer;
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int gTimerOn = FALSE;
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int gLedCount = 0;
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typedef struct ledinfo
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{
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unsigned short ledMask; // mask for led: ie. giop 10 = 0x0400
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unsigned short ledActiveLow; // GPIO bit reset to turn on LED
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unsigned short ledMaskFail; // mask for led: ie. giop 10 = 0x0400
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unsigned short ledActiveLowFail;// GPIO bit reset to turn on LED
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BOARD_LED_STATE ledState; // current led state
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BOARD_LED_STATE savedLedState; // used in blink once for restore to the orignal ledState
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int blinkCountDown; // if == 0, do blink (toggle). Is assgined value and dec by 1 at each timer.
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} LED_INFO, *PLED_INFO;
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static PLED_INFO gLed = NULL;
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static PLED_INFO gpVirtLeds[MAX_VIRT_LEDS];
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static HANDLE_LED_FUNC gLedHwFunc[MAX_VIRT_LEDS];
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static HANDLE_LED_FUNC gLedHwFailFunc[MAX_VIRT_LEDS];
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#if 0 /* BROKEN */
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#if defined(CONFIG_BCM96348) || defined(CONFIG_BCM96338)
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static int gLedOffInBridgeMode = 1;
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#elif defined(CONFIG_BCM96345)
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static int gLedOffInBridgeMode = 0;
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#endif
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#endif
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void ledTimerExpire(void);
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int initLedInfo( PLED_MAP_PAIR pCurMap, PLED_INFO pCurLed );
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//**************************************************************************************
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// LED operations
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//**************************************************************************************
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// turn led on and set the ledState
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void ledOn(PLED_INFO pLed)
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{
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if( pLed->ledMask )
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{
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GPIO->GPIODir |= pLed->ledMask; // turn on the direction bit in case was turned off by some one
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if( pLed->ledActiveLow )
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GPIO->GPIOio &= ~pLed->ledMask; // turn on the led
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else
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GPIO->GPIOio |= pLed->ledMask; // turn on the led
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pLed->ledState = pLed->savedLedState = kLedStateOn;
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}
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}
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// turn led off and set the ledState
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void ledOff(PLED_INFO pLed)
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{
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if( pLed->ledMask )
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{
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GPIO->GPIODir |= pLed->ledMask; // turn on the direction bit in case was turned off by some one
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if( pLed->ledActiveLow )
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GPIO->GPIOio |= pLed->ledMask; // turn off the led
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else
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GPIO->GPIOio &= ~pLed->ledMask; // turn off the led
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pLed->ledState = pLed->savedLedState = kLedStateOff;
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}
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}
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// turn led on and set the ledState
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void ledOnFail(PLED_INFO pLed)
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{
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if( pLed->ledMaskFail )
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{
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GPIO->GPIODir |= pLed->ledMaskFail; // turn on the direction bit in case was turned off by some one
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if( pLed->ledActiveLowFail )
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GPIO->GPIOio &= ~pLed->ledMaskFail;// turn on the led
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else
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GPIO->GPIOio |= pLed->ledMaskFail; // turn on the led
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pLed->ledState = pLed->savedLedState = kLedStateFail;
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}
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}
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// turn led off and set the ledState
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void ledOffFail(PLED_INFO pLed)
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{
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if( pLed->ledMaskFail )
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{
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GPIO->GPIODir |= pLed->ledMaskFail; // turn on the direction bit in case was turned off by some one
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if( pLed->ledActiveLowFail )
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GPIO->GPIOio |= pLed->ledMaskFail; // turn off the led
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else
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GPIO->GPIOio &= ~pLed->ledMaskFail;// turn off the led
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pLed->ledState = pLed->savedLedState = kLedStateOff;
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}
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}
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// toggle the led and return the current ledState
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BOARD_LED_STATE ledToggle(PLED_INFO pLed)
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{
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GPIO->GPIODir |= pLed->ledMask; // turn on the direction bit in case was turned off by some one
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if (GPIO->GPIOio & pLed->ledMask)
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{
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GPIO->GPIOio &= ~(pLed->ledMask);
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return( (pLed->ledActiveLow) ? kLedStateOn : kLedStateOff );
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}
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else
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{
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GPIO->GPIOio |= pLed->ledMask;
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return( (pLed->ledActiveLow) ? kLedStateOff : kLedStateOn );
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}
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}
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// led timer. Will return if timer is already on
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void ledTimerStart(void)
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{
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if (gTimerOn)
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return;
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#if defined(DEBUG_LED)
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printk("led: add_timer\n");
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#endif
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init_timer(&gLedTimer);
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gLedTimer.function = (void*)ledTimerExpire;
