cmDspKr.h/c, cmDspBuiltIn.c : Added cmKr2 (modeless version of cmKr).
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@ -5482,6 +5482,7 @@ cmDspClassConsFunc_t _cmDspClassBuiltInArray[] =
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cmSegLineClassCons,
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cmSegLineClassCons,
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cmKrClassCons,
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cmKrClassCons,
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cmKr2ClassCons,
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cmTimeLineClassCons,
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cmTimeLineClassCons,
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cmScoreClassCons,
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cmScoreClassCons,
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cmMidiFilePlayClassCons,
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cmMidiFilePlayClassCons,
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246
dsp/cmDspKr.c
246
dsp/cmDspKr.c
@ -281,6 +281,252 @@ cmDspClass_t* cmKrClassCons( cmDspCtx_t* ctx )
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return &_cmKrDC;
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return &_cmKrDC;
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}
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}
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//------------------------------------------------------------------------------------------------------------
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//)
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//( { label:cmDspKr2 file_desc:"Spectral non-linear distortion effect." kw:[sunit] }
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enum
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{
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kWndSmpCntKr2Id,
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kHopFactKr2Id,
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kCeilKr2Id,
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kExpoKr2Id,
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kThreshKr2Id,
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kLwrSlopeKr2Id,
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kUprSlopeKr2Id,
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kMixKr2Id,
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kWetKr2Id,
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kAudioInKr2Id,
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kAudioOutKr2Id
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};
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typedef struct
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{
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cmDspInst_t inst;
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cmCtx* ctx;
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cmSpecDist2_t* sdp;
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} cmDspKr2_t;
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cmDspClass_t _cmKr2DC;
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cmDspInst_t* _cmDspKr2Alloc(cmDspCtx_t* ctx, cmDspClass_t* classPtr, unsigned storeSymId, unsigned instSymId, unsigned id, unsigned va_cnt, va_list vl )
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{
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cmDspVarArg_t args[] =
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{
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{ "wndn", kWndSmpCntKr2Id, 0, 0, kInDsvFl | kUIntDsvFl | kReqArgDsvFl, "Window sample count" },
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{ "hopf", kHopFactKr2Id, 0, 0, kInDsvFl | kUIntDsvFl | kOptArgDsvFl, "Hop factor" },
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{ "ceil", kCeilKr2Id, 0, 0, kInDsvFl | kDoubleDsvFl | kOptArgDsvFl, "Ceiling" },
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{ "expo", kExpoKr2Id, 0, 0, kInDsvFl | kDoubleDsvFl | kOptArgDsvFl, "Exponent" },
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{ "thrh", kThreshKr2Id, 0, 0, kInDsvFl | kDoubleDsvFl | kOptArgDsvFl, "Threshold" },
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{ "lwrs", kLwrSlopeKr2Id, 0, 0, kInDsvFl | kDoubleDsvFl | kOptArgDsvFl, "Lower Slope"},
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{ "uprs", kUprSlopeKr2Id, 0, 0, kInDsvFl | kDoubleDsvFl | kOptArgDsvFl, "Upper Slope"},
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{ "mix", kMixKr2Id, 0, 0, kInDsvFl | kDoubleDsvFl | kOptArgDsvFl, "Mix"},
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{ "wet", kWetKr2Id, 0, 0, kInDsvFl | kSampleDsvFl, "Wet mix level."},
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{ "in", kAudioInKr2Id, 0, 0, kInDsvFl | kAudioBufDsvFl, "Audio Input" },
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{ "out", kAudioOutKr2Id, 0, 1, kOutDsvFl | kAudioBufDsvFl, "Audio Output" },
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{ NULL, 0, 0, 0, 0 }
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};
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cmDspKr2_t* p = cmDspInstAlloc(cmDspKr2_t,ctx,classPtr,args,instSymId,id,storeSymId,va_cnt,vl);
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unsigned defWndSmpCnt = cmDspDefaultUInt(&p->inst,kWndSmpCntKr2Id);
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unsigned wndSmpCnt = cmNextPowerOfTwo( defWndSmpCnt );
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cmDspSetDefaultUInt( ctx,&p->inst, kWndSmpCntKr2Id, defWndSmpCnt, wndSmpCnt );
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cmDspSetDefaultUInt( ctx,&p->inst, kHopFactKr2Id, 0, 4 );
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cmDspSetDefaultDouble( ctx,&p->inst, kCeilKr2Id, 0, 20.0 );
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cmDspSetDefaultDouble( ctx,&p->inst, kExpoKr2Id, 0, 2.0 );
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cmDspSetDefaultDouble( ctx,&p->inst, kThreshKr2Id, 0, 60.0 );
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cmDspSetDefaultDouble( ctx,&p->inst, kLwrSlopeKr2Id, 0, 2.0 );
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cmDspSetDefaultDouble( ctx,&p->inst, kUprSlopeKr2Id, 0, 0.0 );
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cmDspSetDefaultDouble( ctx,&p->inst, kMixKr2Id, 0, 0.0 );
