mirror of
https://github.com/preble/libpinproc
synced 2026-02-24 18:25:23 +01:00
634 lines
21 KiB
C++
634 lines
21 KiB
C++
/*
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* The MIT License
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* Copyright (c) 2009 Gerry Stellenberg, Adam Preble
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*
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* Permission is hereby granted, free of charge, to any person
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* obtaining a copy of this software and associated documentation
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* files (the "Software"), to deal in the Software without
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* restriction, including without limitation the rights to use,
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* copy, modify, merge, publish, distribute, sublicense, and/or sell
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* copies of the Software, and to permit persons to whom the
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* Software is furnished to do so, subject to the following
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* conditions:
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*
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* The above copyright notice and this permission notice shall be
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* included in all copies or substantial portions of the Software.
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*
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* THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND,
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* EXPRESS OR IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES
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* OF MERCHANTABILITY, FITNESS FOR A PARTICULAR PURPOSE AND
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* NONINFRINGEMENT. IN NO EVENT SHALL THE AUTHORS OR COPYRIGHT
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* HOLDERS BE LIABLE FOR ANY CLAIM, DAMAGES OR OTHER LIABILITY,
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* WHETHER IN AN ACTION OF CONTRACT, TORT OR OTHERWISE, ARISING
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* FROM, OUT OF OR IN CONNECTION WITH THE SOFTWARE OR THE USE OR
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* OTHER DEALINGS IN THE SOFTWARE.
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*/
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/*
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* PRDevice.cpp
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* libpinproc
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*/
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#include "PRDevice.h"
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PRDevice::PRDevice(PRMachineType machineType) : machineType(machineType)
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{
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// Reset internally maintainted driver and switch structures, but do not update the device.
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Reset(kPRResetFlagDefault);
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}
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PRDevice::~PRDevice()
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{
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Close();
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}
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PRDevice* PRDevice::Create(PRMachineType machineType)
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{
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PRDevice *dev = new PRDevice(machineType);
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if (dev == NULL)
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{
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DEBUG(PRLog("Error allocating memory for P-ROC device\n"));
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return NULL;
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}
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if (!dev->Open())
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{
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DEBUG(PRLog("Error opening P-ROC device.\n"));
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delete dev;
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return NULL;
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}
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return dev;
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}
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PRResult PRDevice::Reset(uint32_t resetFlags)
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{
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bool defaultPolarity = machineType != kPRMachineWPC;
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int i;
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memset(&driverGlobalConfig, 0x00, sizeof(PRDriverGlobalConfig));
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for (i = 0; i < kPRDriverCount; i++)
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{
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PRDriverState *driver = &drivers[i];
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memset(driver, 0x00, sizeof(PRDriverState));
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driver->driverNum = i;
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driver->polarity = defaultPolarity;
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if (resetFlags & kPRResetFlagUpdateDevice) DriverUpdateState(driver);
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}
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for (i = 0; i < kPRDriverGroupsMax; i++)
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{
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PRDriverGroupConfig *group = &driverGroups[i];
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memset(group, 0x00, sizeof(PRDriverGroupConfig));
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group->groupNum = i;
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group->polarity = defaultPolarity;
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}
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// Create empty switch rule for clearing the rules in the device.
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PRSwitchRule emptySwitchRule;
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memset(&emptySwitchRule, 0x00, sizeof(PRSwitchRule));
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for (i = 0; i < kPRSwitchRulesCount; i++)
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{
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PRSwitchRuleInternal *switchRule = &switchRules[i];
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memset(switchRule, 0x00, sizeof(PRSwitchRule));
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// Send blank rule for each event type to Device if necessary
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if ((resetFlags & kPRResetFlagUpdateDevice) && i <= kPRSwitchPhysicalLast) {
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SwitchUpdateRule(i, kPREventTypeSwitchOpenDebounced, &emptySwitchRule, NULL, 0);
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SwitchUpdateRule(i, kPREventTypeSwitchClosedDebounced, &emptySwitchRule, NULL, 0);
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SwitchUpdateRule(i, kPREventTypeSwitchOpenNondebounced, &emptySwitchRule, NULL, 0);
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SwitchUpdateRule(i, kPREventTypeSwitchClosedNondebounced, &emptySwitchRule, NULL, 0);
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}
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uint16_t ruleIndex = i;
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ParseSwitchRuleIndex(ruleIndex, &switchRule->switchNum, &switchRule->eventType);
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switchRule->driver.polarity = defaultPolarity;
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if (switchRule->switchNum >= kPRSwitchVirtualFirst) // Disabled for compiler warning (always true due to data type): && switchRule->switchNum <= kPRSwitchVirtualLast)
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freeSwitchRuleIndexes.push(ruleIndex);
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}
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unrequestedDataQueue.empty();
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requestedDataQueue.empty();
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num_collected_bytes = 0;
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// TODO: Assign defaults based on machineType. Some may have already been done above.
