kernel/eka/drivers/usbcc/misc.cpp
changeset 0 a41df078684a
child 43 c1f20ce4abcf
equal deleted inserted replaced
-1:000000000000 0:a41df078684a
       
     1 // Copyright (c) 2000-2009 Nokia Corporation and/or its subsidiary(-ies).
       
     2 // All rights reserved.
       
     3 // This component and the accompanying materials are made available
       
     4 // under the terms of the License "Eclipse Public License v1.0"
       
     5 // which accompanies this distribution, and is available
       
     6 // at the URL "http://www.eclipse.org/legal/epl-v10.html".
       
     7 //
       
     8 // Initial Contributors:
       
     9 // Nokia Corporation - initial contribution.
       
    10 //
       
    11 // Contributors:
       
    12 //
       
    13 // Description:
       
    14 // e32/drivers/usbcc/misc.cpp
       
    15 // Platform independent layer (PIL) of the USB Device controller driver:
       
    16 // Implementations of misc. classes defined in usbc.h.
       
    17 // 
       
    18 //
       
    19 
       
    20 /**
       
    21  @file misc.cpp
       
    22  @internalTechnology
       
    23 */
       
    24 
       
    25 #include <drivers/usbc.h>
       
    26 
       
    27 
       
    28 /** Helper function for logical endpoints and endpoint descriptors:
       
    29 	Split single Ep size into separate FS/HS sizes.
       
    30 	This function modifies its arguments.
       
    31  */
       
    32 TInt TUsbcEndpointInfo::AdjustEpSizes(TInt& aEpSize_Fs, TInt& aEpSize_Hs) const
       
    33 	{
       
    34 	if (iType == KUsbEpTypeBulk)
       
    35 		{
       
    36 		// FS: [8|16|32|64] HS: 512
       
    37 		if (iSize < 64)
       
    38 			{
       
    39 			aEpSize_Fs = iSize;
       
    40 			}
       
    41 		else
       
    42 			{
       
    43 			aEpSize_Fs = 64;
       
    44 			}
       
    45 		aEpSize_Hs = 512;
       
    46 		}
       
    47 	else if (iType == KUsbEpTypeInterrupt)
       
    48 		{
       
    49 		// FS: [0..64] HS: [0..1024]
       
    50 		if (iSize < 64)
       
    51 			{
       
    52 			aEpSize_Fs = iSize;
       
    53 			}
       
    54 		else
       
    55 			{
       
    56 			aEpSize_Fs = 64;
       
    57 			}
       
    58 		aEpSize_Hs = iSize;
       
    59 		}
       
    60 	else if (iType == KUsbEpTypeIsochronous)
       
    61 		{
       
    62 		// FS: [0..1023] HS: [0..1024]
       
    63 		if (iSize < 1023)
       
    64 			{
       
    65 			aEpSize_Fs = iSize;
       
    66 			}
       
    67 		else
       
    68 			{
       
    69 			aEpSize_Fs = 1023;
       
    70 			}
       
    71 		aEpSize_Hs = iSize;
       
    72 		}
       
    73 	else if (iType == KUsbEpTypeControl)
       
    74 		{
       
    75 		// FS: [8|16|32|64] HS: 64
       
    76 		if (iSize < 64)
       
    77 			{
       
    78 			aEpSize_Fs = iSize;
       
    79 			}
       
    80 		else
       
    81 			{
       
    82 			aEpSize_Fs = 64;
       
    83 			}
       
    84 		aEpSize_Hs = 64;
       
    85 		}
       
    86 	else
       
    87 		{
       
    88 		aEpSize_Fs = aEpSize_Hs = 0;
       
    89 		return KErrGeneral;
       
    90 		}
       
    91 
       
    92 	// For the reason of the following checks see Table 9-14. "Allowed wMaxPacketSize
       
    93 	// Values for Different Numbers of Transactions per Microframe".
       