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cmDspSetDefaultSample( ctx,&p->inst, kWetKr2Id, 0, 1.0);
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//_cmDspKr2CmInit(ctx,p); // initialize the cm library
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p->ctx = cmCtxAlloc(NULL,ctx->rpt,ctx->lhH,ctx->stH);
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return &p->inst;
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}
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cmDspRC_t _cmDspKr2Free(cmDspCtx_t* ctx, cmDspInst_t* inst, const cmDspEvt_t* evt )
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{
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cmDspRC_t rc = kOkDspRC;
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cmDspKr2_t* p = (cmDspKr2_t*)inst;
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cmSpecDist2Free(&p->sdp);
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cmCtxFree(&p->ctx);
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//_cmDspKr2CmFinal(ctx,p); // finalize the cm library
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return rc;
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}
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cmDspRC_t _cmDspKr2Setup(cmDspCtx_t* ctx, cmDspKr2_t* p )
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{
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cmDspRC_t rc = kOkDspRC;
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unsigned wndSmpCnt = cmDspUInt(&p->inst,kWndSmpCntKr2Id);
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unsigned hopFact = cmDspUInt(&p->inst,kHopFactKr2Id);
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unsigned olaWndTypeId =kHannWndId;
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cmSpecDist2Free(&p->sdp);
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p->sdp = cmSpecDist2Alloc(p->ctx, NULL, cmDspSamplesPerCycle(ctx), cmDspSampleRate(ctx), wndSmpCnt, hopFact, olaWndTypeId);
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assert(p->sdp != NULL );
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if((rc = cmDspZeroAudioBuf(ctx,&p->inst,kAudioOutKr2Id)) != kOkDspRC )
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return rc;
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return rc;
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}
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cmDspRC_t _cmDspKr2Reset(cmDspCtx_t* ctx, cmDspInst_t* inst, const cmDspEvt_t* evt )
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{
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cmDspKr2_t* p = (cmDspKr2_t*)inst;
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cmDspRC_t rc;
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if((rc = cmDspApplyAllDefaults(ctx,inst)) != kOkDspRC )
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return rc;
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return _cmDspKr2Setup(ctx,p);
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}
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cmDspRC_t _cmDspKr2Exec(cmDspCtx_t* ctx, cmDspInst_t* inst, const cmDspEvt_t* evt )
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{
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cmDspKr2_t* p = (cmDspKr2_t*)inst;
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cmDspRC_t rc = kOkDspRC;
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unsigned iChIdx = 0;
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const cmSample_t* ip = cmDspAudioBuf(ctx,inst,kAudioInKr2Id,iChIdx);
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unsigned iSmpCnt = cmDspVarRows(inst,kAudioInKr2Id);
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// if no connected
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if( iSmpCnt == 0 )
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return rc;
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unsigned oChIdx = 0;
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cmSample_t* op = cmDspAudioBuf(ctx,inst,kAudioOutKr2Id,oChIdx);
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unsigned oSmpCnt = cmDspVarRows(inst,kAudioOutKr2Id);
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const cmSample_t* sp;
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cmSample_t wet = cmDspSample(inst,kWetKr2Id);
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cmSpecDist2Exec(p->sdp,ip,iSmpCnt);
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if((sp = cmSpecDist2Out(p->sdp)) != NULL )
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{
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cmVOS_MultVVS(op,oSmpCnt,sp,wet);
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}
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if( wet<1.0 )
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cmVOS_MultSumVVS(op,oSmpCnt,ip,1.0-wet);
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return rc;
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}
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cmDspRC_t _cmDspKr2Recv(cmDspCtx_t* ctx, cmDspInst_t* inst, const cmDspEvt_t* evt )
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{
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cmDspKr2_t* p = (cmDspKr2_t*)inst;
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cmDspRC_t rc = kOkDspRC;
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cmDspSetEvent(ctx,inst,evt);
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switch( evt->dstVarId )
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{
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case kWndSmpCntKr2Id:
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case kHopFactKr2Id:
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_cmDspKr2Setup(ctx,p);
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// THIS IS A HACK
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// WHEN WND OR HOP CHANGE THE RESULTING CHANGES
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// SHOULD BE ISOLATED IN cmSpecDist() AND THE
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// CURRENT STATE OF THE PARAMETERS SHOULD NOT BE
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// LOST - IF THE CHANGES WERE ISOLATED WITHIN PVANL
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// AND PVSYN IT MIGHT BE POSSIBLE TO DO WITH
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// MINIMAL AUDIO INTERUPTION.
