Skip to main content

minihost

Minihost is a headless, JUCE-based audio plugin host that supports VST3, AudioUnit, and LV2 plugins. It provides a C/C++ API for integration and a Python API powered by nanobind.

At a glance

Process an input WAV through a chain of effect plugins and write the result:

import minihost

with (
    minihost.Plugin("/path/to/delay.vst3", sample_rate=48000) as delay,
    minihost.Plugin("/path/to/reverb.vst3", sample_rate=48000) as reverb,
    minihost.PluginChain([delay, reverb]) as chain,
):
    minihost.process_audio_to_file(
        chain, "in.wav", "out.wav",
        tail_seconds=4.0,           # capture reverb tail
    )

process_audio_to_file handles block iteration, latency compensation, sample-rate matching, channel layout, and tail rendering. See the Python API section for lower-level control.

Features

  • Load VST3 plugins (macOS, Windows, Linux)

  • Load AudioUnit plugins (macOS only)

  • Load LV2 plugins (macOS, Windows, Linux)

  • Headless mode (default) - no GUI dependencies, uses JUCE's juce_audio_processors_headless module

  • Plugin chaining - connect multiple plugins in series (synth -> reverb -> limiter)

  • AudioBuffer -- the canonical audio container. Planar float32, JUCE-backed, stdlib-only. Numpy-style 2-axis indexing (buf[ch, frame_slice]), JUCE DSP ops (clear, apply_gain, magnitude, copy), zero-copy channel-range views (buf.channel_view(start, count)), DLPack export so it's accepted directly by Plugin.process / numpy.asarray / PyTorch / etc.

  • numpy is optional. pip install minihost installs no Python runtime dependencies; the AudioBuffer API works without numpy. pip install minihost[numpy] enables numpy-typed APIs (AudioBuffer.as_ndarray(), read_audio(as_=numpy.ndarray), accepting numpy arrays as inputs).

  • High-level offline processing -- process_audio_to_file(plugin_or_chain, "in.wav", "out.wav") collapses block iteration, latency compensation, sample-rate matching, and tail rendering into one call.

  • Audio file I/O via miniaudio + tflac -- read WAV/FLAC/MP3/Vorbis, write WAV (16/24/32-bit) and FLAC (16/24-bit), optional Broadcast Wave (bext) metadata on WAV output (write_audio(..., bwf={...}))

  • Sample rate conversion via miniaudio resampler -- minihost.resample() API and minihost resample CLI subcommand

  • Real-time audio playback via miniaudio (cross-platform), with duplex capture mode for effect processing

  • Audio device selection -- enumerate and target specific playback/capture devices (minihost devices CLI, audio_get_playback_devices() / audio_get_capture_devices() API, --playback-device / --capture-device on minihost play)

  • Real-time audio input -- lock-free ring buffer API (write_input()) and duplex capture (capture=True) for routing system audio through effects

  • Real-time MIDI I/O via libremidi (cross-platform)

  • Control surface mapping -- minihost.MidiMapper translates incoming MIDI CCs from a USB control surface (Launch Control / MIDIMix / nanoKONTROL / X-Touch / etc.) onto plugin parameters with optional value-range and curve (linear/exp/log); CLI: minihost play --map "channel:cc:param[:lo:hi[:curve]]" (repeatable) or --map-file PATH for saved JSON mappings.

  • Looped sources for live tweaking -- minihost play --loop-midi PATH loops a MIDI file through the plugin (with All Notes Off between iterations); --loop-audio PATH loops an audio file into the plugin's input ring buffer at real time. Useful for parameter exploration against a repeating pattern.