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gLedTimer.expires = jiffies + k100ms; // timer expires in ~100ms
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add_timer (&gLedTimer);
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gTimerOn = TRUE;
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}
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// led timer expire kicks in about ~100ms and perform the led operation according to the ledState and
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// restart the timer according to ledState
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void ledTimerExpire(void)
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{
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int i;
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PLED_INFO pCurLed;
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gTimerOn = FALSE;
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for (i = 0, pCurLed = gLed; i < gLedCount; i++, pCurLed++)
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{
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#if defined(DEBUG_LED)
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printk("led[%d]: Mask=0x%04x, State = %d, blcd=%d\n", i, pCurLed->ledMask, pCurLed->ledState, pCurLed->blinkCountDown);
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#endif
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switch (pCurLed->ledState)
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{
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case kLedStateOn:
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case kLedStateOff:
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case kLedStateFail:
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pCurLed->blinkCountDown = 0; // reset the blink count down
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break;
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case kLedStateBlinkOnce:
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ledToggle(pCurLed);
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pCurLed->blinkCountDown = 0; // reset to 0
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pCurLed->ledState = pCurLed->savedLedState;
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if (pCurLed->ledState == kLedStateSlowBlinkContinues ||
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pCurLed->ledState == kLedStateFastBlinkContinues)
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ledTimerStart(); // start timer if in blinkContinues stats
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break;
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case kLedStateSlowBlinkContinues:
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if (pCurLed->blinkCountDown-- == 0)
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{
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pCurLed->blinkCountDown = kSlowBlinkCount;
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ledToggle(pCurLed);
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}
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ledTimerStart();
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break;
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case kLedStateFastBlinkContinues:
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if (pCurLed->blinkCountDown-- == 0)
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{
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pCurLed->blinkCountDown = kFastBlinkCount;
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ledToggle(pCurLed);
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}
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ledTimerStart();
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break;
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default:
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printk("Invalid state = %d\n", pCurLed->ledState);
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}
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}
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}
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// initialize the gLedCount and allocate and fill gLed struct
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void __init boardLedInit(PLED_MAP_PAIR cLedMapping)
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{
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PLED_MAP_PAIR p1, p2;
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PLED_INFO pCurLed;
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int needTimer = FALSE;
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int alreadyUsed = 0;
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#if defined(CONFIG_BCM96348) || defined(CONFIG_BCM96338)
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/* Set blink rate for BCM6348/BCM6338 hardware LEDs. */
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GPIO->LEDCtrl &= ~LED_INTERVAL_SET_MASK;
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GPIO->LEDCtrl |= LED_INTERVAL_SET_80MS;
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#endif
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memset( gpVirtLeds, 0x00, sizeof(gpVirtLeds) );
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memset( gLedHwFunc, 0x00, sizeof(gLedHwFunc) );
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memset( gLedHwFailFunc, 0x00, sizeof(gLedHwFailFunc) );
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gLedCount = 0;
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// Check for multiple LED names and multiple LED GPIO pins that share the
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// same physical board LED.
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for( p1 = cLedMapping; p1->ledName != kLedEnd; p1++ )
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{
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alreadyUsed = 0;
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for( p2 = cLedMapping; p2 != p1; p2++ )
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{
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if( (p1->ledMask && p1->ledMask == p2->ledMask) ||
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(p1->ledMaskFail && p1->ledMaskFail == p2->ledMaskFail) )
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{
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alreadyUsed = 1;
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break;
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}
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}
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if( alreadyUsed == 0 )
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gLedCount++;
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}
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gLed = (PLED_INFO) kmalloc((gLedCount * sizeof(LED_INFO)), GFP_KERNEL);
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if( gLed == NULL )
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{
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printk( "LED memory allocation error.\n" );
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return;
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}
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memset( gLed, 0x00, gLedCount * sizeof(LED_INFO) );
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// initial the gLed with unique ledMask and initial state. If more than 1 ledNames share the physical led
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// (ledMask) the first defined led's ledInitState will be used.
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pCurLed = gLed;
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for( p1 = cLedMapping; p1->ledName != kLedEnd; p1++ )
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{
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if( (int) p1->ledName > MAX_VIRT_LEDS )
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continue;
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alreadyUsed = 0;
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for( p2 = cLedMapping; p2 != p1; p2++ )
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{
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if( (p1->ledMask && p1->ledMask == p2->ledMask) ||
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(p1->ledMaskFail && p1->ledMaskFail == p2->ledMaskFail) )
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{
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alreadyUsed = 1;
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break;
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}
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}
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if( alreadyUsed == 0 )
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{
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// Initialize the board LED for the first time.