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return kPRSuccess;
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}
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int PRDevice::GetEvents(PREvent *events, int maxEvents)
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{
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SortReturningData();
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// The unrequestedDataQueue only has unrequested switch event data. Pop
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// events out 1 at a time, interpret them, and populate the outgoing list with them.
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int i;
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for (i = 0; (i < maxEvents) && !unrequestedDataQueue.empty(); i++)
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{
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uint32_t event_data = unrequestedDataQueue.front();
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unrequestedDataQueue.pop();
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events[i].value = event_data & P_ROC_EVENT_SWITCH_NUM_MASK;
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bool open = (event_data & P_ROC_EVENT_SWITCH_STATE_MASK) >> P_ROC_EVENT_SWITCH_STATE_SHIFT;
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bool debounced = (event_data & P_ROC_EVENT_SWITCH_DEBOUNCED_MASK) >> P_ROC_EVENT_SWITCH_DEBOUNCED_SHIFT;
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if (open)
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events[i].type = debounced ? kPREventTypeSwitchOpenDebounced : kPREventTypeSwitchOpenNondebounced;
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else
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events[i].type = debounced ? kPREventTypeSwitchClosedDebounced : kPREventTypeSwitchOpenNondebounced;
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}
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return i;
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}
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PRResult PRDevice::DriverUpdateGlobalConfig(PRDriverGlobalConfig *driverGlobalConfig)
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{
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const int burstWords = 4;
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uint32_t burst[burstWords];
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int32_t rc;
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DEBUG(PRLog("Installing driver globals\n"));
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this->driverGlobalConfig = *driverGlobalConfig;
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rc = CreateDriverUpdateGlobalConfigBurst(burst, driverGlobalConfig);
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rc = CreateWatchdogConfigBurst(burst+2, driverGlobalConfig->watchdogExpired,
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driverGlobalConfig->watchdogEnable,
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driverGlobalConfig->watchdogResetTime);
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DEBUG(PRLog("Driver Global words: %x %x\n", burst[0], burst[1]));
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DEBUG(PRLog("Watchdog words: %x %x\n", burst[2], burst[3]));
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return WriteData(burst, burstWords);
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}
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PRResult PRDevice::DriverGetGroupConfig(uint8_t groupNum, PRDriverGroupConfig *driverGroupConfig)
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{
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*driverGroupConfig = driverGroups[groupNum];
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return kPRSuccess;
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}
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PRResult PRDevice::DriverUpdateGroupConfig(PRDriverGroupConfig *driverGroupConfig)
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{
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const int burstWords = 2;
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uint32_t burst[burstWords];
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int32_t rc;
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driverGroups[driverGroupConfig->groupNum] = *driverGroupConfig;
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DEBUG(PRLog("Installing driver group\n"));
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rc = CreateDriverUpdateGroupConfigBurst(burst, driverGroupConfig);
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DEBUG(PRLog("Words: %x %x\n", burst[0], burst[1]));
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return WriteData(burst, burstWords);
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}
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PRResult PRDevice::DriverGetState(uint8_t driverNum, PRDriverState *driverState)
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{
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*driverState = drivers[driverNum];
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return kPRSuccess;
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}
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PRResult PRDevice::DriverUpdateState(PRDriverState *driverState)
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{
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const int burstWords = 3;
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uint32_t burst[burstWords];
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int32_t rc;
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DEBUG(PRLog("Updating driver #%d\n", driverState->driverNum));
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if (driverState->polarity != drivers[driverState->driverNum].polarity && machineType != kPRMachineCustom)
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{
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DEBUG(PRLog("Refusing to update driver #%d; polarity differs on non-custom machine.\n", driverState->driverNum));
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return kPRFailure;