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p->sdp->ceiling = cmDspDouble(inst,kCeilKr2Id);
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p->sdp->expo = cmDspDouble(inst,kExpoKr2Id);
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p->sdp->thresh = cmDspDouble(inst,kThreshKr2Id);
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p->sdp->uprSlope = cmDspDouble(inst,kUprSlopeKr2Id);
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p->sdp->lwrSlope = cmDspDouble(inst,kLwrSlopeKr2Id);
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p->sdp->mix = cmDspDouble(inst,kMixKr2Id);
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printf("wsn:%i hsn:%i\n",p->sdp->wndSmpCnt,p->sdp->hopSmpCnt);
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break;
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case kCeilKr2Id:
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p->sdp->ceiling = cmDspDouble(inst,kCeilKr2Id);
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break;
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case kExpoKr2Id:
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p->sdp->expo = cmDspDouble(inst,kExpoKr2Id);
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break;
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case kThreshKr2Id:
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p->sdp->thresh = cmDspDouble(inst,kThreshKr2Id);
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break;
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case kUprSlopeKr2Id:
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p->sdp->uprSlope = cmDspDouble(inst,kUprSlopeKr2Id);
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break;
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case kLwrSlopeKr2Id:
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p->sdp->lwrSlope = cmDspDouble(inst,kLwrSlopeKr2Id);
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break;
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case kMixKr2Id:
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p->sdp->mix = cmDspDouble(inst,kMixKr2Id);
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break;
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case kWetKr2Id:
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break;
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default:
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{ assert(0); }
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}
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cmSpecDist2Report(p->sdp);
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return rc;
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}
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cmDspClass_t* cmKr2ClassCons( cmDspCtx_t* ctx )
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{
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cmDspClassSetup(&_cmKr2DC,ctx,"Kr2",
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NULL,
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_cmDspKr2Alloc,
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_cmDspKr2Free,
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_cmDspKr2Reset,
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_cmDspKr2Exec,
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_cmDspKr2Recv,
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NULL,NULL,
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"Fourier based non-linear transformer two.");
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return &_cmKr2DC;
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}
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//------------------------------------------------------------------------------------------------------------
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//------------------------------------------------------------------------------------------------------------
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//)
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//)
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//( { label:cmDspTimeLine file_desc:"Time line user interface unit." kw:[sunit] }
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//( { label:cmDspTimeLine file_desc:"Time line user interface unit." kw:[sunit] }
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@ -6,6 +6,7 @@ extern "C" {
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#endif
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#endif
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struct cmDspClass_str* cmKrClassCons( cmDspCtx_t* ctx );
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struct cmDspClass_str* cmKrClassCons( cmDspCtx_t* ctx );
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struct cmDspClass_str* cmKr2ClassCons( cmDspCtx_t* ctx );
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struct cmDspClass_str* cmTimeLineClassCons( cmDspCtx_t* ctx );
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struct cmDspClass_str* cmTimeLineClassCons( cmDspCtx_t* ctx );
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struct cmDspClass_str* cmScoreClassCons( cmDspCtx_t* ctx );
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struct cmDspClass_str* cmScoreClassCons( cmDspCtx_t* ctx );
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struct cmDspClass_str* cmMidiFilePlayClassCons( cmDspCtx_t* ctx );
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struct cmDspClass_str* cmMidiFilePlayClassCons( cmDspCtx_t* ctx );
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