    94 	if ((iType == KUsbEpTypeInterrupt) || (iType == KUsbEpTypeIsochronous))
       
    95 		{
       
    96 		if (iTransactions == 1)
       
    97 			{
       
    98 			if (aEpSize_Hs < 513)
       
    99 				{
       
   100 				__KTRACE_OPT(KPANIC, Kern::Printf("  Warning: Ep size too small: %d < 513. Correcting...",
       
   101 												  aEpSize_Hs));
       
   102 				aEpSize_Hs = 513;
       
   103 				}
       
   104 			}
       
   105 		else if (iTransactions == 2)
       
   106 			{
       
   107 			if (aEpSize_Hs < 683)
       
   108 				{
       
   109 				__KTRACE_OPT(KPANIC, Kern::Printf("  Warning: Ep size too small: %d < 683. Correcting...",
       
   110 												  aEpSize_Hs));
       
   111 				aEpSize_Hs = 683;
       
   112 				}
       
   113 			}
       
   114 		}
       
   115 	return KErrNone;
       
   116 	}
       
   117 
       
   118 
       
   119 /** Helper function for logical endpoints and endpoint descriptors:
       
   120 	If not set, assign a valid and meaningful value to iInterval_Hs, deriving from iInterval.
       
   121 	This function modifies the objects's data member(s).
       
   122  */
       
   123 TInt TUsbcEndpointInfo::AdjustPollInterval()
       
   124 	{
       
   125 	if (iInterval_Hs != -1)
       
   126 		{
       
   127 		// Already done.
       
   128 		return KErrNone;
       
   129 		}
       
   130 	if ((iType == KUsbEpTypeBulk) || (iType == KUsbEpTypeControl))
       
   131 		{
       
   132 		// Valid range: 0..255 (maximum NAK rate).
       
   133 		// (The host controller will probably ignore this value though -
       
   134 		//  see the last sentence of section 9.6.6 for details.)
       
   135 		iInterval_Hs = 255;
       
   136 		}
       
   137 	else if (iType == KUsbEpTypeInterrupt)
       
   138 		{
       
   139 		// HS interval = 2^(iInterval_Hs-1) with a valid iInterval_Hs range of 1..16.
       
   140 		// The following table shows the mapping of HS values to actual intervals (and
       
   141 		// thus FS values) for the range of possible FS values (1..255).
       
   142 		// There is not always a 1:1 mapping possible, but we want at least to make sure
       
   143 		// that the HS polling interval is never longer than the FS one (except for 255).
       
   144 		//
       
   145 		// 1 = 1
       
   146 		// 2 = 2
       
   147 		// 3 = 4
       
   148 		// 4 = 8
       
   149 		// 5 = 16
       
   150 		// 6 = 32
       
   151 		// 7 = 64
       
   152 		// 8 = 128
       
   153 		// 9 = 256
       
   154 		if (iInterval == 255)
       
   155 			iInterval_Hs = 9;
       
   156 		else if (iInterval >= 128)
       
   157 			iInterval_Hs = 8;
       
   158 		else if (iInterval >= 64)
       
   159 			iInterval_Hs = 7;
       
   160 		else if (iInterval >= 32)
       
   161 			iInterval_Hs = 6;
       
   162 		else if (iInterval >= 16)
       
   163 			iInterval_Hs = 5;
       
   164 		else if (iInterval >= 8)
       
   165 			iInterval_Hs = 4;
       
   166 		else if (iInterval >= 4)
       
   167 			iInterval_Hs = 3;
       
   168 		else if (iInterval >= 2)
       
   169 			iInterval_Hs = 2;
       
   170 		else if (iInterval == 1)
       
   171 			iInterval_Hs = 1;
       
   172 		else
       
   173 			{
       
   174 			// iInterval wasn't set properly by the user
       
   175 			iInterval_Hs = 1;
       
   176 			return KErrGeneral;
       
   177 			}
       
   178 		}
       
   179 	else if (iType == KUsbEpTypeIsochronous)
       
   180 		{
       
   181 		// Interpretation is the same for FS and HS.
       
   182 		iInterval_Hs = iInterval;
       
   183 		}
       
   184 	else
       
   185 		{
       
   186 		// '1' is a valid value for all endpoint types...
       
