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#-------------------------------------------------------------------#
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#                                                                   #
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#           QTGMC 3.345, by Vit, 2012, 2016 mod by A.SONY           #
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#           QTGMC 3.346, by Vit, 2012, 2016 mod by A.SONY           #
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#                                                                   #
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#   A high quality deinterlacer using motion-compensated temporal   #
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#  smoothing, with a range of features for quality and convenience  #
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#          Originally based on TempGaussMC_beta2 by Didée           #
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#                                                                   #
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#-------------------------------------------------------------------#
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#
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# Full documentation is in the 'QTGMC' html file that comes with this script
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#
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# --- LATEST CHANGES ---
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#
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# v3.346s
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# - EEDI3+NNEDI3 bug fix by ndjamena
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# - Renamed DftThreads parameter to FftThreads, to set the ncpu argument of FFT3DFilter (from VS)
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# - FFT3DFilter will work now in YUY2, use it with Denoiser="fft3df" (or use NoisePreset)
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#
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# v3.345s
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# - work with SMDegrain_KNLMeansCL now to process chroma too
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#
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# v3.343s
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# - edit in ChromaEdi
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# - others
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#
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# v3.34s (mod) 2016 12 18 (ravewulf idea in another way)
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# - Added yadifmod2 (if you need old one use it like this EdiMode="cYadif" or EdiMode="RepcYadif")
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# - fast and clean up YUY2 (will work in x64 now, no need to SSETools)
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#
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# v3.33s (mod) 2016 12 06
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# - Add TR2=4 and TR2=5
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# - add TV_range bool and dither_luma_rebuild (from SMDegrain) Str and Amp
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# - for avsplus now QTGMC_Bob is ready for any 420, not only yv12
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#
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# v3.33s (mod) 2016 04 11
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# - Add KNLMeansCL as another Denoiser to NoiseProcess
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# - others
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#
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# v3.33s (mod) 2016 01 19
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# - make QTGMC_deflate/QTGMC_inflate work with YUY2 using masktool2 for avs 2.60
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#
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# v3.33s (mod) 2015 10 23
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# - revert to QTGMC_deflate/QTGMC_inflate quoted from Dogway
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#
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# v3.33s (mod) 2015 9 10
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# - fix Multiple QTGMC Calls
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# - others fix
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#
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# v3.33s (mod) 2015 8 6
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# - some changes in bob to speed up
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#
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# v3.33s (mod) 2015 8 4
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# - fix bug in YUY2 with SourceMatch
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# - add slice=false to ditherpost to avoid artefacts
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#
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# v3.33s (mod)
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# - fix bob chroma
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# - work with new masktool2 for avs 2.60 in YUY2
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#
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# v3.33d (mod)
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# - Added 32 bit precision option through the lsbd (for dfttest and knlmeanscl) and lsb (mdegrain) options.
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# - optimized some mask handling a bit as originally suggested by Vit
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# - others
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#
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# v3.33
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# - Increased maximum value for Rep0, Rep1 and Rep2 to 7 (from 5). Higher values help with flicker on static detail, potential for minor motion blur
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# - Bug fix for the fact that Bob always outputs a BFF clip regardless of field order of input (thanks ajp_anton)
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# - Improved generation of noise (NoiseDeint="Generate") for noise bypass / EZKeepGrain
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# - Minor change to denoising
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#
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# v3.32
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# - Bugfix with shutter blur and ChromaMotion (thanks Heaud)
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# - Tweaked vector recalculation for shutter motion blur
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# - Changed defaults for TR2 when using source-match
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# - Minor bugfix with SLMode/SLRad on pass-through settings
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#
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# --- REQUIREMENTS ---
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#
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# Input colorspaces: YV12, YUY2, others as plugins supports
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#
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# Core plugins:
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#	MVTools2 (2.7.5.22 or above from pinterf https://github.com/pinterf/mvtools/releases)
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#	MaskTools v2 (2.0b1 or above)
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#	NNEDI3 (0.9.4.6 or above)
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#	RgTools
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#
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# Additional plugins:
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#	NNEDI2, NNEDI, EEDI3, EEDI2, TDeInt - if selected directly or via a source-match preset
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#	yadifmod2 - for Preset="Ultra Fast" or if selected directly
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#	FFT3DFilter - if selected for noise processing
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#	dfttest (1.9.4 or above) - if selected for noise processing
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#		For FFT3DFilter & ddftest you also need the FFTW3 library (FFTW.org). On Windows the file needed for both is libfftw3f-3.dll. However, for FFT3DFilter
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#		the file needs to be called FFTW3.dll, so you will need two copies and rename one. On Windows put the files in your System32 or SysWow64 folder
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#   KNLMeansCL - if selected for noise processing
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#	AddGrainC - if NoiseDeint="Generate" selected for noise bypass
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# --- GETTING STARTED ---
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#
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# Install AviSynth and ensure you have at least the core plugins listed in the requirements section above. Put them in the plugins autoload folder.
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# To use QTGMC write a script like this:
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#	YourSource("yourfile")   # DGDecode_mpeg2source, FFVideoSource, AviSource, whatever your source requires
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#	QTGMC( Preset="Slow" )
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#	SelectEven()             # Add this line to keep original frame rate, leave it out for smoother doubled frame rate
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#
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# Save this script with an ".avs" extension. You can now use it as an AVI source for encoding.
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#
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# The "Preset" used selects sensible settings for a given encoding speed. Choose a preset from:
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#	"Placebo", "Very Slow", "Slower", "Slow", "Medium", "Fast", "Faster", "Very Fast", "Super Fast", "Ultra Fast" & "Draft"
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# The default preset is "Slower"
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# Don't be obsessed with using slower settings as the differences can be small. HD material benefits little from extreme settings (and will be very slow)
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# For much faster speeds read the full documentation, the section on 'Multi-threading'
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#
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# There are many settings for tweaking the script, full details in the main documentation. You can display settings currently being used with "ShowSettings":
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#	QTGMC( Preset="Slow", ShowSettings=true )
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function QTGMC( clip Input, string "Preset", int "TR0", int "TR1", int "TR2", int "Rep0", int "Rep1", int "Rep2", string "EdiMode", bool "RepChroma", \
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                    int "NNSize", int "NNeurons", int "EdiQual", int "EdiMaxD", string "ChromaEdi", int "EdiThreads", clip "EdiExt", float "Sharpness", \
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                    int "DftThreads", bool "DenoiseMC", int "NoiseTR", float "Sigma", bool "ChromaNoise", val "ShowNoise", float "GrainRestore", \
121+
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                    int "BlockSize", int "Overlap", int "Search", int "SearchParam", int "PelSearch", bool "ChromaMotion", bool "TrueMotion", int "Lambda", \
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                    int "LSAD", int "PNew", int "PLevel", bool "GlobalMotion", int "DCT", int "ThSAD1", int "ThSAD2", int "ThSCD1", int "ThSCD2", \
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                    int "SourceMatch", string "MatchPreset", string "MatchEdi", string "MatchPreset2", string "MatchEdi2", int "MatchTR2", \