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needTimer = initLedInfo( p1, pCurLed );
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gpVirtLeds[(int) p1->ledName] = pCurLed;
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pCurLed++;
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}
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else
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{
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PLED_INFO pLed;
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for( pLed = gLed; pLed != pCurLed; pLed++ )
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{
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// Find the LED_INFO structure that has already been initialized.
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if((pLed->ledMask && pLed->ledMask == p1->ledMask) ||
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(pLed->ledMaskFail && pLed->ledMaskFail==p1->ledMaskFail))
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{
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// The board LED has already been initialized but possibly
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// not completely initialized.
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if( p1->ledMask )
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{
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pLed->ledMask = p1->ledMask;
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pLed->ledActiveLow = p1->ledActiveLow;
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}
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if( p1->ledMaskFail )
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{
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pLed->ledMaskFail = p1->ledMaskFail;
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pLed->ledActiveLowFail = p1->ledActiveLowFail;
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}
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gpVirtLeds[(int) p1->ledName] = pLed;
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break;
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}
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}
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}
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}
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if (needTimer)
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ledTimerStart();
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#if defined(DEBUG_LED)
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int i;
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for (i=0; i < gLedCount; i++)
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printk("initLed: led[%d]: mask=0x%04x, state=%d\n", i,(gLed+i)->ledMask, (gLed+i)->ledState);
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#endif
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}
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// Initialize a structure that contains information about a physical board LED
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// control. The board LED may contain more than one GPIO pin to control a
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// normal condition (green) or a failure condition (red).
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int initLedInfo( PLED_MAP_PAIR pCurMap, PLED_INFO pCurLed )
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{
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int needTimer = FALSE;
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pCurLed->ledState = pCurLed->savedLedState = pCurMap->ledInitState;
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pCurLed->ledMask = pCurMap->ledMask;
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pCurLed->ledActiveLow = pCurMap->ledActiveLow;
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pCurLed->ledMaskFail = pCurMap->ledMaskFail;
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pCurLed->ledActiveLowFail = pCurMap->ledActiveLowFail;
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switch (pCurLed->ledState)
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{
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case kLedStateOn:
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pCurLed->blinkCountDown = 0; // reset the blink count down
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ledOn(pCurLed);
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break;
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case kLedStateOff:
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pCurLed->blinkCountDown = 0; // reset the blink count down
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ledOff(pCurLed);
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break;
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case kLedStateFail:
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pCurLed->blinkCountDown = 0; // reset the blink count down
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ledOnFail(pCurLed);
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break;
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case kLedStateBlinkOnce:
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pCurLed->blinkCountDown = 1;
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needTimer = TRUE;
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break;
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case kLedStateSlowBlinkContinues:
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pCurLed->blinkCountDown = kSlowBlinkCount;
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needTimer = TRUE;
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break;
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case kLedStateFastBlinkContinues:
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pCurLed->blinkCountDown = kFastBlinkCount;
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needTimer = TRUE;
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break;
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default:
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printk("Invalid state = %d\n", pCurLed->ledState);
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}
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return( needTimer );
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}
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|
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#if 0 /* BROKEN */
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// Determines if there is at least one interface in bridge mode. Bridge mode
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// is determined by the cfm convention of naming bridge interfaces nas17
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// through nas24.
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static int isBridgedProtocol(void)
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{
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extern int dev_get(const char *name);
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const int firstBridgeId = 17;
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const int lastBridgeId = 24;
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int i;
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int ret = FALSE;
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char name[16];
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for( i = firstBridgeId; i <= lastBridgeId; i++ )
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{
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sprintf( name, "nas%d", i );
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if( dev_get(name) )
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{
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ret = TRUE;
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break;
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}
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}
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return(ret);
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}
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#endif
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|
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// led ctrl. Maps the ledName to the corresponding ledInfoPtr and perform the led operation
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void boardLedCtrl(BOARD_LED_NAME ledName, BOARD_LED_STATE ledState)
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{
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PLED_INFO ledInfoPtr;
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|
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// do the mapping from virtual to physical led
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if( (int) ledName < MAX_VIRT_LEDS )
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ledInfoPtr = gpVirtLeds[(int) ledName];
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else
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ledInfoPtr = NULL;
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if (ledInfoPtr == NULL)
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return;
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|
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if( ledState != kLedStateFail && gLedHwFunc[(int) ledName] )
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{
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(*gLedHwFunc[(int) ledName]) (ledName, ledState);
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ledOffFail(ledInfoPtr);
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return;
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}
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else
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if( ledState == kLedStateFail && gLedHwFailFunc[(int) ledName] )
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{
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(*gLedHwFailFunc[(int) ledName]) (ledName, ledState);
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ledOff(ledInfoPtr);
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return;
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}
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|
|
#if 0 /* BROKEN */
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// Do not blink the WAN Data LED if at least one interface is in bridge mode.