   187 		iInterval_Hs = 1;
       
   188 		return KErrGeneral;
       
   189 		}
       
   190 	return KErrNone;
       
   191 	}
       
   192 
       
   193 
       
   194 TUsbcPhysicalEndpoint::TUsbcPhysicalEndpoint()
       
   195 	: iEndpointAddr(0), iIfcNumber(NULL), iLEndpoint(NULL), iSettingReserve(EFalse), iHalt(EFalse)
       
   196 	{
       
   197 	__KTRACE_OPT(KUSB, Kern::Printf("TUsbcPhysicalEndpoint::TUsbcPhysicalEndpoint"));
       
   198 	}
       
   199 
       
   200 
       
   201 TInt TUsbcPhysicalEndpoint::TypeAvailable(TUint aType) const
       
   202 	{
       
   203 	__KTRACE_OPT(KUSB, Kern::Printf("TUsbcPhysicalEndpoint::TypeAvailable"));
       
   204 	switch (aType)
       
   205 		{
       
   206 	case KUsbEpTypeControl:
       
   207 		return (iCaps.iTypesAndDir & KUsbEpTypeControl);
       
   208 	case KUsbEpTypeIsochronous:
       
   209 		return (iCaps.iTypesAndDir & KUsbEpTypeIsochronous);
       
   210 	case KUsbEpTypeBulk:
       
   211 		return (iCaps.iTypesAndDir & KUsbEpTypeBulk);
       
   212 	case KUsbEpTypeInterrupt:
       
   213 		return (iCaps.iTypesAndDir & KUsbEpTypeInterrupt);
       
   214 	default:
       
   215 		__KTRACE_OPT(KPANIC, Kern::Printf("  Error: invalid EP type: %d", aType));
       
   216 		return 0;
       
   217 		}
       
   218 	}
       
   219 
       
   220 
       
   221 TInt TUsbcPhysicalEndpoint::DirAvailable(TUint aDir) const
       
   222 	{
       
   223 	__KTRACE_OPT(KUSB, Kern::Printf("TUsbcPhysicalEndpoint::DirAvailable"));
       
   224 	switch (aDir)
       
   225 		{
       
   226 	case KUsbEpDirIn:
       
   227 		return (iCaps.iTypesAndDir & KUsbEpDirIn);
       
   228 	case KUsbEpDirOut:
       
   229 		return (iCaps.iTypesAndDir & KUsbEpDirOut);
       
   230 	default:
       
   231 		__KTRACE_OPT(KPANIC, Kern::Printf("  Error: invalid EP direction: %d", aDir));
       
   232 		return 0;
       
   233 		}
       
   234 	}
       
   235 
       
   236 
       
   237 TInt TUsbcPhysicalEndpoint::EndpointSuitable(const TUsbcEndpointInfo* aEpInfo, TInt aIfcNumber) const
       
   238 	{
       
   239 	__KTRACE_OPT(KUSB, Kern::Printf("TUsbcPhysicalEndpoint::EndpointSuitable"));
       
   240 	__KTRACE_OPT(KUSB, Kern::Printf("  looking for EP: type=0x%x dir=0x%x size=%d (ifc_num=%d)",
       
   241 									aEpInfo->iType, aEpInfo->iDir, aEpInfo->iSize, aIfcNumber));
       
   242 	if (iSettingReserve)
       
   243 		{
       
   244 		__KTRACE_OPT(KUSB, Kern::Printf("  -> setting conflict"));
       
   245 		return 0;
       
   246 		}
       
   247 	// (aIfcNumber == -1) means the ep is for a new default interface setting
       
   248 	else if (iIfcNumber && (*iIfcNumber != aIfcNumber))
       
   249 		{
       
   250 		// If this endpoint has already been claimed (iIfcNumber != NULL),
       
   251 		// but by a different interface(-set) than the currently looking one
       
   252 		// (*iIfcNumber != aIfcNumber), then it's not available.
       
   253 		// This works because we can assign the same physical endpoint
       
   254 		// to different alternate settings of the *same* interface, and
       
   255 		// because we check for available endpoints for every alternate setting
       
   256 		// as a whole.
       
   257 		__KTRACE_OPT(KUSB, Kern::Printf("  -> ifc conflict"));
       
   258 		return 0;
       
   259 		}
       
   260 	else if (!TypeAvailable(aEpInfo->iType))
       
   261 		{
       
   262 		__KTRACE_OPT(KUSB, Kern::Printf("  -> type conflict"));
       
   263 		return 0;
       
   264 		}
       
   265 	else if (!DirAvailable(aEpInfo->iDir))
       
   266 		{
       
   267 		__KTRACE_OPT(KUSB, Kern::Printf("  -> direction conflict"));
       
   268 		return 0;
       
   269 		}
       
   270 	else if (!(iCaps.iSizes & PacketSize2Mask(aEpInfo->iSize)) && !(iCaps.iSizes & KUsbEpSizeCont))
       