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}
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drivers[driverState->driverNum] = *driverState;
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rc = CreateDriverUpdateBurst(burst, &drivers[driverState->driverNum]);
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DEBUG(PRLog("Words: %x %x %x\n", burst[0], burst[1], burst[2]));
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return WriteData(burst, burstWords);
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}
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PRResult PRDevice::DriverWatchdogTickle()
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{
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const int burstWords = 2;
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uint32_t burst[burstWords];
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int32_t rc;
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rc = CreateWatchdogConfigBurst(burst, driverGlobalConfig.watchdogExpired,
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driverGlobalConfig.watchdogEnable,
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driverGlobalConfig.watchdogResetTime);
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return WriteData(burst, burstWords);
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}
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PRSwitchRuleInternal *PRDevice::GetSwitchRuleByIndex(uint16_t index)
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{
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return &switchRules[index];
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}
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PRResult PRDevice::SwitchUpdateConfig(PRSwitchConfig *switchConfig)
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{
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uint32_t rc;
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const int burstWords = 2;
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uint32_t burst[burstWords];
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this->switchConfig = *switchConfig;
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CreateSwitchUpdateConfigBurst(burst, switchConfig);
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DEBUG(PRLog("Configuring Switch Logic"));
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DEBUG(PRLog("Words: %x %x\n",burst[0],burst[1]));
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rc = WriteData(burst, burstWords);
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return rc;
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}
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PRResult PRDevice::SwitchUpdateRule(uint8_t switchNum, PREventType eventType, PRSwitchRule *rule, PRDriverState *linkedDrivers, int numDrivers)
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{
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// Updates a single rule with the associated linked driver state changes.
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const int burstSize = 4;
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uint32_t burst[burstSize];
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if (switchNum > kPRSwitchPhysicalLast) // Always true due to data type.
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{
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DEBUG(PRLog("Switch rule out of range 0-%d\n", kPRSwitchPhysicalLast));
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return kPRFailure;
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}
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// If more the base rule will link to others, ensure free indexes exists for
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// the links.
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if (numDrivers > 0 && freeSwitchRuleIndexes.size() < numDrivers-1) // -1 because the first switch rule holds the first driver.
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{
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DEBUG(PRLog("Not enough free switch rule indexes: %d available, need %d\n", freeSwitchRuleIndexes.size(), numDrivers));
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return kPRFailure;
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}
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PRResult res = kPRSuccess;
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uint32_t newRuleIndex = CreateSwitchRuleIndex(switchNum, eventType);
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// Because we're redefining the rule chain, we need to remove all previously existing links and return the indexes to the free list.
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PRSwitchRuleInternal *oldRule = GetSwitchRuleByIndex(newRuleIndex);
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while (oldRule->linkActive)
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{
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oldRule = GetSwitchRuleByIndex(oldRule->linkIndex);
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freeSwitchRuleIndexes.push(oldRule->linkIndex);
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}
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// Now let's setup the first actual rule:
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uint16_t firstRuleIndex = newRuleIndex;
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PRSwitchRuleInternal *newRule = GetSwitchRuleByIndex(newRuleIndex);
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if (newRule->eventType != eventType)
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DEBUG(PRLog("Unexpected state: switch rule at 0x%x has event type 0x%x (expected 0x%x).\n", newRuleIndex, newRule->eventType, eventType));
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newRule->notifyHost = rule->notifyHost;
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newRule->changeOutput = false;
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newRule->linkActive = false;
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// Process each driver who's state should change in response to the switch event.