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if(gLedOffInBridgeMode == 1 && (ledName == kLedWanData || ledName == kLedPPP))
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{
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static int BridgedProtocol = -1;
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|
|
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if( BridgedProtocol == -1 )
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BridgedProtocol = isBridgedProtocol();
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|
|
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if( BridgedProtocol == TRUE )
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return;
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}
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#endif
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|
|
|
// If the state is kLedStateFail and there is not a failure LED defined
|
|
// in the board parameters, change the state to kLedStateFastBlinkContinues.
|
|
if( ledState == kLedStateFail && ledInfoPtr->ledMaskFail == 0 )
|
|
ledState = kLedStateFastBlinkContinues;
|
|
|
|
switch (ledState)
|
|
{
|
|
case kLedStateOn:
|
|
// First, turn off the complimentary (failure) LED GPIO.
|
|
if( ledInfoPtr->ledMaskFail )
|
|
ledOffFail(ledInfoPtr);
|
|
else
|
|
if( gLedHwFailFunc[(int) ledName] )
|
|
(*gLedHwFailFunc[(int) ledName]) (ledName, kLedStateOff);
|
|
|
|
// Next, turn on the specified LED GPIO.
|
|
ledOn(ledInfoPtr);
|
|
break;
|
|
|
|
case kLedStateOff:
|
|
// First, turn off the complimentary (failure) LED GPIO.
|
|
if( ledInfoPtr->ledMaskFail )
|
|
ledOffFail(ledInfoPtr);
|
|
else
|
|
if( gLedHwFailFunc[(int) ledName] )
|
|
(*gLedHwFailFunc[(int) ledName]) (ledName, kLedStateOff);
|
|
|
|
// Next, turn off the specified LED GPIO.
|
|
ledOff(ledInfoPtr);
|
|
break;
|
|
|
|
case kLedStateFail:
|
|
// First, turn off the complimentary (normal) LED GPIO.
|
|
if( ledInfoPtr->ledMask )
|
|
ledOff(ledInfoPtr);
|
|
else
|
|
if( gLedHwFunc[(int) ledName] )
|
|
(*gLedHwFunc[(int) ledName]) (ledName, kLedStateOff);
|
|
|
|
// Next, turn on (red) the specified LED GPIO.
|
|
ledOnFail(ledInfoPtr);
|
|
break;
|
|
|
|
case kLedStateBlinkOnce:
|
|
// skip blinkOnce if it is already in Slow/Fast blink continues state
|
|
if (ledInfoPtr->savedLedState == kLedStateSlowBlinkContinues ||
|
|
ledInfoPtr->savedLedState == kLedStateFastBlinkContinues)
|
|
;
|
|
else
|
|
{
|
|
if (ledInfoPtr->blinkCountDown == 0) // skip the call if it is 1
|
|
{
|
|
ledToggle(ledInfoPtr);
|
|
ledInfoPtr->blinkCountDown = 1; // it will be reset to 0 when timer expires
|
|
ledInfoPtr->ledState = kLedStateBlinkOnce;
|
|
ledTimerStart();
|
|
}
|
|
}
|
|
break;
|
|
|
|
case kLedStateSlowBlinkContinues:
|
|
ledInfoPtr->blinkCountDown = kSlowBlinkCount;
|
|
ledInfoPtr->ledState = kLedStateSlowBlinkContinues;
|
|
ledInfoPtr->savedLedState = kLedStateSlowBlinkContinues;
|
|
ledTimerStart();
|
|
break;
|
|
|
|
case kLedStateFastBlinkContinues:
|
|
ledInfoPtr->blinkCountDown = kFastBlinkCount;
|
|
ledInfoPtr->ledState = kLedStateFastBlinkContinues;
|
|
ledInfoPtr->savedLedState = kLedStateFastBlinkContinues;
|
|
ledTimerStart();
|
|
break;
|
|
|
|
default:
|
|
printk("Invalid led state\n");
|
|
}
|
|
}
|
|
|
|
// This function is called for an LED that is controlled by hardware.
|
|
void kerSysLedRegisterHwHandler( BOARD_LED_NAME ledName,
|
|
HANDLE_LED_FUNC ledHwFunc, int ledFailType )
|
|
{
|
|
if( (int) ledName < MAX_VIRT_LEDS )
|
|
{
|
|
if( ledFailType == 1 )
|
|
gLedHwFailFunc[(int) ledName] = ledHwFunc;
|
|
else
|
|
gLedHwFunc[(int) ledName] = ledHwFunc;
|
|
}
|
|
}
|
|
|