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                    float "MatchEnhance", int "Lossless", int "NoiseProcess", float "EZDenoise", float "EZKeepGrain", string "NoisePreset", string "Denoiser", \
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                    int "FftThreads", bool "DenoiseMC", int "NoiseTR", float "Sigma", bool "ChromaNoise", val "ShowNoise", float "GrainRestore", \
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                    float "NoiseRestore", string "NoiseDeint", bool "StabilizeNoise", int "InputType", float "ProgSADMask", int "FPSDivisor", \
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                    int "ShutterBlur", float "ShutterAngleSrc", float "ShutterAngleOut", int "SBlurLimit", bool "Border", bool "Precise", string "Tuning", \
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                    bool "ShowSettings", string "GlobalNames", string "PrevGlobals", int "ForceTR", \
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                    val "BT", val "DetailRestore", val "MotionBlur", val "MBlurLimit", val "NoiseBypass", float "Str", float "Amp", bool "TV_range", bool "lsbd", bool "lsb" )
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{
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	# EdiMode="RepcYadif"/"cYadif" require the Yadif plugin, which doesn't autoload. Typically the calling script would load it.
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	# Temporary Warnings
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	Assert( !defined(BT),            "QTGMC: Setting BT has been replaced by setting NoiseTR" )
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	Assert( !defined(DetailRestore), "QTGMC: Setting DetailRestore has been renamed to GrainRestore" )
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	Assert( !defined(MotionBlur),    "QTGMC: Setting MotionBlur has been renamed to ShutterBlur" )
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	Assert( !defined(MBlurLimit),    "QTGMC: Setting MBlurLimit has been renamed to SBlurLimit" )
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	Assert( !defined(NoiseBypass),   "QTGMC: Setting NoiseBypass has been renamed to NoiseProcess" )
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	#---------------------------------------
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	# Presets
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    lsbd         = default( lsbd,    false)
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    lsb          = default( lsb,     false)
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    Str          = default( Str,      1.0 )
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    Amp          = default( Amp,   0.0625 )
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    TV_range     = default( TV_range, true)
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	# Select presets / tuning
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	Preset = default( Preset, "Slower" )
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	pNum = (Preset == "Placebo"   ) ? 0 : \
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	       (Preset == "Very Slow" ) ? 1 : \
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	       (Preset == "Slower"    ) ? 2 : \
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	       (Preset == "Slow"      ) ? 3 : \
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	       (Preset == "Medium"    ) ? 4 : \
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	       (Preset == "Fast"      ) ? 5 : \
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	       (Preset == "Faster"    ) ? 6 : \
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	       (Preset == "Very Fast" ) ? 7 : \
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	       (Preset == "Super Fast") ? 8 : \
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	       (Preset == "Ultra Fast") ? 9 : \
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	       (Preset == "Draft"     ) ? 10 : 11
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	Assert( pNum  < 11, "'Preset' choice is invalid" )
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	mpNum1 = (!defined(MatchPreset))       ? ((pNum + 3 <= 9) ? (pNum + 3) : 9) : \
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	         (MatchPreset == "Placebo"   ) ? 0 : \
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	         (MatchPreset == "Very Slow" ) ? 1 : \
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	         (MatchPreset == "Slower"    ) ? 2 : \
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	         (MatchPreset == "Slow"      ) ? 3 : \
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	         (MatchPreset == "Medium"    ) ? 4 : \
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	         (MatchPreset == "Fast"      ) ? 5 : \
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	         (MatchPreset == "Faster"    ) ? 6 : \
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	         (MatchPreset == "Very Fast" ) ? 7 : \
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	         (MatchPreset == "Super Fast") ? 8 : \
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	         (MatchPreset == "Ultra Fast") ? 9 : \
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	         (MatchPreset == "Draft"     ) ? 10 : 11
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	Assert( mpNum1 < 10, "'MatchPreset' choice is invalid/unsupported" )
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	MatchPreset = Select( mpNum1, "Placebo", "Very Slow", "Slower", "Slow", "Medium", "Fast", "Faster", "Very Fast", "Super Fast", "Ultra Fast", "Draft" )
178
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	mpNum2 = (!defined(MatchPreset2))       ? ((mpNum1 + 2 <= 9) ? (mpNum1 + 2) : 9) : \
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	         (MatchPreset2 == "Placebo"   ) ? 0 : \
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	         (MatchPreset2 == "Very Slow" ) ? 1 : \
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	         (MatchPreset2 == "Slower"    ) ? 2 : \
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	         (MatchPreset2 == "Slow"      ) ? 3 : \
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	         (MatchPreset2 == "Medium"    ) ? 4 : \
185
	         (MatchPreset2 == "Fast"      ) ? 5 : \
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	         (MatchPreset2 == "Faster"    ) ? 6 : \
187
	         (MatchPreset2 == "Very Fast" ) ? 7 : \
188
	         (MatchPreset2 == "Super Fast") ? 8 : \
189
	         (MatchPreset2 == "Ultra Fast") ? 9 : \
190
	         (MatchPreset2 == "Draft"     ) ? 10 : 11
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	Assert( mpNum2 < 10, "'MatchPreset2' choice is invalid/unsupported" )
192
	MatchPreset2 = Select( mpNum2, "Placebo", "Very Slow", "Slower", "Slow", "Medium", "Fast", "Faster", "Very Fast", "Super Fast", "Ultra Fast", "Draft" )
193
194
	NoisePreset = default( NoisePreset, "Fast" )
195
	npNum = (NoisePreset == "Slower" ) ? 0 : \
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	        (NoisePreset == "Slow"   ) ? 1 : \
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	        (NoisePreset == "Medium" ) ? 2 : \
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	        (NoisePreset == "Fast"   ) ? 3 : \
199
	        (NoisePreset == "Faster" ) ? 4 : 5
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	Assert( npNum < 5, "'NoisePreset' choice is invalid" )
201
202
	Tuning = default( Tuning, "None" )
203
	tNum = (Tuning == "None"  ) ? 0 : \
204
	       (Tuning == "DV-SD" ) ? 1 : \
205
	       (Tuning == "DV-HD" ) ? 2 : 3
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	Assert( tNum < 3, "'Tuning' choice is invalid" )
207
208
	# Tunings only affect blocksize in this version
209
	bs = Select( tNum,  16, 16, 32 )
210
	bs2 = (bs >= 16) ? 32 : bs * 2
211
212
	#                                                               Very                                                        Very      Super      Ultra
213
	# Preset groups:                                     Placebo    Slow      Slower    Slow      Medium    Fast      Faster    Fast      Fast       Fast       Draft
214
	TR0          = default( TR0,          Select( pNum,  2,         2,        2,        2,        2,        2,        1,        1,        1,         1,         0      ) )
215
	TR1          = default( TR1,          Select( pNum,  2,         2,        2,        1,        1,        1,        1,        1,        1,         1,         1      ) )
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	TR2X         = default( TR2,          Select( pNum,  3,         2,        1,        1,        1,        0,        0,        0,        0,         0,         0      ) )
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	Rep0         = default( Rep0,         Select( pNum,  4,         4,        4,        4,        3,        3,        0,        0,        0,         0,         0      ) )
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	Rep1         = default( Rep1,         Select( pNum,  0,         0,        0,        0,        0,        0,        0,        0,        0,         0,         0      ) )
219
	Rep2         = default( Rep2,         Select( pNum,  4,         4,        4,        4,        4,        4,        4,        4,        3,         3,         0      ) )
220
	EdiMode      = default( EdiMode,      Select( pNum, "NNEDI3",  "NNEDI3", "NNEDI3", "NNEDI3", "NNEDI3", "NNEDI3", "NNEDI3", "NNEDI3", "NNEDI3",  "RepYadif","Bob"   ) )
221
	NNSize       = default( NNSize,       Select( pNum,  1,         1,        1,        1,        5,        5,        4,        4,        4,         4,         4      ) )
222
	NNeurons     = default( NNeurons,     Select( pNum,  2,         2,        1,        1,        1,        0,        0,        0,        0,         0,         0      ) )
223
	EdiQual      = default( EdiQual,      Select( pNum,  1,         1,        1,        1,        1,        1,        1,        1,        1,         1,         1      ) )
224
	EdiMaxD      = default( EdiMaxD,      Select( pNum,  12,        10,       8,        7,        7,        6,        6,        5,        4,         4,         4      ) )
225
	SMode        = default( SMode,        Select( pNum,  2,         2,        2,        2,        2,        2,        2,        2,        2,         2,         0      ) )
226
	SLModeX      = default( SLMode,       Select( pNum,  2,         2,        2,        2,        2,        2,        2,        2,        0,         0,         0      ) )
227
	SLRad        = default( SLRad,        Select( pNum,  3,         1,        1,        1,        1,        1,        1,        1,        1,         1,         1      ) )
228
	Sbb          = default( Sbb,          Select( pNum,  3,         1,        1,        0,        0,        0,        0,        0,        0,         0,         0      ) )
229
	SrchClipPP   = default( SrchClipPP,   Select( pNum,  3,         3,        3,        3,        3,        2,        2,        2,        1,         1,         0      ) )
230
	SubPel       = default( SubPel,       Select( pNum,  2,         2,        2,        2,        1,        1,        1,        1,        1,         1,         1      ) )
231
	Blocksize    = default( Blocksize,    Select( pNum,  bs,        bs,       bs,       bs,       bs,       bs,       bs2,      bs2,      bs2,       bs2,       bs2    ) )
232
	bs = Blocksize
233
	Overlap      = default( Overlap,      Select( pNum,  bs/2,      bs/2,     bs/2,     bs/2,     bs/2,     bs/2,     bs/2,     bs/4,     bs/4,      bs/4,      bs/4   ) )
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	Search       = default( Search,       Select( pNum,  5,         4,        4,        4,        4,        4,        4,        4,        0,         0,         0      ) )
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	SearchParam  = default( SearchParam,  Select( pNum,  2,         2,        2,        2,        2,        2,        2,        1,        1,         1,         1      ) )
236
	PelSearch    = default( PelSearch,    Select( pNum,  2,         2,        2,        2,        1,        1,        1,        1,        1,         1,         1      ) )
237
	ChromaMotion = default( ChromaMotion, Select( pNum,  true,      true,     true,     false,    false,    false,    false,    false,    false,     false,     false  ) )