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if (numDrivers > 0)
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{
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while (numDrivers > 0)
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{
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newRule->changeOutput = true;
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newRule->driver = linkedDrivers[0];
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if (numDrivers > 1)
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{
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newRule->linkActive = true;
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newRule->linkIndex = freeSwitchRuleIndexes.front();
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freeSwitchRuleIndexes.pop();
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CreateSwitchUpdateRulesBurst(burst, newRule);
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// Prepare for the next rule:
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newRule = GetSwitchRuleByIndex(newRule->linkIndex);
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}
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else
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{
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newRule->linkActive = false;
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CreateSwitchUpdateRulesBurst(burst, newRule);
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}
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DEBUG(PRLog("Rule Words: %x %x %x %x\n", burst[0],burst[1],burst[2],burst[3]));
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// Write the rule:
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res = WriteData(burst, burstSize);
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if (res != kPRSuccess)
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{
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DEBUG(PRLog("Error while writing switch update, attempting to revert switch rule to a safe state..."));
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newRule = GetSwitchRuleByIndex(firstRuleIndex);
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newRule->changeOutput = false;
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newRule->linkActive = false;
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CreateSwitchUpdateRulesBurst(burst, newRule);
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if (WriteData(burst, burstSize) == kPRSuccess)
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DEBUG(PRLog("Disabled successfully.\n"));
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else
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DEBUG(PRLog("Failed to disable.\n"));
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return res;
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}
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linkedDrivers++;
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numDrivers--;
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}
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}
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else
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{
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CreateSwitchUpdateRulesBurst(burst, newRule);
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DEBUG(PRLog("Rule Words: %x %x %x %x\n", burst[0],burst[1],burst[2],burst[3]));
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// Write the rule:
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res = WriteData(burst, burstSize);
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}
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return res;
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}
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int32_t PRDevice::DMDUpdateConfig(PRDMDConfig *dmdConfig)
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{
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uint32_t rc;
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const int burstWords = 7;
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uint32_t burst[burstWords];
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this->dmdConfig = *dmdConfig;
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CreateDMDUpdateConfigBurst(burst, dmdConfig);
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DEBUG(PRLog("Configuring DMD"));
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DEBUG(PRLog("Words: %x %x %x %x %x %x %x\n",burst[0],burst[1],burst[2],burst[3],
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burst[4],burst[5],burst[6]));
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rc = WriteData(burst, burstWords);
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return rc;
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}
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PRResult PRDevice::DMDDraw(uint8_t * dots)
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{
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int32_t k; //i,x,y,j,k,m;
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//uint8_t color;
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uint16_t words_per_sub_frame = (dmdConfig.numColumns*dmdConfig.numRows) / 32;
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uint16_t words_per_frame = words_per_sub_frame * dmdConfig.numSubFrames;
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uint32_t dmd_command_buffer[1024];
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uint32_t * p_dmd_frame_buffer_words;
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p_dmd_frame_buffer_words = (uint32_t *)dots;
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dmd_command_buffer[0] = CreateBurstCommand(P_ROC_BUS_DMD_SELECT, P_ROC_DMD_DOT_TABLE_BASE_ADDR, words_per_frame);
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for (k=0; k<words_per_frame; k++) {
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dmd_command_buffer[k+1] = p_dmd_frame_buffer_words[k];
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}
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return WriteData(dmd_command_buffer, words_per_frame+1);
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// The following code prints out the init lines for the 4 Xilinx BlockRAMs
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// in the FPGA. It's used to make an image for the P-ROC to display on power-up.
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//if (print_dots) {
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//print_dots = false;
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//for (i=0; i<4; i++) {
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// std::cout << "For memory: "<< i << "\n";
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// // Need 4 lines to get 1 frame (4*256*4 = 4096)
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// // The rest will be all 0.
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// for (y=0; y<4; y++) {
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// std::cout << "defparam blockram.INIT_00 = 256'b";
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// for (j=31; j>=0; j--) {
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// for (x=7; x>=0; x--) {
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// std::cout << ((dmd_frame_buffer[(y*32)+j] >> ((i*8)+x)) & 1);
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// }
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// }
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// std::cout << ";\n";
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// }
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// std::cout << "\n\n\n";
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//}
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//}
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}
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/////////////////////////////////////////////////////////////////////////////////////////////
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// Device I/O
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PRResult PRDevice::Open()
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{
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PRResult res = PRHardwareOpen();
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if (res == kPRSuccess)
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{
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// Try to verify the P-ROC IS in the FPGA before initializing the FPGA's FTDI interface
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// just in case it was already initialized from a previous application execution.
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DEBUG(PRLog("Verifying P-ROC ID: \n"));
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if (VerifyChipID() == kPRFailure) {
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// Since the FPGA didn't appear to be responding properly, send the FPGA's FTDI
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// initialization sequence. This is a set of bytes the FPGA is waiting to receive
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// before it allows access deeper into the chip. This keeps garbage from getting
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// in and wreaking havoc before software is up and running.