   271 		{
       
   272 		__KTRACE_OPT(KUSB, Kern::Printf("  -> size conflict"));
       
   273 		return 0;
       
   274 		}
       
   275 	else
       
   276 		return 1;
       
   277 	}
       
   278 
       
   279 
       
   280 TUsbcPhysicalEndpoint::~TUsbcPhysicalEndpoint()
       
   281 	{
       
   282 	__KTRACE_OPT(KUSB, Kern::Printf("TUsbcPhysicalEndpoint::~TUsbcPhysicalEndpoint()"));
       
   283 	iLEndpoint = NULL;
       
   284 	}
       
   285 
       
   286 
       
   287 TUsbcLogicalEndpoint::TUsbcLogicalEndpoint(DUsbClientController* aController, TUint aEndpointNum,
       
   288 										   const TUsbcEndpointInfo& aEpInfo, TUsbcInterface* aInterface,
       
   289 										   TUsbcPhysicalEndpoint* aPEndpoint)
       
   290 	: iController(aController), iLEndpointNum(aEndpointNum), iInfo(aEpInfo), iInterface(aInterface),
       
   291 	  iPEndpoint(aPEndpoint)
       
   292 	{
       
   293 	__KTRACE_OPT(KUSB, Kern::Printf("TUsbcLogicalEndpoint::TUsbcLogicalEndpoint()"));
       
   294 	//  Adjust FS/HS endpoint sizes
       
   295 	if (iInfo.AdjustEpSizes(iEpSize_Fs, iEpSize_Hs) != KErrNone)
       
   296 		{
       
   297 		__KTRACE_OPT(KPANIC, Kern::Printf("  Error: Unknown endpoint type: %d", iInfo.iType));
       
   298 		}
       
   299 	__KTRACE_OPT(KUSB, Kern::Printf("  Now set: iEpSize_Fs=%d iEpSize_Hs=%d (iInfo.iSize=%d)",
       
   300 									iEpSize_Fs, iEpSize_Hs, iInfo.iSize));
       
   301 	//  Adjust HS polling interval
       
   302 	if (iInfo.AdjustPollInterval() != KErrNone)
       
   303 		{
       
   304 		__KTRACE_OPT(KPANIC, Kern::Printf("  Error: Unknown ep type (%d) or invalid interval value (%d)",
       
   305 										  iInfo.iType, iInfo.iInterval));
       
   306 		}
       
   307 	__KTRACE_OPT(KUSB, Kern::Printf("  Now set: iInfo.iInterval=%d iInfo.iInterval_Hs=%d",
       
   308 									iInfo.iInterval, iInfo.iInterval_Hs));
       
   309 	// Additional transactions requested on a non High Bandwidth ep?
       
   310 	if ((iInfo.iTransactions > 0) && !aPEndpoint->iCaps.iHighBandwidth)
       
   311 		{
       
   312 		__KTRACE_OPT(KPANIC,
       
   313 					 Kern::Printf("  Warning: Additional transactions requested but not a High Bandwidth ep"));
       
   314 		}
       
   315 	}
       
   316 
       
   317 
       
   318 TUsbcLogicalEndpoint::~TUsbcLogicalEndpoint()
       
   319 	{
       
   320 	__KTRACE_OPT(KUSB, Kern::Printf("TUsbcLogicalEndpoint::~TUsbcLogicalEndpoint: #%d", iLEndpointNum));
       
   321 	// If the real endpoint this endpoint points to is also used by
       
   322 	// any other logical endpoint in any other setting of this interface
       
   323 	// then we leave the real endpoint marked as used. Otherwise we mark
       
   324 	// it as available (set its ifc number pointer to NULL).
       