238
	Precise      = default( Precise,      Select( pNum,  true,      true,     false,    false,    false,    false,    false,    false,    false,     false,     false  ) )
239
	ProgSADMask  = default( ProgSADMask,  Select( pNum,  10.0,      10.0,     10.0,     10.0,     10.0,     0.0,      0.0,      0.0,      0.0,       0.0,       0.0    ) )
240
241
	# Noise presets                                           Slower     Slow       Medium     Fast       Faster
242
	Denoiser       = default( Denoiser,       Select( npNum, "dfttest", "dfttest", "dfttest", "fft3df",  "fft3df" ) )
243
	DenoiseMC      = default( DenoiseMC,      Select( npNum,  true,      true,      false,     false,     false   ) )
244
	NoiseTR        = default( NoiseTR,        Select( npNum,  2,         1,         1,         1,         0       ) )
245
	NoiseDeint     = default( NoiseDeint,     Select( npNum, "Generate","Bob",      "",        "",        ""      ) )
246
	StabilizeNoise = default( StabilizeNoise, Select( npNum,  true,      true,      true,      false,     false   ) )
247
248
	# The basic source-match step corrects and re-runs the interpolation of the input clip. So it initialy uses same interpolation settings as the main preset
249
	SourceMatch   = default( SourceMatch, 0 )
250
	MatchNNSize   = NNSize
251
	MatchNNeurons = NNeurons
252
	MatchEdiMaxD  = EdiMaxD
253
	MatchEdiQual  = EdiQual
254
255
	# However, can use a faster initial interpolation when using source-match allowing the basic source-match step to "correct" it with higher quality settings
256
	Assert( SourceMatch == 0 || mpNum1 >= pNum, "'MatchPreset' cannot use a slower setting than 'Preset'" )
257
	#                                                                    Very                                                        Very      Super     Ultra
258
	# Basic source-match presets                                Placebo  Slow      Slower    Slow      Medium    Fast      Faster    Fast      Fast      Fast
259
	NNSize   = (SourceMatch == 0) ? NNSize   : Select( mpNum1,  1,       1,        1,        1,        5,        5,        4,        4,        4,        4     )
260
	NNeurons = (SourceMatch == 0) ? NNeurons : Select( mpNum1,  2,       2,        1,        1,        1,        0,        0,        0,        0,        0     )
261
	EdiMaxD  = (SourceMatch == 0) ? EdiMaxD  : Select( mpNum1,  12,      10,       8,        7,        7,        6,        6,        5,        4,        4     )
262
	EdiQual  = (SourceMatch == 0) ? EdiQual  : Select( mpNum1,  1,       1,        1,        1,        1,        1,        1,        1,        1,        1     )
263
	TempEdi  = EdiMode # Main interpolation is actually done by basic-source match step when enabled, so a little swap and wriggle is needed
264
	EdiMode  = (SourceMatch == 0) ? EdiMode  : default( MatchEdi, ((mpNum1 < 9) ?  EdiMode : "Yadif") ) # Force Yadif for "Ultra Fast" basic source match
265
	MatchEdi = TempEdi
266
267
	#                                                          Very                                                        Very      Super     Ultra
268
	# Refined source-match presets                   Placebo   Slow      Slower    Slow      Medium    Fast      Faster    Fast      Fast      Fast
269
	MatchEdi2 = default( MatchEdi2, Select( mpNum2, "NNEDI3", "NNEDI3", "NNEDI3", "NNEDI3", "NNEDI3", "NNEDI3", "NNEDI3", "NNEDI3", "TDeint",  ""    ) )
270
	MatchNNSize2                  = Select( mpNum2,  1,        1,        1,        1,        5,        5,        4,        4,        4,        4     )
271
	MatchNNeurons2                = Select( mpNum2,  2,        2,        1,        1,        1,        0,        0,        0,        0,        0     )
272
	MatchEdiMaxD2                 = Select( mpNum2,  12,       10,       8,        7,        7,        6,        6,        5,        4,        4     )
273
	MatchEdiQual2                 = Select( mpNum2,  1,        1,        1,        1,        1,        1,        1,        1,        1,        1     )
274
275
276
	#---------------------------------------
277
	# Settings
278
279
	# Core and Interpolation defaults
280-
	EdiQual    = (EdiMode == "NNEDI3" && EdiQual > 2 ) ? 2 : EdiQual  # Smaller range for EdiQual in NNEDI3
280+
281
	RepChroma  = default( RepChroma,  true )
282
	EdiThreads = default( EdiThreads, 0    )
283
	ChromaEdi  = default( ChromaEdi,  ""   )
284
	NNeurons   = (EdiMode == "NNEDI2" && NNeurons > 2) ? 2 : NNeurons # Smaller range for NNeurons in NNEDI2 (which calls it nsize)
285
	EdiQual    = (EdiMode == "EEDI3+NNEDI3" || EdiMode == "NNEDI3") && EdiQual > 2 ? 2 : EdiQual  # Smaller range for EdiQual in NNEDI3
286
287
	# Source-match / lossless defaults
288
	MatchTR1     = TR1
289
	MatchTR2     = default( MatchTR2,     1   )
290
	MatchEnhance = default( MatchEnhance, 0.5 )
291
	Lossless     = default( Lossless,     0   )
292
	Assert( Lossless <= 2, "Lossless setting only supports mode 1 ('true lossless') and mode 2 ('fake lossless') - see documentation in script and consider source-match settings" )
293
294
	# Sharpness defaults. Sharpness default is always 1.0 (0.2 with source-match), but adjusted to give roughly same sharpness for all settings
295
	SMode      = (defined(Sharpness) && Sharpness == 0.0) ? 0 : SMode
296
	SLMode     = (SourceMatch > 0) ? default(SLMode, 0) : SLModeX  # ***Sharpness limiting disabled by default for source-match***
297
	SLMode     = (SLRad <= 0)      ? 0 : SLMode
298
	spatialSL  = (SLMode == 1 || SLMode == 3)
299
	temporalSL = (SLMode == 2 || SLMode == 4)
300
	Sharpness  = default( Sharpness, (SMode == 0) ? 0.0 : ((SourceMatch > 0) ? 0.2 : 1.0) )      # Default sharpness is 1.0, or 0.2 if using source-match
301
	sharpMul   = (temporalSL) ? 2 : (spatialSL) ? 1.5 : 1                                        # Adjust sharpness based on other settings
302
	sharpAdj   = Sharpness * (sharpMul * (0.2 + TR1*0.15 + TR2*0.25) + ((SMode == 1) ? 0.1 : 0)) # [This needs a bit more refinement]
303
	Sbb        = (SMode == 0) ? 0 : Sbb
304
	SOvs       = default( SOvs,   0   )
305
	SVThin     = default( SVThin, 0.0 )
306
307
	# Noise processing settings
308
	Assert( !defined(EZDenoise) || EZDenoise <= 0.0 || !defined(EZKeepGrain) || EZKeepGrain <= 0.0, "QTGMC: EZDenoise and EZKeepGrain cannot be used together" )
309
	NoiseProcess = defined(NoiseProcess) ? NoiseProcess : \
310
	               (defined(EZDenoise)   && EZDenoise   > 0.0)    ? 1 : \
311
	               (defined(EZKeepGrain) && EZKeepGrain > 0.0)    ? 2 : \
312
				   (Preset == "Placebo" || Preset == "Very Slow") ? 2 : 0
313
	GrainRestore = defined(GrainRestore) ? GrainRestore : \
314
	               (defined(EZDenoise)   && EZDenoise   > 0.0) ? 0.0 : \
315
	               (defined(EZKeepGrain) && EZKeepGrain > 0.0) ? 0.3 * sqrt(EZKeepGrain) : \
316
				                                                Select( NoiseProcess, 0.0, 0.7, 0.3 )
317
	NoiseRestore = defined(NoiseRestore) ? NoiseRestore : \
318
	               (defined(EZDenoise)   && EZDenoise   > 0.0) ? 0.0 : \
319-
	DftThreads   = default( DftThreads, EdiThreads )
319+
320
				                                                Select( NoiseProcess, 0.0, 0.3, 0.1 )
321
	Sigma        = defined(Sigma)       ? Sigma : \
322
	               (defined(EZDenoise)   && EZDenoise   > 0.0) ? EZDenoise : \
323
	               (defined(EZKeepGrain) && EZKeepGrain > 0.0) ? 4.0 * EZKeepGrain : 2.0
324
	FftThreads   = default( FftThreads, EdiThreads )
325
	ChromaNoise  = default( ChromaNoise, false )
326
	ShowNoise    = default( ShowNoise, 0.0 )
327
	ShowNoise    = IsBool( ShowNoise ) ? (ShowNoise ? 10.0 : 0.0) : ShowNoise
328
	NoiseProcess = (ShowNoise > 0.0)   ? 2   : NoiseProcess
329
	NoiseRestore = (ShowNoise > 0.0)   ? 1.0 : NoiseRestore
330
	NoiseTR      = (NoiseProcess == 0) ? 0   : NoiseTR
331
	GrainRestore = (NoiseProcess == 0) ? 0.0 : GrainRestore
332
	NoiseRestore = (NoiseProcess == 0) ? 0.0 : NoiseRestore
333
	totalRestore = GrainRestore + NoiseRestore
334
	StabilizeNoise = (totalRestore <= 0) ? false : StabilizeNoise
335
	noiseTD  = Select( NoiseTR, 1, 3, 5 )
336
	noiseCentre = (Denoiser == "dfttest") ? "128" : "128.5"
337
338
	# MVTools settings
339
	SubPelInterp = default( SubPelInterp, 2     )
340
	TrueMotion   = default( TrueMotion,   false )
341
	GlobalMotion = default( GlobalMotion, true  )
342
	Lambda       = default( Lambda, ((TrueMotion) ? 1000 : 100 ) * (BlockSize*BlockSize)/(8*8) )
343
	LSAD         = default( LSAD,    (TrueMotion) ? 1200 : 400 )
344
	PNew         = default( PNew,    (TrueMotion) ? 50   : 25  )
345
	PLevel       = default( PLevel,  (TrueMotion) ? 1    : 0   )
346
	DCT          = default( DCT,     0          )
347
	ThSAD1       = default( ThSAD1,  10 * 8*8   )
348
	ThSAD2       = default( ThSAD2,   4 * 8*8   )
349
	ThSCD1       = default( ThSCD1,  180        )
350
	ThSCD2       = default( ThSCD2,  98         )
351
352
	# Motion blur settings
353
	FPSDivisor  = default( FPSDivisor, 1 )
354
	ShutterBlur = default( ShutterBlur, 0 )
355
	ShutterAngleSrc = default( ShutterAngleSrc, 180 )
356
	ShutterAngleOut = default( ShutterAngleOut, 180 )
357
	SBlurLimit  = default( SBlurLimit, 4 )
358
	ShutterBlur = (ShutterAngleOut * FPSDivisor == ShutterAngleSrc) ? 0 : ShutterBlur  # If motion blur output is same as input
359
360
	# Miscellaneous
361
	InputType      = default( InputType,     0        )
362
	Border         = default( Border,        false    )
363
	ShowSettings   = default( ShowSettings,  false    )
364
	GlobalNames    = default( GlobalNames,  "QTGMC"   )
365
	PrevGlobals    = default( PrevGlobals,  "Replace" )
366
	ForceTR        = default( ForceTR,       0        )
367
	ReplaceGlobals = (PrevGlobals == "Replace" || PrevGlobals == "Reuse") # If reusing existing globals put them back afterwards - simplifies logic later
368
	ReuseGlobals   = (PrevGlobals == "Reuse")
369
	ProgSADMask    = (InputType != 2 && InputType != 3) ? 0.0 : ProgSADMask
370
	rgBlur         = (Precise) ? 11 : 12
371
372
	# Get maximum temporal radius needed
373
	maxTR = (temporalSL)       ? SLRad : 0
374
	maxTR = (MatchTR2 > maxTR) ? MatchTR2 : maxTR
375
	maxTR = (TR1 > maxTR)      ? TR1 : maxTR
376
   	maxTR = (TR2 > maxTR)      ? TR2 : maxTR
377
   	maxTR = (NoiseTR > maxTR)  ? NoiseTR : maxTR
378
	maxTR = (ProgSADMask > 0.0 || StabilizeNoise || ShutterBlur > 0) ? (maxTR > 1 ? maxTR : 1) : maxTR
379
	maxTR = (ForceTR > MaxTR)  ? ForceTR : maxTR
380
381
382
	#---------------------------------------
383
	# Pre-Processing
384
385
	w = Input.Width()
386
	h = Input.Height()
387
	yuy2 = Input.IsYUY2()
388
	epsilon = 0.0001
389
390
	# Reverse "field" dominance for progressive repair mode 3 (only difference from mode 2)
391
	compl = (InputType == 3) ? Input.ComplementParity() : Input
392
393
	# Pad vertically during processing (to prevent artefacts at top & bottom edges)
394
	clip = (Border) ? compl.PointResize( w,h+8, 0,-4,0,h+8+epsilon ) : compl
395
	h = (Border) ? h+8 : h
396
397
	# Calculate padding needed for MVTools super clips to avoid crashes [fixed in latest MVTools, but keeping this code for a while]
398
	hpad = w - (Int((w - Overlap) / (Blocksize - Overlap)) * (Blocksize - Overlap) + Overlap)
399
	vpad = h - (Int((h - Overlap) / (Blocksize - Overlap)) * (Blocksize - Overlap) + Overlap)
400
	hpad = (hpad > 8) ? hpad : 8 # But match default padding if possible
401
	vpad = (vpad > 8) ? vpad : 8
402
403
404
	#---------------------------------------
405
	# Motion Analysis
406
407
	# >>> Planar YUY2 for motion analysis, interleaved whilst blurring search clip
408
	planarClip = yuy2 ? clip.converttoyv16() : clip
409
410
	# Bob the input as a starting point for motion search clip
411
	bobbed = (InputType == 0) ? planarClip.QTGMC_Bob( 0,0.5 ) : \
412
	         (InputType == 1) ? planarClip : \
413
	                            planarClip.Blur( 0,1 )
414
415
	# If required, get any existing global clips with a matching "GlobalNames" setting. Unmatched values get NOP (= 0)
416
	srchClip  = QTGMC_GetUserGlobal( GlobalNames, "srchClip",  ReuseGlobals )
417
	srchSuper = QTGMC_GetUserGlobal( GlobalNames, "srchSuper", ReuseGlobals )
418
	bVec1     = QTGMC_GetUserGlobal( GlobalNames, "bVec1",     ReuseGlobals )
419
	fVec1     = QTGMC_GetUserGlobal( GlobalNames, "fVec1",     ReuseGlobals )
420
	bVec2     = QTGMC_GetUserGlobal( GlobalNames, "bVec2",     ReuseGlobals )
421
	fVec2     = QTGMC_GetUserGlobal( GlobalNames, "fVec2",     ReuseGlobals )
422
	bVec3     = QTGMC_GetUserGlobal( GlobalNames, "bVec3",     ReuseGlobals )