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DEBUG(PRLog("Initializing P-ROC...\n"));
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res = FlushReadBuffer();
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uint32_t temp_word = P_ROC_INIT_PATTERN_A;
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res = WriteData(&temp_word, 1);
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temp_word = P_ROC_INIT_PATTERN_B;
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res = WriteData(&temp_word, 1);
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res = VerifyChipID();
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}
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else
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{
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DEBUG(PRLog("Failed to verify chip ID."));
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res = kPRFailure;
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}
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}
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return res;
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}
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PRResult PRDevice::Close()
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{
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// TODO: Add protection against closing a not-open ftdic.
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PRHardwareClose();
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return kPRSuccess;
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}
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PRResult PRDevice::VerifyChipID()
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{
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PRResult rc;
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const int bufferWords = 5;
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uint32_t buffer[bufferWords];
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//uint32_t temp_word;
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uint32_t max_count;
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//std::cout << "Requesting FPGA Chip ID: ";
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rc = RequestData(P_ROC_MANAGER_SELECT, P_ROC_REG_CHIP_ID_ADDR, 4);
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max_count = 0;
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//std::cout << "Waiting for read data ";
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while (num_collected_bytes < (bufferWords*4) && max_count < 10) {
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sleep(.01);
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//std::cout << ". ";
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rc = CollectReadData();
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max_count++;
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}
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//std::cout << "\n";
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if (max_count != 10) {
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int wordsRead = ReadData(buffer, bufferWords);
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if (wordsRead == 5) {
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//std::cout << rc << " words read. \n"
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DEBUG(PRLog("FPGA Chip ID: 0x%x\n", buffer[1]));
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DEBUG(PRLog("FPGA Chip Version/Rev: %d.%d\n", buffer[2] >> 16, buffer[2] & 0xffff));
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DEBUG(PRLog("Watchdog Settings: 0x%x\n", buffer[3]));
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DEBUG(PRLog("Switches: 0x%x\n", buffer[4]));
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rc = kPRSuccess;
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}
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else {
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DEBUG(PRLog("Error reading Chip IP and Version. Incorrect number of bytes received from read_data().\n"));
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rc = kPRFailure;
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}
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}
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else {
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DEBUG(PRLog("Unable to read Chip ID - P-ROC not yet initialized.\n"));
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rc = kPRFailure;
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}
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return (rc);
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}
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PRResult PRDevice::RequestData(uint32_t module_select, uint32_t start_addr, int32_t num_words)
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{
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uint32_t requestWord = CreateRegRequestWord(module_select, start_addr, num_words);
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return WriteData(&requestWord, 1);
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}
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PRResult PRDevice::WriteData(uint32_t * words, int32_t numWords)
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{
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int32_t j,k;
|
|
// int32_t item;
|
|
|
|
if (numWords == 0)
|
|
return kPRSuccess;
|
|
|
|
// The 32-bit words coming in are in the same byte order they need to be in the P-ROC.
|
|
// However, due to Intel endian-ness, simply casting the words to 4 bytes changes the
|
|
// byte order. So, the conversion to bytes is done here manually to preserve the byte
|
|
// order. Might want to add a parameter for endian-ness at some point to make it
|
|
// work on big endian architectures.
|
|
for (j = 0; j < numWords; j++) {
|
|
uint32_t temp_word = words[j];
|
|
for (k = 3; k >= 0; k--)
|
|
{
|
|
wr_buffer[(j*4)+k] = (uint8_t)(temp_word & 0x000000ff);
|
|
temp_word = temp_word >> 8;
|
|
}
|
|
// for (k=0; k<4; k++)
|
|
// {
|
|
// item = wr_buffer[(j*4)+k];
|
|
// }
|
|
}
|
|
|
|
int bytesToWrite = numWords * 4;
|
|
int bytesWritten = PRHardwareWrite(wr_buffer, bytesToWrite);
|
|
|
|
if (bytesWritten != bytesToWrite)
|
|
{
|
|
DEBUG(PRLog("Error in WriteData: wrote %d of %d bytes\n", bytesWritten, bytesToWrite));
|
|
return kPRFailure;
|
|
}
|
|
else
|
|
{
|
|
return kPRSuccess;
|
|
}
|
|
}
|
|
|
|
|
|
int32_t PRDevice::ReadData(uint32_t *buffer, int32_t num_words)
|
|
{
|
|
int32_t rc,i,j;
|
|
|
|
// Just like in the write_data method, the bytes are ordered here manually to put
|
|
// them in the right order. They are pulled from the collected_bytes_fifo 1 at a time
|
|
// and stuffed into 32-bit words, high byte to low byte.
