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221 lines
9.8 KiB
C++
221 lines
9.8 KiB
C++
/**@file Declarations for common-use control-layer functions. */
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/*
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* Copyright 2013 Range Networks, Inc.
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*
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* This software is distributed under multiple licenses;
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* see the COPYING file in the main directory for licensing
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* information for this specific distribuion.
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*
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* This use of this software may be subject to additional restrictions.
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* See the LEGAL file in the main directory for details.
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This program is distributed in the hope that it will be useful,
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but WITHOUT ANY WARRANTY; without even the implied warranty of
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MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE.
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*/
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#ifndef CONTROLTRANSFER_H
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#define CONTROLTRANSFER_H
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#include <stdint.h>
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#include <string>
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#include <vector>
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#include <assert.h>
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#include <GSML3CommonElements.h>
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namespace SIP { class DialogMessage; };
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namespace GSM { class L3Frame; class L2LogicalChannel; }
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extern int gCountTranEntry;
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namespace Control {
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using namespace std;
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class TranEntry;
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class HandoverEntry;
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class TransactionEntry;
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class L3LogicalChannel;
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typedef unsigned TranEntryId;
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typedef vector<TranEntryId> TranEntryList;
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extern bool l3rewrite();
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extern void l3start();
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extern void controlInit();
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extern unsigned allocateRTPPorts();
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// Meaning of these bits is hard to find: It is in 48.008 3.2.2.11:
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enum CodecType { // Codec Bitmap defined in 26.103 6.2. It is one or two bytes
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// low bit of first byte in bitmap
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CodecTypeUndefined = 0,
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GSM_FR = 0x1, // aka GSM610
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GSM_HR = 0x2,
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GSM_EFR = 0x4,
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AMR_FR = 0x8,
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AMR_HR = 0x10,
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UMTS_AMR = 0x20,
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UMTS_AMR2 = 0x40,
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TDMA_EFR = 0x80, // high bit of first byte in bitmap
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// We can totally ignore the second byte:
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PDC_EFR = 0x100, // low bit of second byte in bitmap
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AMR_FR_WB = 0x200,
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UMTS_AMR_WB = 0x400,
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OHR_AMR = 0x800,
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OFR_AMR_WB = 0x1000,
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OHR_AMR_WB = 0x2000,
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// then two reserved bits.
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// In addition the above codecs defined in the GSM spec and used on the air-interface,
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// we will put other codecs we might want to use for RTP on the SIP interface in here too
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// so we can use the same CodecSet in the SIP directory.
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// This is not in the spec, but use this value to indicate none of the codecs above.
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PCMULAW = 0x10000, // G.711 PCM, 64kbps. comes in two flavors: uLaw and aLaw.
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PCMALAW = 0x20000 // We dont support it yet.
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// There is also G711.1, which is slighly wider band, 96kbps.
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};
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const char *CodecType2Name(CodecType ct);
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// (pat) Added 10-22-2012.
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// 3GPP 24.008 10.5.4.32 and 3GPP 26.103
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class CodecSet {
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public:
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CodecType mCodecs; // It is a set of CodecEnum
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bool isSet(CodecType bit) { return mCodecs & bit; }
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bool isEmpty() { return !mCodecs; }
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CodecSet(): mCodecs(CodecTypeUndefined) {}
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CodecSet(CodecType wtype) : mCodecs(wtype) {}
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// Allow logical OR of two CodecSets together.
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void orSet(CodecSet other) { mCodecs = (CodecType) (mCodecs | other.mCodecs); }
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void orType(CodecType vals) { mCodecs = (CodecType) (mCodecs | vals); }
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CodecSet operator|(CodecSet other) { return CodecSet((CodecType)(mCodecs | other.mCodecs)); }
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void text(std::ostream&) const;
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friend std::ostream& operator<<(std::ostream& os, const CodecSet&);
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};
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class TMSI_t {
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bool mValid;
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uint32_t mVal;
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public:
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TMSI_t() : mValid(false) {}
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TMSI_t(uint32_t wVal) : mValid(true), mVal(wVal) {}
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TMSI_t &operator=(uint32_t wVal) { mValid=true; mVal = wVal; return *this; }
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TMSI_t &operator=(const TMSI_t &other) { mVal=other.mVal; mValid=other.mValid; return *this; }
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bool valid() const { return mValid; }
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uint32_t value() const { assert(valid()); return mVal; }
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};
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std::ostream& operator<<(std::ostream& os, const TMSI_t&tmsi);
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struct FullMobileId {
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string mImsi;
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TMSI_t mTmsi;
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string mImei;
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string fmidUsername() const; // "IMSI" or "TMSI" or "IMEI" + digits.
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bool fmidMatch(const GSM::L3MobileIdentity &mobileId) const;
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void fmidSet(string value);
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FullMobileId() {} // Nothing needed.
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FullMobileId(const string wAnything) { fmidSet(wAnything); } // Default is an imsi.
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};
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std::ostream& operator<<(std::ostream& os, const FullMobileId&msid);
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/** Call states based on GSM 04.08 5 and ITU-T Q.931 */
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// (pat) These are the states in 4.08 defined in 5.1.2.2 used in procedures described in 5.2.
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// 5.1.1 has a picture of the state machine including these states.
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// The "Call State" numeric values are defined in 10.5.4.6
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// The network side states are N-numbers, and UE side are U-numbers, but with the same numeric values.
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struct CCState {
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enum CallState {
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NullState = 0,
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Paging = 2, // state N0.1 aka MTC MMConnectionPending
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// AnsweredPaging is not a CallControl state.
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// AnsweredPaging = 100, // Not a GSM Call Control state. Intermediate state used by OpenBTS between Paging and CallPresent
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MOCInitiated = 1, // state N1 "Call initiated".