423
	fVec3     = QTGMC_GetUserGlobal( GlobalNames, "fVec3",     ReuseGlobals )
424
	bVec4     = QTGMC_GetUserGlobal( GlobalNames, "bVec4",     ReuseGlobals )
425
	fVec4     = QTGMC_GetUserGlobal( GlobalNames, "fVec4",     ReuseGlobals )
426
	bVec5     = QTGMC_GetUserGlobal( GlobalNames, "bVec5",     ReuseGlobals )
427
	fVec5     = QTGMC_GetUserGlobal( GlobalNames, "fVec5",     ReuseGlobals )
428
429
	CMmt = ChromaMotion ? 3   :  1
430
	CMts = ChromaMotion ? 255 :  0
431
	CMrg = ChromaMotion ? 12  : -1
432
433
	# The bobbed clip will shimmer due to being derived from alternating fields. Temporally smooth over the neighboring frames using a binomial kernel. Binomial
434
	# kernels give equal weight to even and odd frames and hence average away the shimmer. The two kernels used are [1 2 1] and [1 4 6 4 1] for radius 1 and 2.
435
	# These kernels are approximately Gaussian kernels, which work well as a prefilter before motion analysis (hence the original name for this script)
436
	# Create linear weightings of neighbors first                                                 -2    -1     0    1     2
437
	ts1 = (!IsClip(srchClip) && TR0 > 0) ? bobbed.TemporalSoften( 1, 255,CMts, 28, 2 ) : NOP()  # 0.00  0.33  0.33  0.33  0.00
438
	ts2 = (!IsClip(srchClip) && TR0 > 1) ? bobbed.TemporalSoften( 2, 255,CMts, 28, 2 ) : NOP()  # 0.20  0.20  0.20  0.20  0.20
439
440
	# Combine linear weightings to give binomial weightings - TR0=0: (1), TR0=1: (1:2:1), TR0=2: (1:4:6:4:1)
441
	binomial0 = IsClip(srchClip) ? NOP() : \
442
	            (TR0 == 0)       ? bobbed : \
443
	            (TR0 == 1)       ? (ChromaMotion ? ts1.Merge( bobbed, 0.25 ) : ts1.MergeLuma( bobbed, 0.25 )) : \
444
	                               (ChromaMotion ? ts1.Merge( ts2, 0.357 ).Merge( bobbed, 0.125 ) : ts1.MergeLuma( ts2, 0.357 ).MergeLuma( bobbed, 0.125 ))
445
446
	# Remove areas of difference between temporal blurred motion search clip and bob that are not due to bob-shimmer - removes general motion blur
447
	repair0 = (IsClip(srchClip) || Rep0 == 0) ? binomial0 : binomial0.QTGMC_KeepOnlyBobShimmerFixes( bobbed, Rep0, (RepChroma && ChromaMotion) )
448
449
	# Blur image and soften edges to assist in motion matching of edge blocks. Blocks are matched by SAD (sum of absolute differences between blocks), but even
450
	# a slight change in an edge from frame to frame will give a high SAD due to the higher contrast of edges
451
	spatialBlur = (IsClip(srchClip) || SrchClipPP == 0) ? NOP() : \
452
	              (SrchClipPP == 1) ? repair0.BilinearResize( w/2, h/2 ).RemoveGrain( 12,CMrg).BilinearResize( w, h ) : \
453
	                                  repair0.RemoveGrain( 12,CMrg).GaussResize( w,h, 0,0, w+epsilon,h+epsilon, p=2 )
454
455
	spatialBlur = (IsClip(spatialBlur) && SrchClipPP > 1) ? (ChromaMotion ? spatialBlur.Merge( repair0, 0.1 ) : spatialBlur.MergeLuma( repair0, 0.1 )) : spatialBlur
456
	tweaked     = (!IsClip(srchClip) && SrchClipPP > 1) ? mt_lutxy( repair0, bobbed, "x 3 + y < x 3 + x 3 - y > x 3 - y ? ?", U=CMmt,V=CMmt ) : NOP()
457
	srchcheck   = IsClip(srchClip)
458
	srchClip    = srchcheck         ? srchClip : \
459
	              (SrchClipPP == 0) ? repair0 : \
460
	              (SrchClipPP < 3)  ? spatialBlur : \
461
	                                  spatialBlur.mt_lutxy( tweaked, "x 7 + y < x 2 + x 7 - y > x 2 - x 51 * y 49 * + 100 / ? ?", U=CMmt,V=CMmt )
462
	srchClip    = tv_range && !srchcheck ? srchClip.Dither_Luma_Rebuild(S0=Str,c=Amp,slice=false,lsb=lsb,uv=CMmt) : srchClip
463
	# Calculate forward and backward motion vectors from motion search clip
464
	srchSuper = IsClip(srchSuper) ? srchSuper : \
465
	            (maxTR > 0)       ? srchClip.MSuper( pel=SubPel, sharp=SubPelInterp, hpad=hpad, vpad=vpad, chroma=ChromaMotion ) : NOP()
466
	bVec5 = IsClip(bVec5) ? bVec5 : \
467
	        (maxTR > 4)   ? srchSuper.MAnalyse( isb=true,  delta=5, blksize=BlockSize, overlap=Overlap, search=Search, searchparam=SearchParam, \
468
	                                            pelsearch=PelSearch, truemotion=TrueMotion, lambda=Lambda, lsad=LSAD, pnew=PNew, plevel=PLevel, \
469
	                                            global=GlobalMotion, DCT=DCT, chroma=ChromaMotion ) : NOP()
470
	bVec4 = IsClip(bVec4) ? bVec4 : \
471
	        (maxTR > 3)   ? srchSuper.MAnalyse( isb=true,  delta=4, blksize=BlockSize, overlap=Overlap, search=Search, searchparam=SearchParam, \
472
	                                            pelsearch=PelSearch, truemotion=TrueMotion, lambda=Lambda, lsad=LSAD, pnew=PNew, plevel=PLevel, \
473
	                                            global=GlobalMotion, DCT=DCT, chroma=ChromaMotion ) : NOP()
474
	bVec3 = IsClip(bVec3) ? bVec3 : \
475
	        (maxTR > 2)   ? srchSuper.MAnalyse( isb=true,  delta=3, blksize=BlockSize, overlap=Overlap, search=Search, searchparam=SearchParam, \
476
	                                            pelsearch=PelSearch, truemotion=TrueMotion, lambda=Lambda, lsad=LSAD, pnew=PNew, plevel=PLevel, \
477
	                                            global=GlobalMotion, DCT=DCT, chroma=ChromaMotion ) : NOP()
478
	bVec2 = IsClip(bVec2) ? bVec2 : \
479
	        (maxTR > 1)   ? srchSuper.MAnalyse( isb=true,  delta=2, blksize=BlockSize, overlap=Overlap, search=Search, searchparam=SearchParam, \
480
	                                            pelsearch=PelSearch, truemotion=TrueMotion, lambda=Lambda, lsad=LSAD, pnew=PNew, plevel=PLevel, \
481
	                                            global=GlobalMotion, DCT=DCT, chroma=ChromaMotion ) : NOP()
482
	bVec1 = IsClip(bVec1) ? bVec1 : \
483
	        (maxTR > 0)   ? srchSuper.MAnalyse( isb=true,  delta=1, blksize=BlockSize, overlap=Overlap, search=Search, searchparam=SearchParam, \
484
	                                            pelsearch=PelSearch, truemotion=TrueMotion, lambda=Lambda, lsad=LSAD, pnew=PNew, plevel=PLevel, \
485
	                                            global=GlobalMotion, DCT=DCT, chroma=ChromaMotion ) : NOP()
486
	fVec1 = IsClip(fVec1) ? fVec1 : \
487
	        (maxTR > 0)   ? srchSuper.MAnalyse( isb=false, delta=1, blksize=BlockSize, overlap=Overlap, search=Search, searchparam=SearchParam, \
488
	                                            pelsearch=PelSearch, truemotion=TrueMotion, lambda=Lambda, lsad=LSAD, pnew=PNew, plevel=PLevel, \
489
	                                            global=GlobalMotion, DCT=DCT, chroma=ChromaMotion ) : NOP()
490
	fVec2 = IsClip(fVec2) ? fVec2 : \
491
	        (maxTR > 1)   ? srchSuper.MAnalyse( isb=false, delta=2, blksize=BlockSize, overlap=Overlap, search=Search, searchparam=SearchParam, \
492
	                                            pelsearch=PelSearch, truemotion=TrueMotion, lambda=Lambda, lsad=LSAD, pnew=PNew, plevel=PLevel, \
493
	                                            global=GlobalMotion, DCT=DCT, chroma=ChromaMotion ) : NOP()
494
	fVec3 = IsClip(fVec3) ? fVec3 : \
495
	        (maxTR > 2)   ? srchSuper.MAnalyse( isb=false, delta=3, blksize=BlockSize, overlap=Overlap, search=Search, searchparam=SearchParam, \
496
	                                            pelsearch=PelSearch, truemotion=TrueMotion, lambda=Lambda, lsad=LSAD, pnew=PNew, plevel=PLevel, \
497
	                                            global=GlobalMotion, DCT=DCT, chroma=ChromaMotion ) : NOP()
498
	fVec4 = IsClip(fVec4) ? fVec4 : \
499
	        (maxTR > 3)   ? srchSuper.MAnalyse( isb=false, delta=4, blksize=BlockSize, overlap=Overlap, search=Search, searchparam=SearchParam, \
500
	                                            pelsearch=PelSearch, truemotion=TrueMotion, lambda=Lambda, lsad=LSAD, pnew=PNew, plevel=PLevel, \
501
	                                            global=GlobalMotion, DCT=DCT, chroma=ChromaMotion ) : NOP()
502
	fVec5 = IsClip(fVec5) ? fVec5 : \
503
	        (maxTR > 4)   ? srchSuper.MAnalyse( isb=false, delta=5, blksize=BlockSize, overlap=Overlap, search=Search, searchparam=SearchParam, \
504
	                                            pelsearch=PelSearch, truemotion=TrueMotion, lambda=Lambda, lsad=LSAD, pnew=PNew, plevel=PLevel, \
505
	                                            global=GlobalMotion, DCT=DCT, chroma=ChromaMotion ) : NOP()
506
507
	# Expose search clip, motion search super clip and motion vectors to calling script through globals
508
	QTGMC_SetUserGlobal( GlobalNames, "srchClip",  srchClip,  ReplaceGlobals )
509
	QTGMC_SetUserGlobal( GlobalNames, "srchSuper", srchSuper, ReplaceGlobals )
510
	QTGMC_SetUserGlobal( GlobalNames, "bVec1",     bVec1,     ReplaceGlobals )
511
	QTGMC_SetUserGlobal( GlobalNames, "fVec1",     fVec1,     ReplaceGlobals )
512
	QTGMC_SetUserGlobal( GlobalNames, "bVec2",     bVec2,     ReplaceGlobals )
513
	QTGMC_SetUserGlobal( GlobalNames, "fVec2",     fVec2,     ReplaceGlobals )
514
	QTGMC_SetUserGlobal( GlobalNames, "bVec3",     bVec3,     ReplaceGlobals )
515
	QTGMC_SetUserGlobal( GlobalNames, "fVec3",     fVec3,     ReplaceGlobals )
516
	QTGMC_SetUserGlobal( GlobalNames, "bVec4",     bVec4,     ReplaceGlobals )
517
	QTGMC_SetUserGlobal( GlobalNames, "fVec4",     fVec4,     ReplaceGlobals )
518
	QTGMC_SetUserGlobal( GlobalNames, "bVec5",     bVec5,     ReplaceGlobals )
519
	QTGMC_SetUserGlobal( GlobalNames, "fVec5",     fVec5,     ReplaceGlobals )
520
521
522
	#---------------------------------------
523
	# Noise Processing
524
525
	# >>>> Interleaved YUY2 for denoising, planar whilst pre-motion compensating
526
527
	# Expand fields to full frame size before extracting noise (allows use of motion vectors which are frame-sized)
528
	fullClip  = (NoiseProcess == 0) ? NOP() : \
529
	            (InputType > 0)     ? clip : \
530
	                                  clip.QTGMC_Bob( 0,1.0 )
531
	fullClip  = (yuy2 && NoiseTR > 0) ? fullClip.converttoyv16() : fullClip
532
	fullSuper = (NoiseTR > 0)         ? fullClip.MSuper( pel=SubPel, levels=1, hpad=hpad, vpad=vpad, chroma=ChromaNoise ) : NOP() #TEST chroma OK?
533
534
	# Create a motion compensated temporal window around current frame and use to guide denoisers
535
	noiseWindow = (NoiseProcess == 0) ? NOP() : \
536
	              (!DenoiseMC)        ? fullClip : \
537
	              (NoiseTR == 0)      ? fullClip : \
538
	              (NoiseTR == 1)      ? Interleave( fullClip.MCompensate( fullSuper, fVec1, thSCD1=ThSCD1,thSCD2=ThSCD2 ), \
539
	                                                fullClip, \
540
	                                                fullClip.MCompensate( fullSuper, bVec1, thSCD1=ThSCD1,thSCD2=ThSCD2 ) ) : \
541-
	noiseWindow = yuy2 && (Denoiser == "FFT3DFilter") && NoiseTR > 0 ? noiseWindow.ConvertToYUY2() : noiseWindow
541+
542
	                                                fullClip.MCompensate( fullSuper, fVec1, thSCD1=ThSCD1,thSCD2=ThSCD2 ), \
543-
	           (Denoiser == "dfttest")  ? noiseWindow.dfttest( Y=true, U=ChromaNoise, V=ChromaNoise, sigma=Sigma*4, tbsize=noiseTD, threads=DftThreads, lsb=lsbd ) : \
543+
544-
	        (Denoiser == "KNLMeansCL")  ? noiseWindow.SMDegrain_KNLMeansCL(Chroma=ChromaNoise, lsb=lsbd, a=2, d=NoiseTR, h=Sigma, device_type="GPU") : \
544+
545-
	                                      noiseWindow.FFT3DFilter( plane=(ChromaNoise ? 4 : 0), sigma=Sigma, bt=noiseTD )
545+
546
	noiseWindow = yuy2 && (Denoiser == "fft3df") && NoiseTR > 0 ? noiseWindow.ConvertToYUY2() : noiseWindow
547
	dnWindow = (NoiseProcess == 0)      ? NOP() : \
548
	           (Denoiser == "dfttest")  ? noiseWindow.dfttest( Y=true, U=ChromaNoise, V=ChromaNoise, sigma=Sigma*4, tbsize=noiseTD, threads=FftThreads, lsb=lsbd ) : \
549
	        (Denoiser == "KNLMeansCL")  ? noiseWindow.SMDegrain_KNLMeansCL(Chroma=ChromaNoise, lsb=lsbd, a=2, d=NoiseTR, h=Sigma, device_type="GPU" ) : \
550
	                                      noiseWindow.FFT3DFilter( plane=(ChromaNoise ? 4 : 0), sigma=Sigma, bt=noiseTD, ncpu=FftThreads )
551
	dnwindow = (Denoiser == "KNLMeansCL" || Denoiser == "dfttest") && (NoiseProcess != 0) && lsbd ? dnWindow.ditherpost(mode=6, U=ChromaNoise?3:2, V=ChromaNoise?3:2, slice=false) : dnWindow
552
	dnwindow = (Denoiser == "KNLMeansCL" || Denoiser == "dfttest") && (NoiseProcess != 0) && yuy2 ? dnWindow.ConvertToYUY2() : dnWindow
553
554
	# Rework denoised clip to match source format - various code paths here: discard the motion compensation window, discard doubled lines (from point resize)
555
	# Also reweave to get interlaced noise if source was interlaced (could keep the full frame of noise, but it will be poor quality from the point resize)
556
