renames bufsize to blocksize
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4 changed files with 17 additions and 16 deletions
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@ -8,7 +8,7 @@ PortAudio.jl is a wrapper for [libportaudio](http://www.portaudio.com/), which g
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The easiest way to open a source or sink is with the default `PortAudioStream()` constructor, which will open a 2-in, 2-out stream to your system's default device(s). The constructor can also take the input and output channel counts as positional arguments, or a variety of other keyword arguments.
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```julia
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PortAudioStream(inchans=2, outchans=2; eltype=Float32, samplerate=48000Hz, bufsize=4096)
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PortAudioStream(inchans=2, outchans=2; eltype=Float32, samplerate=48000Hz, blocksize=4096)
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```
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You can open a specific device by adding it as the first argument, either as a `PortAudioDevice` instance or by name. You can also give separate names or devices if you want different input and output devices
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@ -3,7 +3,7 @@ using PortAudio
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"""Continuously read from the default audio input and plot an
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ASCII level/peak meter"""
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function micmeter(metersize)
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mic = PortAudioStream(1, 0; bufsize=512)
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mic = PortAudioStream(1, 0; blocksize=512)
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signalmax = zero(eltype(mic))
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println("Press Ctrl-C to quit")
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@ -6,7 +6,7 @@ module SpectrumExample
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using GR, PortAudio, SampledSignals
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const N = 1024
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const stream = PortAudioStream(1, 0, bufsize=N)
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const stream = PortAudioStream(1, 0, blocksize=N)
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const buf = read(stream, N)
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const fmin = 0Hz
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const fmax = 10000Hz
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@ -15,7 +15,7 @@ include("libportaudio.jl")
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export PortAudioStream
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# Size of the ringbuffer in frames. 85ms latency at 48kHz
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const DEFAULT_BUFSIZE=4096
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const DEFAULT_blocksize=4096
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# data is passed to and from the ringbuffer in chunks with this many frames
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# it should be at most the ringbuffer size, and must evenly divide into the
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# the underlying portaudio buffer size. E.g. if PortAudio is running with a
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@ -85,7 +85,7 @@ end
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# paramaterized on the sample type and sampling rate type
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type PortAudioStream{T, U}
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samplerate::U
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bufsize::Int
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blocksize::Int
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stream::PaStream
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sink # untyped because of circular type definition
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source # untyped because of circular type definition
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@ -94,24 +94,24 @@ type PortAudioStream{T, U}
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# this inner constructor is generally called via the top-level outer
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# constructor below
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function PortAudioStream(indev::PortAudioDevice, outdev::PortAudioDevice,
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inchans, outchans, sr, bufsize)
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inchans, outchans, sr, blocksize)
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inparams = (inchans == 0) ?
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Ptr{Pa_StreamParameters}(0) :
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Ref(Pa_StreamParameters(indev.idx, inchans, type_to_fmt[T], 0.0, C_NULL))
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outparams = (outchans == 0) ?
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Ptr{Pa_StreamParameters}(0) :
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Ref(Pa_StreamParameters(outdev.idx, outchans, type_to_fmt[T], 0.0, C_NULL))
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this = new(sr, bufsize, C_NULL)
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this = new(sr, blocksize, C_NULL)
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finalizer(this, close)
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this.sink = PortAudioSink{T, U}(outdev.name, this, outchans, bufsize)
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this.source = PortAudioSource{T, U}(indev.name, this, inchans, bufsize)
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this.sink = PortAudioSink{T, U}(outdev.name, this, outchans, blocksize)
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this.source = PortAudioSource{T, U}(indev.name, this, inchans, blocksize)
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if inchans > 0 && outchans > 0
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# we've got a duplex stream. initialize with the output buffer full
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write(this.sink, SampleBuf(zeros(T, bufsize, outchans), sr))
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write(this.sink, SampleBuf(zeros(T, blocksize, outchans), sr))
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end
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this.bufinfo = CallbackInfo(inchans, this.source.ringbuf,
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outchans, this.sink.ringbuf)
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this.stream = Pa_OpenStream(inparams, outparams, float(sr), bufsize,
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this.stream = Pa_OpenStream(inparams, outparams, float(sr), blocksize,
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paNoFlag, pa_callbacks[T], fieldptr(this, :bufinfo))
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Pa_StartStream(this.stream)
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@ -123,8 +123,8 @@ end
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# this is the top-level outer constructor that all the other outer constructors
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# end up calling
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function PortAudioStream(indev::PortAudioDevice, outdev::PortAudioDevice,
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inchans=2, outchans=2; eltype=Float32, samplerate=48000Hz, bufsize=DEFAULT_BUFSIZE)
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PortAudioStream{eltype, typeof(samplerate)}(indev, outdev, inchans, outchans, samplerate, bufsize)
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inchans=2, outchans=2; eltype=Float32, samplerate=48000Hz, blocksize=DEFAULT_blocksize)
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PortAudioStream{eltype, typeof(samplerate)}(indev, outdev, inchans, outchans, samplerate, blocksize)
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end
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function PortAudioStream(indevname::AbstractString, outdevname::AbstractString, args...; kwargs...)
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@ -186,7 +186,7 @@ Base.write(sink::PortAudioStream, source::PortAudioStream, args...) = write(sink
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function Base.show(io::IO, stream::PortAudioStream)
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println(io, typeof(stream))
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println(io, " Samplerate: ", samplerate(stream))
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print(io, " Buffer Size: ", stream.bufsize, " frames")
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print(io, " Buffer Size: ", stream.blocksize, " frames")
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if nchannels(stream.sink) > 0
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print(io, "\n ", nchannels(stream.sink), " channel sink: \"", stream.sink.name, "\"")
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end
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@ -205,11 +205,11 @@ for (TypeName, Super) in ((:PortAudioSink, :SampleSink),
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ringbuf::LockFreeRingBuffer{T}
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nchannels::Int
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function $TypeName(name, stream, channels, bufsize)
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function $TypeName(name, stream, channels, blocksize)
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# portaudio data comes in interleaved, so we'll end up transposing
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# it back and forth to julia column-major
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chunkbuf = zeros(T, channels, CHUNKSIZE)
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ringbuf = LockFreeRingBuffer(T, bufsize * channels)
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ringbuf = LockFreeRingBuffer(T, blocksize * channels)
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new(name, stream, chunkbuf, ringbuf, channels)
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end
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end
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@ -217,6 +217,7 @@ end
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SampledSignals.nchannels(s::Union{PortAudioSink, PortAudioSource}) = s.nchannels
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SampledSignals.samplerate(s::Union{PortAudioSink, PortAudioSource}) = samplerate(s.stream)
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SampledSignals.blocksize(s::Union{PortAudioSink, PortAudioSource}) = s.stream.blocksize
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Base.eltype{T, U}(::Union{PortAudioSink{T, U}, PortAudioSource{T, U}}) = T
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Base.close(s::Union{PortAudioSink, PortAudioSource}) = close(s.ringbuf)
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