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// 5.1.2.1.3 specifies state U1 in MS for MOC entered when MS requests "call establishment".
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// 4.1.2.2.3 specifies state N1 in network received "call establishment request" but has not responded.
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// Since these are CC states, we previously assumed that "call establishment" meant
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// an L3Setup message, not CM Service Request.
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// However, 24.008 11.3 implies that "CallInitiated" state starts when CM Service Request is sent.
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// The optional authorization procedure intervenes between receipt of CM Service Request and sending the Accept.
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MOCProceeding = 3, // state N3. network sent L3CallProceeding in response to Setup or EmergencySetup.
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MOCDelivered = 4, // N4. MOC network sent L3Alerting. Not used in pre-l3rewrite code.
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CallPresent = 6, // N6. MTC network sent L3Setup, started T303, waiting for L3CallConfirmed.
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CallReceived = 7, // N7. MTC network recv L3CallAlerting. We use it in MOC to indicate SIP active.
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// ConnectRequest = 8 // N8. We do not use.
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MTCConfirmed = 9, // N9. network received L3CallConfirmed.
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Active = 10, // N10. MOC: network received L3ConnectAcknowledge, MTC: network sent L3ConnectAcknowledge
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DisconnectIndication = 12, // N12: Network sent a disconnect
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// There is a DisconnectRequest state in the MS, but not in the network.
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// MTCModify = 27, // N27 not used
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ReleaseRequest = 19 , // N19: Network sent a Release message (per 24.008 5.4.2).
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ConnectIndication = 28, // N28. MOC network sent L3Connect, start T313
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// (pat) These are NOT call control states, but we use the CallState for all types of TransactionEntry.
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SMSDelivering = 101, // MT-SMS set when paging answered; MT-SMS initial TransactionEntry state is NullState.
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SMSSubmitting = 102, // MO-SMS TransactionEntry initial state.
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// (pat) These seem to be call control states to me, but they are not defined
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// for the 10.5.4.6 "Call State" IE, so I am just making up values for them:
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HandoverInbound = 103, // TransactionEntry initial state for inbound handover.
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HandoverProgress = 104,
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HandoverOutbound = 105,
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//BusyReject, // pat removed, not used
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};
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static const char* callStateString(CallState state);
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static bool isInCall(CallState state);
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};
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typedef CCState::CallState CallState;
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// This is the reason a Transaction (TranEntry) was cancelled as desired to be known by the high side.
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// It has nothing to do with the cancel causes on the low side, for example, CC Cause (for cloasing a single call)
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// or RR Cause (for closing an entire channel.)
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// An established SipDialog is ended by a SIP BYE, and an MO [Mobile Originated] SipDialog is canceled early using
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// a SIP CANCEL, so this is used only for the case of an INVITE response where the ACK message has not been sent,
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// or as a non-invite message (eg, SMS MESSAGE) error response. As such, there are only a few codes that
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// the SIP side cares about. The vast majority of plain old errors, for example, loss of contact with the MS
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// or reassignFailure will just map to the same SIP code so we use CancelCauseUnknown, however, all such cases
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// are distinguished from CancelCauseNoAnswerToPage in that we know the MS is on the current system.
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// we just .
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enum CancelCause {
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// Used for anything other than the specific causes below. It is not "unknown" so much as we just
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// dont need to distinguish among various failure or hangup causes because we send the same SIP code for them all.
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CancelCauseUnknown = 0, // Not completely unknown - we know that the MS was on this system.
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CancelCauseNoAnswerToPage, // We dont have any clue if the MS is in this area or not.
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CancelCauseBusy, // The MS is here. A future call may succeed.
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CancelCauseCongestion, // The MS is here, but no resources. A future call may succeed.
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CancelCauseHandoverOutbound, // A special case - the Dialog has been moved elsewhere.
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CancelCauseSipInternalError, // Special case of the SipDialog itself being internally inconsistent.
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CancelCauseOperatorIntervention, // Killed from console.
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};
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/** Return a human-readable string for a GSM::CallState. */
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const char* CallStateString(CallState state);
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std::ostream& operator<<(std::ostream& os, CallState state);
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#if UNUSED_BUT_SAVE_FOR_UMTS
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// A message to the CS L3 state machine. The message may come from a GSM LogicalChannel (FACCH, SDCCH, or SACCH), GPRS, or SIP.
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// This is part of the L3 rewrite.
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class GenericL3Msg {
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public:
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enum GenericL3MsgType {
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MsgTypeLCH,
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MsgTypeSIP
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};
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enum GenericL3MsgType ml3Type;
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const char *typeName();
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GSM::L3Frame *ml3frame;
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GSM::L2LogicalChannel *ml3ch;
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SIP::DialogMessage *mSipMsg;
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const std::string mCallId; // TODO: Now unused, remove.
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//GenericL3Msg(GSM::L3Frame *wFrame, L3LogicalChannel *wChan) : ml3Type(MsgTypeLCH), ml3frame(wFrame),ml3ch(dynamic_cast<L3LogicalChannel*>(wChan)),mSipMsg(0) { assert(ml3frame); }
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GenericL3Msg(GSM::L3Frame *wFrame, GSM::L2LogicalChannel *wChan) : ml3Type(MsgTypeLCH), ml3frame(wFrame),ml3ch(wChan),mSipMsg(0) { assert(ml3frame); }
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GenericL3Msg(SIP::DialogMessage *wSipMsg, std::string wCallId) : ml3Type(MsgTypeSIP), ml3frame(0),ml3ch(0), mSipMsg(wSipMsg), mCallId(wCallId) { assert(mSipMsg); }
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~GenericL3Msg();
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};
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#endif
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void NewTransactionTable_ttAddMessage(TranEntryId tranid,SIP::DialogMessage *dmsg);
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};
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#endif
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