  • Virtual MIDI ports - create named ports that DAWs can connect to (macOS, Linux)

  • Standalone MIDI input - monitor raw MIDI messages without a plugin (MidiIn class)

  • Batch processing -- glob patterns and directory output for processing multiple files (minihost process -i "*.wav" -o output/)

  • Auto-tail detection -- tail_seconds="auto" monitors output amplitude and stops rendering when reverb/delay tails decay below threshold

  • Process audio with sample-accurate parameter automation

  • Single and double precision processing

  • MIDI input/output support

  • Transport info for tempo-synced plugins

  • State save/restore for presets and per-program state

  • Preset morphing -- minihost.morph interpolates between two parameter snapshots (A/B blend) for sound-design sweeps (capture / lerp / apply / morph)

  • Thread-safe by design -- construction, destruction, and thread-affine control operations are marshaled onto a dedicated native plugin thread, so a plugin can be built on one thread and used or closed from another (only the real-time process* path is single-thread/lock-free)

  • Change notifications (latency, parameter info, program, non-parameter state) with deferred dispatch via poll_callbacks()

  • Parameter gestures for automation bracketing

  • Bus layout validation and sidechain support

  • Track name/color metadata forwarding to plugins

  • Latency and tail time reporting

  • Parameter access by name -- plugin.find_param("Cutoff"), plugin.get_param_by_name("Cutoff"), plugin.set_param_by_name("Cutoff", 0.5) with case-insensitive lookup

  • Async plugin loading -- minihost.open_async() returns a concurrent.futures.Future that resolves to a ready-to-use Plugin, loaded off the calling thread (safe to use/close from any thread thanks to the dedicated plugin thread)

  • VST3 preset I/O -- read and write .vstpreset files from C (minihost_vstpreset.h), C++, and Python (minihost.vstpreset); minihost presets CLI subcommand exports the current plugin state, optionally after loading a program, state blob, or another .vstpreset

Library structure

minihost ships as two separate static libraries with a one-way dependency: libminihost_audio builds on libminihost, never the reverse.

  • libminihost -- the plugin host core (projects/libminihost/). Loads and runs VST3/AU/LV2 plugins and processes audio blocks you hand it: MIDI in/out, parameters, state save/restore, sample-accurate automation, sidechain, transport, bus layouts, and the routing abstractions (PluginChain, PluginBus, PluginGraph). Depends only on JUCE. C ABI prefix: mh_* (e.g. mh_open, mh_process, mh_chain_*, mh_bus_*, mh_graph_*). Header: minihost.h. Link this alone to load a plugin and feed it your own buffers -- the offline and embedded path, with no device or codec dependencies.

  • libminihost_audio -- the I/O layer around the core (projects/libminihost_audio/). It has no plugin-format knowledge; it gets audio and MIDI in and out of the machine and drives a plugin or chain through its real-time audio callback. Provides live audio device playback/capture (miniaudio), audio file read/write (read WAV/FLAC/MP3/Vorbis; write WAV/FLAC via miniaudio + tflac), MIDI ports (libremidi), and the lock-free ring buffers. Depends on libminihost plus the vendored miniaudio, tflac, and libremidi. C ABI prefix: mh_audio_*. Headers: minihost_audio.h, minihost_audiofile.h, minihost_midi.h. Link this in addition to libminihost when you want real-time devices, file I/O, or MIDI hardware.

In short: libminihost runs the plugin; libminihost_audio connects it to speakers, files, and MIDI hardware. The Python wheel links both.

Desktop application

minihost_desktop (projects/minihost_desktop/) is a developer-facing GUI host built on the same libraries. It loads VST3/AU/LV2 plugins, wires them into a node graph on a canvas, opens native plugin editor windows, renders the graph to disk offline, and drives a realtime audio device with live MIDI input and a transport (BPM / loop region). Project files are JSON, schema-versioned, and round-trip with the Python loader (minihost.load_project / render_project), so a graph built in the app renders identically from the command line.

Each plugin window carries the host-side controls a plugin's own editor usually leaves out: a factory-program selector, a bypass toggle (backed by the plugin's own bypass parameter where it publishes one), and .vstpreset load/save for interchange with other hosts. Offline renders put every plugin into non-realtime mode for the duration, so a bounce uses the plugin's offline code path rather than its realtime one.

Status: functional and pre-release. Both the offline renderer and the realtime engine are built and tested. Not yet done: packaging (code signing, notarization, installers). See docs/dev/desktop_app.md for the design and docs/dev/desktop_app_todo.md for per-feature status.