	denoised = (NoiseProcess == 0) ? NOP() : \
557
	           (!DenoiseMC)        ? ((InputType > 0) ? dnWindow : dnWindow.SeparateFields().SelectEvery( 4, 0,3 ).Weave()) : \
558
	           (InputType > 0)     ? ((NoiseTR == 0)  ? dnWindow : dnWindow.SelectEvery( noiseTD, NoiseTR )) : \
559
	                                 dnWindow.SeparateFields().SelectEvery( noiseTD*4, NoiseTR*2,NoiseTR*6+3 ).Weave()
560
561
	# >>>> Switch to planar YUY2 for noise bypass
562
563
	CNmt1   = ChromaNoise ? 3 : 1
564
	CNmt2   = ChromaNoise ? 3 : 2
565
	CNmt128 = ChromaNoise ? 3 : -128
566
567
	# Get actual noise from difference. Then 'deinterlace' where we have weaved noise - create the missing lines of noise in various ways
568
	planarDenoised = (NoiseProcess == 0) ? NOP() : yuy2 ? denoised.converttoyv16() : denoised
569
	noise = (totalRestore > 0.0)  ? mt_makediff( planarClip, planarDenoised, U=CNmt1,V=CNmt1 ) : NOP()
570
	deintNoise = (NoiseProcess == 0 || totalRestore == 0.0) ? NOP() : \
571
	             (InputType != 0)                           ? noise : \
572
	             (NoiseDeint == "Bob")                      ? noise.QTGMC_Bob( 0,0.5 ) : \
573
	             (NoiseDeint == "Generate")                 ? noise.QTGMC_Generate2ndFieldNoise( denoised, ChromaNoise ) : \
574
	                                                          noise.DoubleWeave()
575
	# Motion-compensated stabilization of generated noise
576
	noiseSuper = (StabilizeNoise) ? deintNoise.MSuper( pel=SubPel, sharp=SubPelInterp, levels=1, hpad=hpad, vpad=vpad, chroma=ChromaNoise ) : NOP()
577
	mcNoise    = (StabilizeNoise) ? deintNoise.MCompensate( noiseSuper, bVec1, thSCD1=ThSCD1,thSCD2=ThSCD2 ) : NOP()
578
	finalNoise = (StabilizeNoise) ? mt_lutxy( deintNoise, mcNoise, "x 128 - abs y 128 - abs > x y ? 0.6 * x y + 0.2 * +", U=CNmt1,V=CNmt1 ) : deintNoise
579
580
	# If NoiseProcess=1 denoise input clip. If NoiseProcess=2 leave noise in the clip and let the temporal blurs "denoise" it for a stronger effect
581
	innerClip = (NoiseProcess == 1) ? denoised : clip
582
583
584
	#---------------------------------------
585
	# Interpolation
586
587
	# >>>> Interleaved YUY2 for interpolation
588
589
	# Support badly deinterlaced progressive content - drop half the fields and reweave to get 1/2fps interlaced stream appropriate for QTGMC processing
590
	ediInput = (InputType == 2 || InputType == 3) ? innerClip.SeparateFields().SelectEvery(4,0,3).Weave() : innerClip
591
592
	# Create interpolated image as starting point for output
593
	edi1 = defined(EdiExt) ? EdiExt.PointResize( w,h, 0,(EdiExt.Height()-h)/2, -0,h+epsilon ) : \
594
	                         QTGMC_Interpolate( ediInput, InputType, EdiMode, NNSize, NNeurons, EdiQual, EdiMaxD, EdiThreads, bobbed, ChromaEdi )
595
596
	# >>>> Switch to planar YUY2 during next step - remains planar until very end of script except blurring for back blending & SVThin
597
598
	# InputType=2,3: use motion mask to blend luma between original clip & reweaved clip based on ProgSADMask setting. Use chroma from original clip in any case
599
	inputTypeBlend = (ProgSADMask > 0.0) ? MMask( srchClip, bVec1, kind=1, ml=ProgSADMask ) : NOP()
600
	edi = (InputType != 2 && InputType != 3) ? (!yuy2 ? edi1 : edi1.ConvertToYV16()) :\
601
	      (ProgSADMask <= 0.0)               ? (!yuy2 ? edi1.MergeChroma( innerClip ) : edi1.MergeChroma( innerClip ).ConvertToYV16()) : \
602
	                                           (!yuy2 ? mt_merge( innerClip, edi1, inputTypeBlend, U=2,V=2 ) : \
603
											            mt_merge( innerClip.ConvertToYV16(), edi1.ConvertToYV16(), inputTypeBlend, U=2,V=2 ))
604
605
	# Get the max/min value for each pixel over neighboring motion-compensated frames - used for temporal sharpness limiting
606
	ediSuper = (TR1 > 0 || temporalSL)   ? edi.MSuper( pel=SubPel, sharp=SubPelInterp, levels=1, hpad=hpad, vpad=vpad ) : NOP()
607
	bComp1   = (temporalSL)              ? edi.MCompensate( ediSuper, bVec1, thSCD1=ThSCD1,thSCD2=ThSCD2              ) : NOP()
608
	fComp1   = (temporalSL)              ? edi.MCompensate( ediSuper, fVec1, thSCD1=ThSCD1,thSCD2=ThSCD2              ) : NOP()
609
	tMax     = (temporalSL)              ? edi.mt_logic( fComp1, "max", U=3,V=3 ).mt_logic( bComp1, "max", U=3,V=3 )    : NOP()
610
	tMin     = (temporalSL)              ? edi.mt_logic( fComp1, "min", U=3,V=3 ).mt_logic( bComp1, "min", U=3,V=3 )    : NOP()
611
	bComp3   = (SLRad > 1 && temporalSL) ? edi.MCompensate( ediSuper, bVec3, thSCD1=ThSCD1,thSCD2=ThSCD2              ) : NOP()
612
	fComp3   = (SLRad > 1 && temporalSL) ? edi.MCompensate( ediSuper, fVec3, thSCD1=ThSCD1,thSCD2=ThSCD2              ) : NOP()
613
	tMax     = (SLRad > 1 && temporalSL) ? tMax.mt_logic( fComp3, "max", U=3,V=3 ).mt_logic( bComp3, "max", U=3,V=3 )   : tMax
614
	tMin     = (SLRad > 1 && temporalSL) ? tMin.mt_logic( fComp3, "min", U=3,V=3 ).mt_logic( bComp3, "min", U=3,V=3 )   : tMin
615
616
617
	#---------------------------------------
618
	# Create basic output
619
620
	# Use motion vectors to blur interpolated image (edi) with motion-compensated previous and next frames. As above, this is done to remove shimmer from
621
	# alternate frames so the same binomial kernels are used. However, by using motion-compensated smoothing this time we avoid motion blur. The use of
622
	# MDegrain1 (motion compensated) rather than TemporalSmooth makes the weightings *look* different, but they evaluate to the same values
623
	# Create linear weightings of neighbors first                                                                                -2    -1     0    1     2
624
	degrain1 = (TR1 > 0) ? edi.MDegrain1( ediSuper, bVec1,fVec1, thSAD=ThSAD1, thSCD1=ThSCD1,thSCD2=ThSCD2, lsb=lsb) : NOP()  # 0.00  0.33  0.33  0.33  0.00
625
	degrain2 = (TR1 > 1) ? edi.MDegrain1( ediSuper, bVec2,fVec2, thSAD=ThSAD1, thSCD1=ThSCD1,thSCD2=ThSCD2, lsb=lsb) : NOP()  # 0.33  0.00  0.33  0.00  0.33
626
	degrain1 = (TR1 > 0) && lsb ? degrain1.ditherpost(mode=6, slice=false) : degrain1
627
	degrain2 = (TR1 > 1) && lsb ? degrain2.ditherpost(mode=6, slice=false) : degrain2
628
629
	# Combine linear weightings to give binomial weightings - TR1=0: (1), TR1=1: (1:2:1), TR1=2: (1:4:6:4:1)
630
	binomial1 = (TR1 == 0) ? edi : \
631
	            (TR1 == 1) ? degrain1.Merge( edi, 0.25 ) : \
632
	                         degrain1.Merge( degrain2, 0.2 ).Merge( edi, 0.0625 )
633
634
	# Remove areas of difference between smoothed image and interpolated image that are not bob-shimmer fixes: repairs residual motion blur from temporal smooth
635
	repair1 = (Rep1 == 0) ? binomial1 : binomial1.QTGMC_KeepOnlyBobShimmerFixes( edi, Rep1, RepChroma )
636
637
	# Apply source match - use difference between output and source to succesively refine output [extracted to function to clarify main code path]
638
	match = (SourceMatch == 0) ? repair1 : \
639
	                             repair1.QTGMC_ApplySourceMatch( InputType, ediInput, bVec1,fVec1, bVec2,fVec2, SubPel, SubPelInterp, hpad, vpad, \
640
	                                                             ThSAD1, ThSCD1, ThSCD2, SourceMatch, MatchTR1, MatchEdi, MatchNNSize, MatchNNeurons, \
641
	                                                             MatchEdiQual, MatchEdiMaxD, MatchTR2, MatchEdi2, MatchNNSize2, MatchNNeurons2, MatchEdiQual2, \
642
	                                                             MatchEdiMaxD2, MatchEnhance, EdiThreads, lsb )
643
644
	# Lossless=2 - after preparing an interpolated, de-shimmered clip, restore the original source fields into it and clean up any artefacts.
645
	# This mode will not give a true lossless result because the resharpening and final temporal smooth are still to come, but it will add further detail.
646
	# However, it can introduce minor combing. This setting is best used together with source-match (it's effectively the final source-match stage).
647
	lossed1 = (Lossless == 2) ? QTGMC_MakeLossless( match, innerClip, InputType ) : match
648
649
650
	#---------------------------------------
651
	# Resharpen / retouch output
652
653
	# Resharpen to counteract temporal blurs. Little sharpening needed for source-match mode since it has already recovered sharpness from source
654
	vresharp1 = (SMode == 2) ? Merge( lossed1.mt_expand( mode="vertical", U=3,V=3 ), lossed1.mt_inpand( mode="vertical", U=3,V=3 ) ) : NOP()
655
	vresharp  = (Precise && SMode == 2) ? vresharp1.mt_lutxy( lossed1, "x y < x 1 + x y > x 1 - x ? ?", U=3,V=3 ) : vresharp1 # Precise mode: reduce tiny overshoot
656
	resharp   = (SMode == 0) ? lossed1 : \
657
	            (SMode == 1) ? lossed1.mt_lutxy( lossed1.RemoveGrain( rgBlur ),  "x x y - "+ string(sharpAdj) + " * +", U=3,V=3 ) : \
658
	                           lossed1.mt_lutxy( vresharp.RemoveGrain( rgBlur ), "x x y - "+ string(sharpAdj) + " * +", U=3,V=3 )
659
660
	# Slightly thin down 1-pixel high horizontal edges that have been widened into neigboring field lines by the interpolator
661
	SVThinSc = SVThin * 6.0
662
	vertMedD = (SVthin > 0.0) ? mt_lutxy( lossed1, lossed1.VerticalCleaner( mode=1, modeU=-1, modeV=-1 ), "y x - " + string(SVThinSc) + " * 128 +", U=1,V=1 ) : NOP()
663
	vertMedD = (SVthin > 0.0) ? (vertMedD.Blur( 1,0 )) : NOP()
664
	neighborD = (SVthin > 0.0) ? mt_lutxy( vertMedD, vertMedD.RemoveGrain( rgBlur,-1 ), "y 128 - abs x 128 - abs > y 128 ?" ) : NOP()
665
	thin      = (SVthin > 0.0) ? resharp.mt_adddiff( neighborD, U=2,V=2 ) : resharp
666
667
	# Back blend the blurred difference between sharpened & unsharpened clip, before (1st) sharpness limiting (Sbb == 1,3). A small fidelity improvement
668
	backBlend1 = (Sbb != 1 && Sbb != 3) ? thin : \
669
		                 thin.mt_makediff( mt_makediff( thin, lossed1, U=1,V=1 ).RemoveGrain( 12, -1 ) \
670
	                         .GaussResize( w,h, 0,0, w+epsilon,h+epsilon, p=5 ), U=2,V=2 )
671
672
	# Limit over-sharpening by clamping to neighboring (spatial or temporal) min/max values in original
673
	# Occurs here (before final temporal smooth) if SLMode == 1,2. This location will restrict sharpness more, but any artefacts introduced will be smoothed
674
	sharpLimit1 = (SLMode == 1) ? backBlend1.Repair( ((SLrad <= 1) ? edi : backBlend1.Repair( edi, 12 )), 1 ) : \
675
	              (SLMode == 2) ? backBlend1.mt_clamp( tMax,tMin, Sovs,Sovs, U=3,V=3 ) : \
676
	                              backBlend1
677
678
	# Back blend the blurred difference between sharpened & unsharpened clip, after (1st) sharpness limiting (Sbb == 2,3). A small fidelity improvement
679
	backBlend2 = (Sbb < 2) ? sharpLimit1 : \
680
		                 sharpLimit1.mt_makediff( mt_makediff( sharpLimit1, lossed1, U=1,V=1 ).RemoveGrain( 12, -1 ) \
681
	                                    .GaussResize( w,h, 0,0, w+epsilon,h+epsilon, p=5 ), U=2,V=2 )
682
683
	# Add back any extracted noise, prior to final temporal smooth - this will restore detail that was removed as "noise" without restoring the noise itself
684
	# Average luma of FFT3DFilter extracted noise is 128.5, so deal with that too
685
	addNoise1 = (GrainRestore <= 0.0) ? backBlend2 : \
686
		                                backBlend2.mt_adddiff( finalNoise.mt_lut( "x " + noiseCentre + " - " + string(GrainRestore) + " * 128 +", U=CNmt1,V=CNmt1 ), U=CNmt2,V=CNmt2 )
687
688
	# Final light linear temporal smooth for denoising
689
	stableSuper = (TR2 > 0) ? addNoise1.MSuper( pel=SubPel, sharp=SubPelInterp, levels=1, hpad=hpad, vpad=vpad ) : NOP()
690
	stable  = (TR2 == 0) ? addNoise1 : \
691
	          (TR2 == 1) ? addNoise1.MDegrain1( stableSuper, bVec1,fVec1,                                                     thSAD=ThSAD2, thSCD1=ThSCD1,thSCD2=ThSCD2, lsb=lsb ) : \
692
	          (TR2 == 2) ? addNoise1.MDegrain2( stableSuper, bVec1,fVec1, bVec2,fVec2,                                        thSAD=ThSAD2, thSCD1=ThSCD1,thSCD2=ThSCD2, lsb=lsb ) : \
693
 	          (TR2 == 3) ? addNoise1.MDegrain3( stableSuper, bVec1,fVec1, bVec2,fVec2, bVec3,fVec3,                           thSAD=ThSAD2, thSCD1=ThSCD1,thSCD2=ThSCD2, lsb=lsb ) : \
694
 	          (TR2 == 4) ? addNoise1.MDegrain4( stableSuper, bVec1,fVec1, bVec2,fVec2, bVec3,fVec3, bVec4,fVec4,              thSAD=ThSAD2, thSCD1=ThSCD1,thSCD2=ThSCD2, lsb=lsb ) : \
695
 	                       addNoise1.MDegrain5( stableSuper, bVec1,fVec1, bVec2,fVec2, bVec3,fVec3, bVec4,fVec4, bVec5,fVec5, thSAD=ThSAD2, thSCD1=ThSCD1,thSCD2=ThSCD2, lsb=lsb )
696
	stable  = (TR2 > 0) && lsb ? stable.ditherpost(mode=6, slice=false) : stable
697
698
