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Python library for easily interacting with trained machine learning models

Project description

gradio_unifiedaudio

PyPI - Version

Python library for easily interacting with trained machine learning models

Installation

pip install gradio_unifiedaudio

Usage

import gradio as gr
from gradio_unifiedaudio import UnifiedAudio
from pathlib import Path
import numpy as np
import time

example = UnifiedAudio().example_inputs()
dir_ = Path(__file__).parent

def add_to_stream(audio, instream):
    if instream is None:
        ret = audio
    else:
        ret = (audio[0], np.concatenate((instream[1], audio[1])))
    return audio, ret

def stop_recording(audio):
    return UnifiedAudio(value=audio, streaming=False)

def stop_playing():
    return UnifiedAudio(value=None, streaming=True), None

with gr.Blocks() as demo:
    mic = UnifiedAudio(sources=["microphone"], streaming=True)
    stream = gr.State()

    mic.stop_recording(stop_recording, stream, mic)
    # mic.end(lambda: [None, None], None, [mic, stream])
    mic.end(stop_playing, None, [mic, stream])
    mic.stream(add_to_stream, [mic, stream], [mic, stream])

if __name__ == '__main__':
    demo.launch()

UnifiedAudio

Initialization

name type default description
value
str
    | pathlib.Path
    | tuple[int, numpy.ndarray]
    | Callable
    | None
None A path, URL, or [sample_rate, numpy array] tuple (sample rate in Hz, audio data as a float or int numpy array) for the default value that UnifiedAudio component is going to take. If callable, the function will be called whenever the app loads to set the initial value of the component.
image
str | None
None A path or URL to an image to display above the audio component. If None, no image will be displayed.
sources
list["upload" | "microphone"] | None
None A list of sources permitted for audio. "upload" creates a box where user can drop an audio file, "microphone" creates a microphone input. The first element in the list will be used as the default source. If None, defaults to ["upload", "microphone"], or ["microphone"] if `streaming` is True.
type
"numpy" | "filepath"
"numpy" The format the audio file is converted to before being passed into the prediction function. "numpy" converts the audio to a tuple consisting of: (int sample rate, numpy.array for the data), "filepath" passes a str path to a temporary file containing the audio.
label
str | None
None The label for this component. Appears above the component and is also used as the header if there are a table of examples for this component. If None and used in a `gr.Interface`, the label will be the name of the parameter this component is assigned to.
every
float | None
None If `value` is a callable, run the function 'every' number of seconds while the client connection is open. Has no effect otherwise. Queue must be enabled. The event can be accessed (e.g. to cancel it) via this component's .load_event attribute.
show_label
bool | None
None if True, will display label.
container
bool
True If True, will place the component in a container - providing some extra padding around the border.
scale
int | None
None relative width compared to adjacent Components in a Row. For example, if Component A has scale=2, and Component B has scale=1, A will be twice as wide as B. Should be an integer.
min_width
int
160 minimum pixel width, will wrap if not sufficient screen space to satisfy this value. If a certain scale value results in this Component being narrower than min_width, the min_width parameter will be respected first.
interactive
bool | None
None if True, will allow users to upload and edit a audio file; if False, can only be used to play audio. If not provided, this is inferred based on whether the component is used as an input or output.
visible
bool
True If False, component will be hidden.
streaming
bool
False If set to True when used in a `live` interface as an input, will automatically stream webcam feed. When used set as an output, takes audio chunks yield from the backend and combines them into one streaming audio output.
elem_id
str | None
None An optional string that is assigned as the id of this component in the HTML DOM. Can be used for targeting CSS styles.
elem_classes
list[str] | str | None
None An optional list of strings that are assigned as the classes of this component in the HTML DOM. Can be used for targeting CSS styles.
render
bool
True If False, component will not render be rendered in the Blocks context. Should be used if the intention is to assign event listeners now but render the component later.
format
"wav" | "mp3"
"wav" The file format to save audio files. Either 'wav' or 'mp3'. wav files are lossless but will tend to be larger files. mp3 files tend to be smaller. Default is wav. Applies both when this component is used as an input (when `type` is "format") and when this component is used as an output.
autoplay
bool
False Whether to automatically play the audio when the component is used as an output. Note: browsers will not autoplay audio files if the user has not interacted with the page yet.
show_share_button
bool | None
None If True, will show a share icon in the corner of the component that allows user to share outputs to Hugging Face Spaces Discussions. If False, icon does not appear. If set to None (default behavior), then the icon appears if this Gradio app is launched on Spaces, but not otherwise.
min_length
int | None
None The minimum length of audio (in seconds) that the user can pass into the prediction function. If None, there is no minimum length.
max_length
int | None
None The maximum length of audio (in seconds) that the user can pass into the prediction function. If None, there is no maximum length.
waveform_options
WaveformOptions | None
None A dictionary of options for the waveform display. Options include: waveform_color (str), waveform_progress_color (str), show_controls (bool), skip_length (int). Default is None, which uses the default values for these options.

Events

name description
stream This listener is triggered when the user streams the UnifiedAudio.
change Triggered when the value of the UnifiedAudio changes either because of user input (e.g. a user types in a textbox) OR because of a function update (e.g. an image receives a value from the output of an event trigger). See .input() for a listener that is only triggered by user input.
clear This listener is triggered when the user clears the UnifiedAudio using the X button for the component.
play This listener is triggered when the user plays the media in the UnifiedAudio.
pause This listener is triggered when the media in the UnifiedAudio stops for any reason.
stop This listener is triggered when the user reaches the end of the media playing in the UnifiedAudio.
start_recording This listener is triggered when the user starts recording with the UnifiedAudio.
pause_recording This listener is triggered when the user pauses recording with the UnifiedAudio.
stop_recording This listener is triggered when the user stops recording with the UnifiedAudio.
upload This listener is triggered when the user uploads a file into the UnifiedAudio.
end This listener is triggered when the user reaches the end of the media playing in the UnifiedAudio.

User function

The impact on the users predict function varies depending on whether the component is used as an input or output for an event (or both).

  • When used as an Input, the component only impacts the input signature of the user function.
  • When used as an output, the component only impacts the return signature of the user function.

The code snippet below is accurate in cases where the component is used as both an input and an output.

  • As output: Is passed, the preprocessed input data sent to the user's function in the backend.
  • As input: Should return, audio data in either of the following formats: a tuple of (sample_rate, data), or a string filepath or URL to an audio file, or None.
def predict(
    value: tuple[int, numpy.ndarray] | str | None
) -> tuple[int, numpy.ndarray]
   | str
   | pathlib.Path
   | bytes
   | None:
    return value

WaveformOptions

class WaveformOptions(TypedDict, total=False):
    waveform_color: str
    waveform_progress_color: str
    show_controls: bool
    skip_length: int

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