Plugins run in-process, the same trust model a DAW uses: a misbehaving plugin can crash the whole app and lose unsaved canvas edits. Two mitigations bound the harm. Plugin scanning is out-of-process, so a plugin that crashes while being catalogued takes down only a disposable child. And the working project is autosaved to a sidecar every few seconds; after an unclean exit the app offers to recover it on the next launch, so a crash costs at most a few seconds of unsaved editing. Save often regardless.

The app is opt-in and off by default (it requires a non-headless build, so it is excluded from the headless library, CLI, and Python wheel builds):

# Build the desktop app into its own build-desktop/ dir (keeps the
# headless library / CLI / wheel build in build/ untouched)
make desktop

# Or configure it by hand (requires MINIHOST_HEADLESS=OFF):
cmake -B build-desktop -DMINIHOST_BUILD_DESKTOP=ON -DMINIHOST_HEADLESS=OFF
cmake --build build-desktop --config Release --target minihost_desktop

# Build (if needed) and launch it (macOS)
make run-desktop

Headless entry points for scripting and CI: minihost_desktop --render-project=<project.json> renders a project with no window, and minihost_desktop --save-roundtrip=<project.json> parses and re-saves a project (used as a build smoke test).

Requirements

  • CMake 3.20+

  • C++17 compiler

  • JUCE framework (automatically downloaded if not present)

  • Vendored C libraries: miniaudio, tflac, libremidi, midifile (see docs/vendored.md)

Platform-specific

  • macOS: Xcode command line tools

  • Windows: Visual Studio 2019+ or MinGW

  • Linux: Install the following development libraries:

    sudo apt install libasound2-dev libfreetype-dev libfontconfig1-dev \
        libwebkit2gtk-4.1-dev libgtk-3-dev libgl-dev libcurl4-openssl-dev
    

Building

macOS / Linux

# Clone the repository
git clone https://github.com/shakfu/minihost.git
cd minihost

# Build (JUCE will be downloaded automatically)
make

# Or with a custom JUCE path
cmake -B build -DJUCE_PATH=/path/to/JUCE
cmake --build build

# Disable headless mode (enables GUI support)
cmake -B build -DMINIHOST_HEADLESS=OFF
cmake --build build

Windows

# Clone the repository
git clone https://github.com/shakfu/minihost.git
cd minihost

# Download JUCE
python scripts/download_juce.py

# Configure and build
cmake -B build
cmake --build build --config Release

JUCE Setup

JUCE is downloaded automatically by make (macOS/Linux). You can also download it manually:

# Cross-platform (recommended) - works on Windows, macOS, Linux
python scripts/download_juce.py

# Unix only (bash)
./scripts/download_juce.sh

To use a different version or existing installation:

# Download specific version (macOS/Linux)
JUCE_VERSION=8.0.6 python scripts/download_juce.py

# Download specific version (Windows PowerShell)
$env:JUCE_VERSION="8.0.6"; python scripts/download_juce.py

# Or point to existing JUCE
cmake -B build -DJUCE_PATH=/path/to/your/JUCE

Command Line Interface

The minihost command provides a CLI for common plugin operations:

# Install (from source)
uv sync

# Available commands
minihost --help
usage: minihost [-h] [-r SAMPLE_RATE] [-b BLOCK_SIZE]
                {scan,info,params,midi,devices,presets,play,process,resample} ...

Audio plugin hosting CLI

positional arguments:
  {scan,info,params,midi,devices,presets,play,process,resample}
                        Commands
    scan                Scan directory for plugins
    info                Show plugin info
    params              List plugin parameters
    midi                List or monitor MIDI ports
    devices             List audio playback/capture devices
    presets             List factory presets or export .vstpreset files
    play                Play plugin with real-time audio/MIDI
    process             Process audio through plugin (offline)
    resample            Resample audio file to a different sample rate

options:
  -h, --help            show this help message and exit
  -r, --sample-rate SAMPLE_RATE
                        Sample rate in Hz (default: 48000)
  -b, --block-size BLOCK_SIZE
                        Block size in samples (default: 512)

Commands

minihost info - Show plugin info

minihost info /path/to/plugin.vst3          # full info (loads plugin)
minihost info /path/to/plugin.vst3 --probe  # lightweight metadata only
minihost info /path/to/plugin.vst3 --json   # JSON output