	# Remove areas of difference between final output & basic interpolated image that are not bob-shimmer fixes: repairs motion blur caused by temporal smooth
699
	repair2 = (Rep2 == 0) ? stable : stable.QTGMC_KeepOnlyBobShimmerFixes( edi, Rep2, RepChroma )
700
701
	# Limit over-sharpening by clamping to neighboring (spatial or temporal) min/max values in original
702
	# Occurs here (after final temporal smooth) if SLMode == 3,4. Allows more sharpening here, but more prone to introducing minor artefacts
703
	sharpLimit2 = (SLMode == 3) ? repair2.Repair( ((SLrad <= 1) ? edi : repair2.Repair( edi, 12 )), 1 ) : \
704
	              (SLMode == 4) ? repair2.mt_clamp( tMax,tMin, Sovs,Sovs, U=3,V=3 ) : \
705
	                              repair2
706
707
	# Lossless=1 - inject source fields into result and clean up inevitable artefacts. Provided NoiseRestore=0.0 or 1.0, this mode will make the script result 
708
	# properly lossless, but this will retain source artefacts and cause some combing (where the smoothed deinterlace doesn't quite match the source)
709
	lossed2 = (Lossless == 1) ? QTGMC_MakeLossless( sharpLimit2, innerClip, InputType ) : sharpLimit2
710
711
	# Add back any extracted noise, after final temporal smooth. This will appear as noise/grain in the output
712
	# Average luma of FFT3DFilter extracted noise is 128.5, so deal with that too
713
	addNoise2 = (NoiseRestore <= 0.0) ? lossed2 : \
714
		                                lossed2.mt_adddiff( finalNoise.mt_lut( "x " + noiseCentre + " - " + string(NoiseRestore) + " * 128 +", U=CNmt1,V=CNmt1 ), U=CNmt2,V=CNmt2 )
715
716
717
	#---------------------------------------
718
	# Post-Processing
719
720
	# Shutter motion blur - get level of blur depending on output framerate and blur already in source
721
	blurLevel = (ShutterAngleOut * FPSDivisor - ShutterAngleSrc) * 100.0 / 360.0
722
	Assert( blurLevel >= 0, "Cannot reduce motion blur already in source: increase ShutterAngleOut or FPSDivisor" )
723
	Assert( blurLevel <= 200, "Exceeded maximum motion blur level: decrease ShutterAngleOut or FPSDivisor" )
724
725
	# ShutterBlur mode 2,3 - get finer resolution motion vectors to reduce blur "bleeding" into static areas
726
	rBlockDivide = Select( ShutterBlur, 1, 1, 2, 4 )
727
	rBlockSize = BlockSize / rBlockDivide
728
	rOverlap   = Overlap   / rBlockDivide
729
	rBlockSize = (rBlockSize < 4) ? 4 : rBlockSize
730
	rOverlap   = (rOverlap   < 2) ? 2 : rOverlap
731
	rBlockDivide = BlockSize / rBlockSize
732
	rLambda = Lambda / (rBlockDivide * rBlockDivide)
733
	sbBVec1 = (ShutterBlur > 1) ? srchSuper.MRecalculate( bVec1, thSAD=ThSAD1, blksize=rBlockSize, overlap=rOverlap, search=Search, searchparam=SearchParam, \
734
	                                                      truemotion=TrueMotion, lambda=Lambda, pnew=PNew, DCT=DCT, chroma=ChromaMotion ) : bVec1
735
	sbFVec1 = (ShutterBlur > 1) ? srchSuper.MRecalculate( fVec1, thSAD=ThSAD1, blksize=rBlockSize, overlap=rOverlap, search=Search, searchparam=SearchParam, \
736
	                                                      truemotion=TrueMotion, lambda=Lambda, pnew=PNew, DCT=DCT, chroma=ChromaMotion ) : fVec1
737
738
	# Shutter motion blur - use MFlowBlur to blur along motion vectors
739
	sblurSuper = (ShutterBlur > 0) ? addNoise2.MSuper( pel=SubPel, sharp=SubPelInterp, levels=1, hpad=hpad, vpad=vpad ) : NOP()
740
	sblur =      (ShutterBlur > 0) ? addNoise2.MFlowBlur( sblurSuper, sbBVec1, sbFVec1, blur=blurLevel, thSCD1=ThSCD1,thSCD2=ThSCD2 ) : NOP()
741
742
	# Shutter motion blur - use motion mask to reduce blurring in areas of low motion - also helps reduce blur "bleeding" into static areas, then select blur type
743
	sbMotionMask = (ShutterBlur > 0 && SBlurLimit > 0) ? MMask( srchClip, bVec1, kind=0, ml=SBlurLimit ) : NOP()
744
	sblurred     = (ShutterBlur == 0) ? addNoise2 : \
745
	               (SBlurLimit == 0)  ? sblur : \
746
	                                    mt_merge( addNoise2, sblur, sbMotionMask, U=3,V=3 )
747
	# Reduce frame rate
748
	decimated = (FPSDivisor != 1) ? sblurred.SelectEvery( FPSDivisor, 0 ) : sblurred
749
750
	# Crop off temporary vertical padding
751
	cropped = Border ? decimated.Crop( 0, 4, -0, -4 ) : decimated
752
	h = Border ? h-8 : h
753
754
	# Show output of choice + settings
755
	# >>>> Restore YUY2 to interleaved
756
	output = (ShowNoise == 0.0) ? cropped : finalNoise.mt_lut( "x 128 - " + string(ShowNoise) + " * 128 +", U=CNmt128,V=CNmt128 )
757
	output = yuy2 ? output.ConvertToYUY2() : output
758
	return (ShowSettings == false) ? output : \
759
		output.Subtitle( "TR0=" + string(TR0) + " | TR1=" + string(TR1) + " | TR2=" + string(TR2) + " | Rep0=" + string(Rep0) + " | Rep1=" + string(Rep1) + \
760
		" | Rep2=" + string(Rep2) + " | RepChroma=" + string(RepChroma) + "\nEdiMode='" + EdiMode + "' | NNSize=" + string(NNSize) + " | NNeurons=" + \
761
		string(NNeurons) + " | EdiQual=" + string(EdiQual) + " | EdiMaxD=" + string(EdiMaxD) + " | ChromaEdi='" + ChromaEdi + "' | EdiThreads=" + \
762
		string(EdiThreads) + "\nSharpness=" + string(Sharpness, "%.2f") + " | SMode=" + string(SMode) + " | SLMode=" + string(SLMode) + " | SLRad=" + \
763
		string(SLRad) + " | SOvs=" + string(SOvs) + " | SVThin=" + string(SVThin, "%.2f") + " | Sbb=" + string(Sbb) + "\nSrchClipPP=" + string(SrchClipPP) + \
764
		" | SubPel=" + string(SubPel) + " | SubPelInterp=" + string(SubPelInterp) + " | BlockSize=" + string(BlockSize) + " | Overlap=" + string(Overlap) + \
765
		"\nSearch=" + string(Search) + " | SearchParam=" + string(SearchParam) + " | PelSearch=" + string(PelSearch) + " | ChromaMotion=" + \
766-
		Denoiser + "' | DftThreads=" + string(DftThreads) + " | DenoiseMC=" + string(DenoiseMC) + " | NoiseTR=" + string(NoiseTR) + " | Sigma=" + \
766+
767
		" | PLevel=" + string(PLevel) + " | GlobalMotion=" + string(GlobalMotion) + " | DCT=" + string(DCT) + "\nThSAD1=" + string(ThSAD1) + " | ThSAD2=" + \
768
		string(ThSAD2) + " | ThSCD1=" + string(ThSCD1) + " | ThSCD2=" + string(ThSCD2) + "\nSourceMatch=" + string(SourceMatch) + " | MatchPreset='" + \
769
		MatchPreset + "' | MatchEdi='" + MatchEdi + "'\nMatchPreset2='" + MatchPreset2 + "' | MatchEdi2='" + MatchEdi2 + "' | MatchTR2=" + string(MatchTR2) + \
770
		" | MatchEnhance=" + string(MatchEnhance, "%.2f") + " | Lossless=" + string(Lossless) + "\nNoiseProcess=" + string(NoiseProcess) + " | Denoiser='" + \
771
		Denoiser + "' | FftThreads=" + string(FftThreads) + " | DenoiseMC=" + string(DenoiseMC) + " | NoiseTR=" + string(NoiseTR) + " | Sigma=" + \
772
		string(Sigma, "%.2f") + "\nChromaNoise=" + string(ChromaNoise) + " | ShowNoise=" + string(ShowNoise, "%.2f") + " | GrainRestore=" + \
773
		string(GrainRestore, "%.2f") + " | NoiseRestore=" + string(NoiseRestore, "%.2f") + "\nNoiseDeint='" + NoiseDeint + "' | StabilizeNoise=" + \
774
		string(StabilizeNoise) + " | InputType=" + string(InputType) + " | ProgSADMask=" + string(ProgSADMask, "%.2f") + "\nFPSDivisor=" + \
775
		string(FPSDivisor) + " | ShutterBlur=" + string(ShutterBlur) + " | ShutterAngleSrc=" + string(ShutterAngleSrc, "%.2f") + " | ShutterAngleOut=" + \
776
		string(ShutterAngleOut, "%.2f") + " | SBlurLimit=" + string(SBlurLimit) + "\nBorder=" + string(Border) + " | Precise=" + string(Precise) + \
777
		"\nPreset='" + Preset + "' | Tuning='" + Tuning + "' | GlobalNames='" + GlobalNames + "' | PrevGlobals='" + PrevGlobals + "' | ForceTR=" + \
778
		string(ForceTR), font="Lucida Console", size=11, lsp=12 )
779
}
780
781
782
#---------------------------------------
783
# Helpers
784
785
# Same as Bob, but keeps the field order the same.
786
function QTGMC_Bob(clip cp, float "b", float "c", int "height" )
787
{
788
  ssispmt = Findstr(VersionString(), "AviSynth+") != 0 && Findstr(VersionString(), "r1576") == 0
789
  h = Default(height, cp.Height)
790
  w = cp.Width
791
  shift = GetParity(cp) ? 0.25 : -0.25
792
793
  c420 = ssispmt ? Is420(cp) : IsYV12(cp)
794
795
  c420 ? cp.SeparateFields() : nop()
796
797
  oeven=c420 ? SelectEven() : nop()
798
  oodd=c420 ? SelectOdd() : nop()
799
800
  even=c420 ? ssispmt ? oeven.ConvertToY().BicubicResize(w, h, b, c, 0, shift, w, Height()).AssumeFrameBased() : oeven.ConvertToY8().BicubicResize(w, h, b, c, 0, shift, w, Height()).AssumeFrameBased() : nop()
801
  odd=c420 ? ssispmt ? oodd.ConvertToY().BicubicResize(w, h, b, c, 0, -shift, w, Height()).AssumeFrameBased() : oodd.ConvertToY8().BicubicResize(w, h, b, c, 0, -shift, w, Height()).AssumeFrameBased() : nop()
802
803
  evenChr=c420 ? Interleave(ssispmt ? oeven.ExtractU() : oeven.UToY8(), ssispmt ? oeven.ExtractV() : oeven.VToY8()).BicubicResize(w/2, h/2, b, c, 0, shift, w/2, Height()/2).AssumeFrameBased() : nop()
804
  oddChr=c420 ? Interleave(ssispmt ? oodd.ExtractU() : oodd.UToY8(), ssispmt ? oodd.ExtractV() :oodd.VToY8()).BicubicResize(w/2, h/2, b, c, 0, -shift, w/2, Height()/2).AssumeFrameBased() : nop()
805
806
  c420 ? YToUV(Interleave(evenChr.SelectEven(), oddChr.SelectEven()),Interleave(evenChr.SelectOdd(), oddChr.SelectOdd()),Interleave(even, odd)) : cp.Bob( b,c, h )
807
  GetParity(cp) ? AssumeTFF() : AssumeBFF()
808
}
809
810
811
# Interpolate input clip using method given in EdiMode. Use Fallback or Bob as result if mode not in list. If ChromaEdi string if set then interpolate chroma
812
# separately with that method (only really useful for EEDIx). The function is used as main algorithm starting point and for first two source-match stages
813
function QTGMC_Interpolate( clip Input, int InputType, string EdiMode, int NNSize, int NNeurons, int EdiQual, int EdiMaxD, int EdiThreads, clip "Fallback", \
814
                            string "ChromaEdi" )
815
{
816
	# >>>> YUY2 is interleaved here
817
818
	ChromaEdi = default( ChromaEdi, "" )
819
	CEed = (ChromaEdi == "")
820
821
	interp = (InputType == 1)            ? Input : \
822
	         (EdiMode == "NNEDI3")       ? Input.NNEDI3( field=-2, nsize=NNSize, nns=NNeurons, qual=EdiQual, threads=EdiThreads, U=CEed,V=CEed ) : \
823
	         (EdiMode == "NNEDI2")       ? Input.NNEDI2( field=-2, nsize=NNeurons, qual=EdiQual, threads=EdiThreads, U=CEed,V=CEed ) : \
824
	         (EdiMode == "NNEDI")        ? Input.NNEDI( field=-2, U=CEed,V=CEed ) : \
825
	         (EdiMode == "EEDI3+NNEDI3") ? Input.EEDI3( field=-2, mdis=EdiMaxD, threads=EdiThreads, U=CEed,V=CEed, \
826
		                                                sclip=Input.NNEDI3( field=-2, nsize=NNSize, nns=NNeurons, qual=EdiQual, threads=EdiThreads, U=CEed,V=CEed ) ) : \
827
	         (EdiMode == "EEDI3")        ? Input.EEDI3( field=-2, mdis=EdiMaxD, threads=EdiThreads, U=CEed,V=CEed ) : \
828
	         (EdiMode == "EEDI2")        ? Input.SeparateFields().EEDI2( field=-2, maxd=EdiMaxD ) : \
829
	         (EdiMode == "Yadif")        ? isyuy2(Input) ? Input.ConvertToYv16().Yadifmod2( mode=3 ).ConvertToYUY2() : Input.Yadifmod2( mode=3 ) : \
830
	         (EdiMode == "cYadif")       ? Input.Yadif( mode=3 ) : \
831
	         (EdiMode == "TDeint")       ? Input.TDeInt( mode=1 ) : \
832
	         (EdiMode == "RepYadif")     ? isyuy2(Input) ? Repair( Input.ConvertToYv16().Yadifmod2( mode=3 ), default( Fallback, Input.QTGMC_Bob( 0,0.5 ) ).ConvertToYv16(), 2, 0 ).ConvertToYUY2() : \
833
                                                           Input.Yadifmod2( mode=3 ) : \	
834
	         (EdiMode == "RepcYadif")    ? isyuy2(Input) ? Repair( Input.Yadif( mode=3 ).ConvertToYv16(), default( Fallback, Input.QTGMC_Bob( 0,0.5 ) ).ConvertToYv16(), 2, 0 ).ConvertToYUY2() : \
835
	         	         	                       Repair( Input.Yadif( mode=3 ), default( Fallback, Input.QTGMC_Bob( 0,0.5 ) ), 2, 0 ) : \
836
	                                       default( Fallback, Input.QTGMC_Bob( 0,0.5 ) )
837
838
	interpuv = (InputType == 1)        ? NOP() : \
839
	           (ChromaEdi == "NNEDI3") ? Input.NNEDI3( field=-2, nsize=4, nns=0, qual=1, threads=EdiThreads, Y=false ) : \
840
	           (ChromaEdi == "Yadif")  ? isyuy2(Input) ? Input.ConvertToYv16().Yadifmod2( mode=3 ).ConvertToYUY2() : Input.Yadifmod2( mode=3 ) : \
841
	           (ChromaEdi == "cYadif") ? Input.Yadif( mode=3 ) : \
842
	           (ChromaEdi == "Bob")    ? Input.QTGMC_Bob( 0,0.5 ) : \
843
			                             NOP()
844
845
	return (!IsClip(interpuv)) ? interp : interp.MergeChroma( interpuv )
846
}
847
848
849
# Functions (from original TGMC) used instead of mt_xxflate with similar operation but a somewhat stronger result. Originally added for speed, they are
850
# no longer faster due to improvements in masktools. Difference (visual and speed) is small so may be reverted in a later version.