   325 	const TInt n = iInterface->iInterfaceSet->iInterfaces.Count();
       
   326 	for (TInt i = 0; i < n; ++i)
       
   327 		{
       
   328 		const TUsbcInterface* const ifc = iInterface->iInterfaceSet->iInterfaces[i];
       
   329 		const TInt m = ifc->iEndpoints.Count();
       
   330 		for (TInt j = 0; j < m; ++j)
       
   331 			{
       
   332 			const TUsbcLogicalEndpoint* const ep = ifc->iEndpoints[j];
       
   333 			if ((ep->iPEndpoint == iPEndpoint) && (ep != this))
       
   334 				{
       
   335 				__KTRACE_OPT(KUSB, Kern::Printf("  Physical endpoint still in use -> we leave it as is"));
       
   336 				return;
       
   337 				}
       
   338 			}
       
   339 		}
       
   340 	__KTRACE_OPT(KUSB, Kern::Printf("  Closing DMA channel"));
       
   341 	const TInt idx = iController->EpAddr2Idx(iPEndpoint->iEndpointAddr);
       
   342 	// If the endpoint doesn't support DMA (now or ever) the next operation will be a no-op.
       
   343 	iController->CloseDmaChannel(idx);
       
   344 	__KTRACE_OPT(KUSB, Kern::Printf("  Setting physical ep 0x%02x ifc number to NULL (was %d)",
       
   345 									iPEndpoint->iEndpointAddr, *iPEndpoint->iIfcNumber));
       
   346 	iPEndpoint->iIfcNumber = NULL;
       
   347 	}
       
   348 
       
   349 
       
   350 TUsbcInterface::TUsbcInterface(TUsbcInterfaceSet* aIfcSet, TUint8 aSetting, TBool aNoEp0Requests)
       
   351 	: iEndpoints(2), iInterfaceSet(aIfcSet), iSettingCode(aSetting), iNoEp0Requests(aNoEp0Requests)
       
   352 	{
       
   353 	__KTRACE_OPT(KUSB, Kern::Printf("TUsbcInterface::TUsbcInterface()"));
       
   354 	}
       
   355 
       
   356 
       
   357 TUsbcInterface::~TUsbcInterface()
       
   358 	{
       
   359 	__KTRACE_OPT(KUSB, Kern::Printf("TUsbcInterface::~TUsbcInterface()"));
       
   360 	iEndpoints.ResetAndDestroy();
       
   361 	}
       
   362 
       
   363 
       
   364 TUsbcInterfaceSet::TUsbcInterfaceSet(const DBase* aClientId, TUint8 aIfcNum)
       
   365 	: iInterfaces(2), iClientId(aClientId), iInterfaceNumber(aIfcNum), iCurrentInterface(0)
       
   366 	{
       
   367 	__KTRACE_OPT(KUSB, Kern::Printf("TUsbcInterfaceSet::TUsbcInterfaceSet()"));
       
   368 	}
       
   369 
       
   370 
       
   371 TUsbcInterfaceSet::~TUsbcInterfaceSet()
       
   372 	{
       
   373 	__KTRACE_OPT(KUSB, Kern::Printf("TUsbcInterfaceSet::~TUsbcInterfaceSet()"));
       
   374 	iInterfaces.ResetAndDestroy();
       
   375 	}
       
   376 
       
   377 
       
   378 TUsbcConfiguration::TUsbcConfiguration(TUint8 aConfigVal)
       
   379 	: iInterfaceSets(1), iConfigValue(aConfigVal)			// iInterfaceSets(1): granularity
       
   380 	{
       
   381 	__KTRACE_OPT(KUSB, Kern::Printf("TUsbcConfiguration::TUsbcConfiguration()"));
       
   382 	}
       
   383 
       
   384 
       
   385 TUsbcConfiguration::~TUsbcConfiguration()
       
   386 	{
       
   387 	__KTRACE_OPT(KUSB, Kern::Printf("TUsbcConfiguration::~TUsbcConfiguration()"));
       
   388 	iInterfaceSets.ResetAndDestroy();
       
   389 	}
       
   390 
       
   391 
       
   392 _LIT(KDriverName, "Usbcc");
       
   393 
       
   394 DUsbcPowerHandler::DUsbcPowerHandler(DUsbClientController* aController)
       
   395 	: DPowerHandler(KDriverName), iController(aController)
       
   396 	{}
       
   397 
       
   398 
       
   399 void DUsbcPowerHandler::PowerUp()
       
   400 	{
       
   401 	if (iController)
       
   402 		iController->iPowerUpDfc.Enque();
       
   403 	}
       
   404 
       
   405 
       
   406 void DUsbcPowerHandler::PowerDown(TPowerState)
       
   407 	{
       
   408 	if (iController)
       
   409 		iController->iPowerDownDfc.Enque();
       
   410 	}
       
   411 
       
   412 
       
   413 // -eof-