By default shows full runtime details (sample rate, channels, latency, buses, presets). Use --probe for fast metadata-only mode without fully loading the plugin.

minihost scan - Scan directory for plugins

minihost scan /Library/Audio/Plug-Ins/VST3/
minihost scan ~/Music/Plugins --json

minihost params - List plugin parameters

minihost params /path/to/plugin.vst3
minihost params /path/to/plugin.vst3 --json

minihost devices - List audio devices

minihost devices                    # list playback and capture devices
minihost devices --json             # JSON output

Use an index or case-insensitive device-name substring with minihost play --playback-device / --capture-device.

minihost presets - List or export factory presets

# List factory presets
minihost presets /path/to/synth.vst3
minihost presets /path/to/synth.vst3 --json

# Export factory preset N as a .vstpreset
minihost presets /path/to/synth.vst3 --program 5 --save preset5.vstpreset

# Round-trip: load a .vstpreset and re-save (preserves class_id)
minihost presets /path/to/synth.vst3 --load-vstpreset in.vstpreset --save out.vstpreset

# Convert a raw state blob to .vstpreset
minihost presets /path/to/synth.vst3 --state state.bin --save out.vstpreset

minihost midi - List or monitor MIDI ports

minihost midi                          # list all MIDI ports
minihost midi --json                   # list as JSON
minihost midi -m 0                     # monitor MIDI input port 0
minihost midi --virtual-midi "Monitor" # create virtual port and monitor

minihost play - Play plugin with real-time audio/MIDI

# Connect to MIDI input port 0
minihost play /path/to/synth.vst3 --midi 0

# Create a virtual MIDI port (macOS/Linux)
minihost play /path/to/synth.vst3 --virtual-midi "My Synth"

# Enable audio input for effect processing (duplex mode)
minihost play /path/to/reverb.vst3 --input
minihost play /path/to/amp-sim.vst3 --input --midi 0  # with MIDI too

# Select specific audio devices (index from `minihost devices` or name substring)
minihost play /path/to/synth.vst3 --playback-device "BlackHole"
minihost play /path/to/effect.vst3 --input --playback-device 0 --capture-device 1
Map a control surface to plugin parameters

--map wires incoming MIDI CCs from a USB control surface (Launch Control, MIDIMix, nanoKONTROL, X-Touch, etc.) onto plugin parameters. When set, MIDI is routed through Python via a MidiMapper; mapped CCs become parameter writes and unmapped events (notes, unmapped CCs) are forwarded to the plugin so notes still play. Format: channel:cc:param[:lo:hi[:curve]]. Curves: linear (default), exp (more resolution at low end), log (more resolution at high end).

# One mapping per --map flag, repeatable
minihost play /path/to/synth.vst3 --midi 0 \
  --map 0:7:Volume \
  --map 0:10:Pan:-1:1 \
  --map 0:74:Cutoff:0:1:exp

For a permanent setup, save the mappings to a JSON file once and load it with --map-file:

{
  "mappings": [
    {"channel": 0, "cc": 7,  "param": "Volume"},
    {"channel": 0, "cc": 10, "param": "Pan", "value_range": [-1.0, 1.0]},
    {"channel": 0, "cc": 74, "param": "Cutoff", "curve": "exp"}
  ]
}
minihost play /path/to/synth.vst3 --midi 0 \
  --map-file ~/.config/minihost/launch_control.json

--map and --map-file are combinable -- the file loads first, CLI args append. Required JSON fields per entry: channel, cc, param. Optional: value_range (default [0.0, 1.0]), curve (default "linear").

Loop a MIDI or audio file as the source

--loop-midi loops a MIDI file into a synth (or any plugin that accepts MIDI), useful for live-tweaking parameters against a repeating pattern. A Python thread schedules events at wall-clock-correct times; All Notes Off is sent on every channel between iterations to silence sustained notes.

# Loop a MIDI pattern through a synth while live-tweaking knobs
minihost play /path/to/synth.vst3 \
  --midi 0 \
  --map 0:74:Cutoff:0:1:exp \
  --loop-midi tests/_wav/test_pattern.mid

--loop-audio loops an audio file as the plugin's input, useful for testing effects against a known source without needing live audio. The ring buffer is auto-enabled; the file is resampled to the device rate if needed. Mutually exclusive with --input.