851
function QTGMC_inflate( clip c, int "Y", int "U", int "V" )
852
{
853
	# >>>> YUY2 is planar here
854
	mtY =default( Y, 3 )
855
	mtU =default( U, 1 )
856
	mtV =default( V, 1 )
857
	rgY = (mtY == 3) ? 20 : -1
858
	rgU = (mtU == 3) ? 20 : -1
859
	rgV = (mtV == 3) ? 20 : -1
860
	mt_logic( c, c.RemoveGrain( rgY, rgU, rgV ), "max", Y=mtY,U=mtU,V=mtV )
861
}
862
863
function QTGMC_deflate( clip c, int "Y", int "U", int "V" )
864
{
865
	# >>>> YUY2 is planar here
866
	mtY =default( Y, 3 )
867
	mtU =default( U, 1 )
868
	mtV =default( V, 1 )
869
	rgY = (mtY == 3) ? 20 : -1
870
	rgU = (mtU == 3) ? 20 : -1
871
	rgV = (mtV == 3) ? 20 : -1
872
	mt_logic( c, c.RemoveGrain( rgY, rgU, rgV ), "min", Y=mtY,U=mtU,V=mtV )
873
}
874
875
# Helper function: Compare processed clip with reference clip: only allow thin, horizontal areas of difference, i.e. bob shimmer fixes
876
# Rough algorithm: Get difference, deflate vertically by a couple of pixels or so, then inflate again. Thin regions will be removed
877
#                  by this process. Restore remaining areas of difference back to as they were in reference clip.
878
function QTGMC_KeepOnlyBobShimmerFixes( clip Input, clip Ref, int Rep, bool Chroma )
879
{
880
	# >>>> YUY2 is planar here
881
882
	# ed is the erosion distance - how much to deflate then reflate to remove thin areas of interest: 0 = minimum to 6 = maximum
883
	# od is over-dilation level  - extra inflation to ensure areas to restore back are fully caught:  0 = none to 3 = one full pixel
884
	# If Rep < 10, then ed = Rep and od = 0, otherwise ed = 10s digit and od = 1s digit (nasty method, but kept for compatibility with original TGMC)
885
	Rep    = default( Rep,    1    )
886
	Chroma = default( Chroma, true )
887
	ed = (Rep < 10) ? Rep : Rep / 10
888
	od = (Rep < 10) ? 0   : Rep % 10
889
	RCrg  = Chroma ? 3 : 1
890
	RCrgo = Chroma ? 3 : 2
891
892
	diff = mt_makediff(Ref, Input, U=3,V=3 )
893
894
	# Areas of positive difference                                                                # ed = 0 1 2 3 4 5 6 7
895
	choke1 =                        diff.  mt_inpand( mode="vertical", U=RCrg,V=RCrg )            #      x x x x x x x x    1 pixel   \
896
	choke1 = (ed > 2)             ? choke1.mt_inpand( mode="vertical", U=RCrg,V=RCrg ) : choke1   #      . . . x x x x x    1 pixel    |  Deflate to remove thin areas
897
	choke1 = (ed > 5)             ? choke1.mt_inpand( mode="vertical", U=RCrg,V=RCrg ) : choke1   #      . . . . . . x x    1 pixel   /
898
	choke1 = (ed % 3 != 0)        ? choke1.QTGMC_deflate( U=RCrg,V=RCrg )              : choke1   #      . x x . x x . x    A bit more deflate & some horizonal effect
899
	choke1 = (ed == 2 || ed == 5) ? choke1.RemoveGrain( 4              )               : choke1   #      . . x . . x . .    Local median
900
                                                                                                                      
901
	choke1 =                        choke1.mt_expand( mode="vertical", U=RCrg,V=RCrg )            #      x x x x x x x x    1 pixel  \
902
	choke1 = (ed > 1)             ? choke1.mt_expand( mode="vertical", U=RCrg,V=RCrg ) : choke1   #      . . x x x x x x    1 pixel   | Reflate again
903
	choke1 = (ed > 4)             ? choke1.mt_expand( mode="vertical", U=RCrg,V=RCrg ) : choke1   #      . . . . . x x x    1 pixel  /
904
905
	# Over-dilation - extra reflation up to about 1 pixel
906
	choke1 = (od == 0)            ? choke1 : \
907
	         (od == 1)            ? choke1.QTGMC_inflate( U=RCrg,V=RCrg ) : \
908
	         (od == 2)            ? choke1.QTGMC_inflate( U=RCrg,V=RCrg ).QTGMC_inflate( U=RCrg,V=RCrg ) : \
909
	                                choke1.mt_expand ( U=RCrg,V=RCrg )
910
911
	# Areas of negative difference (similar to above)
912
	choke2 =                        diff.  mt_expand( mode="vertical", U=RCrg,V=RCrg )         
913
	choke2 = (ed > 2)             ? choke2.mt_expand( mode="vertical", U=RCrg,V=RCrg ) : choke2
914
	choke2 = (ed > 5)             ? choke2.mt_expand( mode="vertical", U=RCrg,V=RCrg ) : choke2
915
	choke2 = (ed % 3 != 0)        ? choke2.QTGMC_inflate( U=RCrg,V=RCrg )              : choke2
916
	choke2 = (ed == 2 || ed == 5) ? choke2.RemoveGrain( 4              )               : choke2
917
	choke2 =                        choke2.mt_inpand( mode="vertical", U=RCrg,V=RCrg )
918
	choke2 = (ed > 1)             ? choke2.mt_inpand( mode="vertical", U=RCrg,V=RCrg ) : choke2
919
	choke2 = (ed > 4)             ? choke2.mt_inpand( mode="vertical", U=RCrg,V=RCrg ) : choke2
920
	choke2 = (od == 0)            ? choke2 : \
921
	         (od == 1)            ? choke2.QTGMC_deflate( U=RCrg,V=RCrg )  : \
922
	         (od == 2)            ? choke2.QTGMC_deflate( U=RCrg,V=RCrg ).QTGMC_deflate( U=RCrg,V=RCrg ) : \
923
	                                choke2.mt_inpand ( U=RCrg,V=RCrg )
924
925
	# Combine above areas to find those areas of difference to restore
926
	restore = diff.mt_lutxy( choke1, "x 129 < x y 128 < 128 y ? ?", U=RCrg,V=RCrg ).mt_lutxy( choke2, "x 127 > x y 128 > 128 y ? ?", U=RCrg,V=RCrg )
927
928
	return Input.mt_adddiff( restore, U=RCrgo,V=RCrgo )
929
}
930
931
932
# Given noise extracted from an interlaced source (i.e. the noise is interlaced), generate "progressive" noise with a new "field" of noise injected. The new
933
# noise is centered on a weighted local average and uses the difference between local min & max as an estimate of local variance
934
# YUY2 clip input is planar, but must pass interleaved version of clip to setup noise
935
function QTGMC_Generate2ndFieldNoise( clip Input, clip InterleavedClip, bool "ChromaNoise" )
936
{
937
	# >>>> YUY2 is planar here. Noise is generated (AddGrainC) interleaved, but immediately made planar
938
	ChromaNoise = default( ChromaNoise, false )
939
	CNmt1 = ChromaNoise ? 3 : 1
940
	origNoise = Input.SeparateFields()
941
	noiseMax  = origNoise.mt_expand( mode="square", U=CNmt1,V=CNmt1 ).mt_expand( mode="horizontal", U=CNmt1,V=CNmt1 )
942
	noiseMin  = origNoise.mt_inpand( mode="square", U=CNmt1,V=CNmt1 ).mt_inpand( mode="horizontal", U=CNmt1,V=CNmt1 )
943
	random    = BlankClip( InterleavedClip.SeparateFields(), color_yuv=$808080 ).AddGrainC( var=1800, uvar=ChromaNoise ? 1800 : 0 )
944
	random    = InterleavedClip.IsYUY2() ? random.converttoyv16() : random
945
	varRandom = mt_makediff( noiseMax, noiseMin, U=CNmt1,V=CNmt1 ).mt_lutxy( random, "x 128 - y * 256 / 128 +", U=CNmt1,V=CNmt1)
946
	newNoise  = noiseMin.mt_adddiff( varRandom, U=CNmt1,V=CNmt1 )
947
	return Interleave( origNoise, newNoise ).Weave()
948
}
949
950
951
# Insert the source lines into the result to create a true lossless output. However, the other lines in the result have had considerable processing and won't
952
# exactly match source lines. There will be some slight residual combing. Use vertical medians to clean a little of this away
953
function QTGMC_MakeLossless( clip Input, clip Source, int InputType )
954
{
955
	Assert( InputType != 1, "Lossless modes are incompatible with InputType=1" )
956
957
	# >>>> YUY2: 'Input' is planar, 'Source' is interleaved (changed to planar here for processing) - returns planar result
958
959
	# Weave the source fields and the "new" fields that have generated in the input
960
	srcFields1 = (InputType == 0) ? Source.SeparateFields() : Source.SeparateFields().SelectEvery( 4, 0,3 )
961
	srcFields  = Source.IsYUY2() ? srcFields1.converttoyv16() : srcFields1
962
	newFields  = Input.SeparateFields().SelectEvery( 4, 1,2 )
963
	processed  = Interleave( srcFields, newFields ).SelectEvery(4, 0,1,3,2 ).Weave()
964
965
	# Clean some of the artefacts caused by the above - creating a second version of the "new" fields
966
	vertMedian  = processed.VerticalCleaner( mode=1 )
967
	vertMedDiff = mt_makediff( processed, vertMedian, U=3,V=3 )
968
	vmNewDiff1  = vertMedDiff.SeparateFields().SelectEvery( 4, 1,2 )
969
	vmNewDiff2  = vmNewDiff1.VerticalCleaner( mode=1 ).mt_lutxy( vmNewDiff1, "x 128 - y 128 - * 0 < 128 x 128 - abs y 128 - abs < x y ? ?", U=3,V=3 )
970
	vmNewDiff3  = vmNewDiff2.Repair( vmNewDiff2.RemoveGrain( 2 ), 1 )
971
972
	# Reweave final result
973
	return Interleave( srcFields, newFields.mt_makediff( vmNewDiff3, U=3,V=3 )).SelectEvery( 4, 0,1,3,2 ).Weave()
974
}
975
976
977
# Source-match, a three stage process that takes the difference between deinterlaced input and the original interlaced source, to shift the input more towards
978
# the source without introducing shimmer. All other arguments defined in main script
979
function QTGMC_ApplySourceMatch( clip Deinterlace, int InputType, val Source, val bVec1, val fVec1, val bVec2, val fVec2, \
980
                                 int SubPel, int SubPelInterp, int hpad, int vpad, int ThSAD1, int ThSCD1, int ThSCD2, int SourceMatch, \
981
                                 int MatchTR1, string MatchEdi, int MatchNNSize, int MatchNNeurons, int MatchEdiQual, int MatchEdiMaxD,\
982
                                 int MatchTR2, string MatchEdi2, int MatchNNSize2, int MatchNNeurons2, int MatchEdiQual2, int MatchEdiMaxD2, \
983
                                 float MatchEnhance, int EdiThreads, bool lsb )
984
{
985
	# >>>> YUY2: 'Deinterlace' is planar, 'Source' is interleaved (changed to planar here for all processing except interpolation) - returns planar result
986
	yuy2 = Source.IsYUY2()
987
	Source = yuy2 ? Source.converttoyv16() : Source
988
989
	# Basic source-match. Find difference between source clip & equivalent fields in interpolated/smoothed clip (called the "error" in formula below). Ideally
990
	# there should be no difference, we want the fields in the output to be as close as possible to the source whilst remaining shimmer-free. So adjust the
991
	# *source* in such a way that smoothing it will give a result closer to the unadjusted source. Then rerun the interpolation (edi) and binomial smooth with