|
|
if ((num_words * 4) <= num_collected_bytes) {
|
|
for (j=0; j<num_words; j++) {
|
|
// Initialize buffer position
|
|
buffer[j] = 0;
|
|
for (i=0; i<4; i++) {
|
|
buffer[j] = (collected_bytes_fifo[collected_bytes_rd_addr] << (24-(i*8))) |
|
|
buffer[j];
|
|
if (collected_bytes_rd_addr == (FTDI_BUFFER_SIZE-1))
|
|
collected_bytes_rd_addr = 0;
|
|
else
|
|
collected_bytes_rd_addr++;
|
|
}
|
|
}
|
|
num_collected_bytes -= (num_words * 4);
|
|
|
|
rc = num_words;
|
|
}
|
|
else {
|
|
rc = 0;
|
|
}
|
|
DEBUG(PRLog("Read num bytes: %d\n", rc));
|
|
return (rc);
|
|
}
|
|
|
|
PRResult PRDevice::FlushReadBuffer()
|
|
{
|
|
int32_t numBytes,rc,k;
|
|
uint32_t rd_buffer[3];
|
|
numBytes = CollectReadData();
|
|
k = 0;
|
|
//std::cout << "Flushing rd buffer of " << num_words << "words\n";
|
|
while (k < numBytes) {
|
|
rc = ReadData(rd_buffer, 1);
|
|
k++;
|
|
}
|
|
return rc;
|
|
}
|
|
|
|
int32_t PRDevice::CollectReadData()
|
|
{
|
|
int32_t rc,i;
|
|
rc = PRHardwareRead(collect_buffer, FTDI_BUFFER_SIZE-num_collected_bytes);
|
|
for (i=0; i<rc; i=i++) {
|
|
collected_bytes_fifo[collected_bytes_wr_addr] = collect_buffer[i];
|
|
if (collected_bytes_wr_addr == (FTDI_BUFFER_SIZE-1))
|
|
collected_bytes_wr_addr = 0;
|
|
else
|
|
collected_bytes_wr_addr++;
|
|
}
|
|
num_collected_bytes += rc;
|
|
if (rc > 0)
|
|
{
|
|
DEBUG(PRLog("Collected bytes: %d\n", rc));
|
|
}
|
|
return (rc);
|
|
}
|
|
|
|
PRResult PRDevice::SortReturningData()
|
|
{
|
|
uint32_t num_bytes, num_words, rc;
|
|
uint32_t rd_buffer[512];
|
|
|
|
num_bytes = CollectReadData();
|
|
num_words = num_collected_bytes/4;
|
|
|
|
while (num_words >= 2) {
|
|
rc = ReadData(rd_buffer, 1);
|
|
DEBUG(PRLog("New returning word: 0x%x\n", rd_buffer[0]));
|
|
|
|
switch ( (rd_buffer[0] & P_ROC_COMMAND_MASK) >> P_ROC_COMMAND_SHIFT)
|
|
{
|
|
// Must be a bug in the P-ROC. Unrequested packets are returning looking
|
|
// like requested packets. Commenting out requested packets for now.
|
|
case P_ROC_REQUESTED_DATA: {
|
|
int bytesRead = ReadData(rd_buffer,
|
|
(rd_buffer[0] & P_ROC_HEADER_LENGTH_MASK) >>
|
|
P_ROC_HEADER_LENGTH_SHIFT);
|
|
for (int i = 0; i < bytesRead; i++)
|
|
requestedDataQueue.push(rd_buffer[i]);
|
|
break;
|
|
}
|
|
case P_ROC_UNREQUESTED_DATA: {
|
|
ReadData(rd_buffer,1);
|
|
DEBUG(PRLog("Pushing onto unreq Q 0x%x\n", rd_buffer[0]));
|
|
unrequestedDataQueue.push(rd_buffer[0]);
|
|
break;
|
|
}
|
|
}
|
|
num_words = num_collected_bytes/4;
|
|
}
|
|
return kPRSuccess;
|
|
}
|