992
	# this new source. Result will still be shimmer-free and closer to the original source.
993
	# Formula used for correction is P0' = P0 + (P0-P1)/(k+S(1-k)), where P0 is original image, P1 is the 1st attempt at interpolation/smoothing , P0' is the
994
	# revised image to use as new source for interpolation/smoothing, k is the weighting given to the current frame in the smooth, and S is a factor indicating
995
	# "temporal similarity" of the error from frame to frame, i.e. S = average over all pixels of [neighbor frame error / current frame error] . Decreasing
996
	# S will make the result sharper, sensible range is about -0.25 to 1.0. Empirically, S=0.5 is effective [will do deeper analysis later]
997
	errorTemporalSimilarity = 0.5  # S in formula described above
998
	errorAdjust1   = Select( MatchTR1, 1.0, 2.0 / (1.0 + errorTemporalSimilarity), 8.0 / (3.0 + 5.0 * errorTemporalSimilarity) )
999
	match1Clip     = (SourceMatch < 1 || InputType == 1) ? Deinterlace : Deinterlace.SeparateFields().SelectEvery( 4, 0,3 ).Weave()
1000
	match1Update   = (SourceMatch < 1 || MatchTR1 == 0) \
1001
						? Source : mt_lutxy( Source, match1Clip, "x " + string(errorAdjust1 + 1) + " * y " + string(errorAdjust1) + " * -", U=3,V=3 )
1002
	yv16match1Edi  = EdiMode=="NNEDI2" || EdiMode=="NNEDI" || EdiMode=="EEDI3+NNEDI3" || EdiMode=="EEDI3" || EdiMode=="EEDI2" || EdiMode=="TDeint" || EdiMode=="cYadif" || EdiMode=="RepcYadif" || ChromaEdi=="cYadif"
1003
	match1Edi      = (SourceMatch == 0) ? NOP() : \
1004
   !yv16match1Edi || !yuy2 ? match1Update.QTGMC_Interpolate( InputType, MatchEdi, MatchNNSize, MatchNNeurons, MatchEdiQual, MatchEdiMaxD, EdiThreads ) : \
1005
	                         match1Update.ConvertToYUY2() \
1006
	                                     .QTGMC_Interpolate( InputType, MatchEdi, MatchNNSize, MatchNNeurons, MatchEdiQual, MatchEdiMaxD, EdiThreads ) \
1007
	                                     .ConvertToYv16()
1008
	match1Super    = (SourceMatch > 0 && MatchTR1 > 0) ? match1Edi.MSuper( pel=SubPel, sharp=SubPelInterp, levels=1, hpad=hpad, vpad=vpad ) : NOP()
1009
	match1Degrain1 = (SourceMatch > 0 && MatchTR1 > 0) ? match1Edi.MDegrain1( match1Super, bVec1,fVec1, thSAD=ThSAD1, thSCD1=ThSCD1,thSCD2=ThSCD2, lsb=lsb ) : NOP()
1010
	match1Degrain2 = (SourceMatch > 0 && MatchTR1 > 1) ? match1Edi.MDegrain1( match1Super, bVec2,fVec2, thSAD=ThSAD1, thSCD1=ThSCD1,thSCD2=ThSCD2, lsb=lsb ) : NOP()
1011
	match1Degrain1 = (SourceMatch > 0 && MatchTR1 > 0) && lsb ? match1Degrain1.ditherpost(mode=6, slice=false) : match1Degrain1
1012
	match1Degrain2 = (SourceMatch > 0 && MatchTR1 > 1) && lsb ? match1Degrain2.ditherpost(mode=6, slice=false) : match1Degrain2
1013
	match1         = (SourceMatch < 1) ? Deinterlace : \
1014
	                 (MatchTR1 == 0)   ? match1Edi : \
1015
	                 (MatchTR1 == 1)   ? match1Degrain1.Merge( match1Edi, 0.25 ) : \
1016
	                                     match1Degrain1.Merge( match1Degrain2, 0.2 ).Merge( match1Edi, 0.0625 )
1017
1018
	# Enhance effect of source-match stages 2 & 3 by sharpening clip prior to refinement (source-match tends to underestimate so this will leave result sharper)
1019
	match1Shp = (SourceMatch > 1 && MatchEnhance > 0.0) ? match1.mt_lutxy( match1.RemoveGrain( 12 ), "x x y - "+ string(MatchEnhance) + " * +", U=3,V=3 ) : match1
1020
1021
	# Source-match refinement. Find difference between source clip & equivalent fields in (updated) interpolated/smoothed clip. Interpolate & binomially smooth
1022
	# this difference then add it back to output. Helps restore differences that the basic match missed. However, as this pass works on a difference rather than
1023
	# the source image it can be prone to occasional artefacts (difference images are not ideal for interpolation). In fact a lower quality interpolation such
1024
	# as a simple bob often performs nearly as well as advanced, slower methods (e.g. NNEDI3)
1025
	match2Clip     = (SourceMatch < 2 || InputType == 1) ? match1Shp : match1Shp.SeparateFields().SelectEvery( 4, 0,3 ).Weave()
1026
	match2Diff     = (SourceMatch > 1) ? mt_makediff( Source, match2Clip, U=3,V=3 ) : NOP()
1027
	match2Edi      = (SourceMatch <= 1) ? NOP() : \
1028
	yv16match1Edi || !yuy2 ? match2Diff.QTGMC_Interpolate( InputType, MatchEdi2, MatchNNSize2, MatchNNeurons2, MatchEdiQual2, MatchEdiMaxD2, EdiThreads ) : \
1029
	                         match2Diff.ConvertToYUY2() \
1030
	                                   .QTGMC_Interpolate( InputType, MatchEdi2, MatchNNSize2, MatchNNeurons2, MatchEdiQual2, MatchEdiMaxD2, EdiThreads ) \
1031
	                                   .ConvertToYv16()
1032
	match2Super    = (SourceMatch > 1 && MatchTR2 > 0) ? match2Edi.MSuper( pel=SubPel, sharp=SubPelInterp, levels=1, hpad=hpad, vpad=vpad ) : NOP()
1033
	match2Degrain1 = (SourceMatch > 1 && MatchTR2 > 0) ? match2Edi.MDegrain1( match2Super, bVec1,fVec1, thSAD=ThSAD1, thSCD1=ThSCD1,thSCD2=ThSCD2, lsb=lsb ) : NOP()
1034
	match2Degrain2 = (SourceMatch > 1 && MatchTR2 > 1) ? match2Edi.MDegrain1( match2Super, bVec2,fVec2, thSAD=ThSAD1, thSCD1=ThSCD1,thSCD2=ThSCD2, lsb=lsb ) : NOP()
1035
	match2Degrain1 = (SourceMatch > 1 && MatchTR2 > 0) && lsb ? match2Degrain1.ditherpost(mode=6, slice=false) : match2Degrain1
1036
	match2Degrain2 = (SourceMatch > 1 && MatchTR2 > 1) && lsb ? match2Degrain2.ditherpost(mode=6, slice=false) : match2Degrain2
1037
	match2         = (SourceMatch < 2) ? match1 : \
1038
	                 (MatchTR2 == 0)   ? match2Edi : \
1039
	                 (MatchTR2 == 1)   ? match2Degrain1.Merge( match2Edi, 0.25 ) : \
1040
	                                     match2Degrain1.Merge( match2Degrain2, 0.2 ).Merge( match2Edi, 0.0625 )
1041
1042
	# Source-match second refinement - correct error introduced in the refined difference by temporal smoothing. Similar to error correction from basic step
1043
	errorAdjust2   = Select( MatchTR2, 1.0, 2.0 / (1.0 + errorTemporalSimilarity), 8.0 / (3.0 + 5.0 * errorTemporalSimilarity) )
1044
	match3Update   = (SourceMatch < 3 || MatchTR2 == 0) \
1045
	                     ? match2Edi : mt_lutxy( match2Edi, match2, "x " + string(errorAdjust2 + 1) + " * y " + string(errorAdjust2) + " * -", U=3,V=3 )
1046
	match3Super    = (SourceMatch > 2 && MatchTR2 > 0) ? match3Update.MSuper( pel=SubPel, sharp=SubPelInterp, levels=1, hpad=hpad, vpad=vpad ) : NOP()
1047
	match3Degrain1 = (SourceMatch > 2 && MatchTR2 > 0) ? match3Update.MDegrain1( match3Super, bVec1,fVec1, thSAD=ThSAD1, thSCD1=ThSCD1,thSCD2=ThSCD2, lsb=lsb ) : NOP()
1048
	match3Degrain2 = (SourceMatch > 2 && MatchTR2 > 1) ? match3Update.MDegrain1( match3Super, bVec2,fVec2, thSAD=ThSAD1, thSCD1=ThSCD1,thSCD2=ThSCD2, lsb=lsb ) : NOP()
1049
	match3Degrain1 = (SourceMatch > 2 && MatchTR2 > 0) && lsb ? match3Degrain1.ditherpost(mode=6, slice=false) : match3Degrain1
1050
	match3Degrain2 = (SourceMatch > 2 && MatchTR2 > 1) && lsb ? match3Degrain2.ditherpost(mode=6, slice=false) : match3Degrain2
1051
	match3         = (SourceMatch < 3) ? match2 : \
1052
	                 (MatchTR2 == 0)   ? match3Update : \
1053
	                 (MatchTR2 == 1)   ? match3Degrain1.Merge( match3Update, 0.25 ) : \
1054
	                                     match3Degrain1.Merge( match3Degrain2, 0.2 ).Merge( match3Update, 0.0625 )
1055
1056
	# Apply difference calculated in source-match refinement
1057
	return (SourceMatch < 2) ? match1 : match1Shp.mt_adddiff( match3, U=3,V=3 )
1058
}
1059
1060
1061
# Set global variable called "Prefix_Name" to "Value". Throws exception if global already exists unless Replace=true, in which case the global is overwritten
1062
function QTGMC_SetUserGlobal( string Prefix, string Name, val Value, bool "Replace" )
1063
{
1064
	Replace = default( Replace, false )
1065
	globalName = Prefix + "_" + Name
1066
1067
	# Tricky logic to check global: enter catch block if Replace=true *or* globalName doesn't exist (i.e. need to set the global), the exception is not rethrown
1068
	# Not entering catch block means that Replace=false and global exists - so it throws an exception back to AviSynth
1069
	try { Assert( !Replace && defined(Eval(globalName)) ) }
1070
	catch (e)
1071
	{
1072
		Eval( "global " + globalName + " = Value" )
1073
		Replace = true
1074
	}
1075
	Assert( Replace, """Multiple calls to QTGMC, set PrevGlobals="Replace" or read documentation on 'Multiple QTGMC Calls'""" )
1076
}
1077
1078
# Return value of global variable called "Prefix_Name". Returns NOP() if it doesn't exist or Reuse is false
1079
function QTGMC_GetUserGlobal( string Prefix, string Name, bool "Reuse" )
1080
{
1081
	Reuse = default( Reuse, false )
1082
	globalName = Prefix + "_" + Name
1083
1084
	try       { ret = Reuse ? Eval( globalName ) : NOP() }
1085
	catch (e) { ret = NOP() }
1086
	return ret
1087
}