# Loop a guitar take into a reverb while turning the mix knob
minihost play /path/to/reverb.vst3 \
  --midi 0 \
  --map 0:7:Mix \
  --loop-audio guitar_dry.wav

Both loop flags can run alongside live MIDI input (the file's events and your live notes are merged into the plugin).

minihost process - Process audio/MIDI offline

# Process audio through effect
minihost process /path/to/effect.vst3 -i input.wav -o output.wav

# With parameter control
minihost process /path/to/effect.vst3 -i input.wav -o output.wav --param "Mix:0.5"

# Render MIDI through synth
minihost process /path/to/synth.vst3 -m song.mid -o output.wav --tail 3.0

# With preset and bit depth
minihost process /path/to/synth.vst3 -m song.mid -o output.wav --preset 5 --bit-depth 16

# Sidechain processing (second -i is sidechain)
minihost process /path/to/compressor.vst3 -i main.wav -i sidechain.wav -o output.wav

# Batch processing (glob input, directory output)
minihost process /path/to/reverb.vst3 -i "drums/*.wav" -o processed/
minihost process /path/to/effect.vst3 -i "*.wav" -o output/ -y  # overwrite existing

# Mixed sample rates are automatically resampled (use --no-resample to error instead)
minihost process /path/to/effect.vst3 -i 44100hz.wav -i 48000hz_sidechain.wav -o out.wav

minihost resample - Resample audio files

minihost resample input.wav -o output.wav -r 48000
minihost resample input.wav -o output.wav -r 44100 --bit-depth 16
minihost resample input.wav -o output.wav -r 96000 -y  # overwrite

Global Options

Option Description
-r, --sample-rate Sample rate in Hz (default: 48000)
-b, --block-size Block size in samples (default: 512)

Native CLI binaries

Alongside the Python minihost command, the project ships two native binaries -- minihost_c (pure C) and minihost_cpp (C++) -- built into build/projects/ and published in the cli release archive. They are independent implementations over the same C API and are meant to be interchangeable; a conformance test runs them against each other and fails if they diverge. Beyond the single-plugin commands they add the routing ones:

Plugins are named by path, or by name once they have been scanned -- matching ignores case and takes the whole name:

minihost_c scan                    # index this platform's plugin locations
minihost_c probe dexed             # by name (whole name, any case)
minihost_c --fuzzy probe "pro-q 3" # --fuzzy to match part of a name
minihost_c --format au probe "FabFilter Pro-Q 4"   # pin a format

A plugin installed in both AU and VST3 resolves to the VST3 unless --format says otherwise. Substring matching is opt-in because it is rarely decisive on a large collection: with 343 plugins installed here, reverb matches 5 and filter 31.

scan takes an optional directory to scan instead of the defaults. It probes each plugin, so a first pass over a large collection takes minutes; results are cached (shared with the Python CLI's cache), written as the scan proceeds, and only changed plugins are re-probed. Each plugin is probed in a child process the scan is willing to lose, so one that hangs or crashes on load costs one cache entry (timeout / crash) instead of the scan -- --in-process opts out. See the CLI reference.

# one plugin: audio in, or a MIDI file through an instrument
minihost_c process Plugin.vst3 -i input.wav -o output.wav --tail 3
minihost_c process Synth.vst3  -m song.mid  -o output.wav --tail 2

# plugins in series; MIDI effects come first and drive what follows
minihost_c chain EQ.vst3 Reverb.vst3 -i input.wav -o output.wav --mix 1:0.5 --tail 3
minihost_c chain Arpeggiator.component Synth.vst3 -m song.mid -o output.wav

# branches in parallel, summed -- one MIDI part layered across instruments.
# A branch may itself be a chain: commas run plugins in series.
minihost_c bus SynthA.vst3 SynthB.vst3 -m song.mid -o output.wav
minihost_c bus Synth.vst3 "Chorder.component,Synth.vst3" -m song.mid -o out.wav --gain 1:0.7

See the CLI reference for the full option list and MIDI Routing for why MIDI effects must precede the instrument they drive.

Python API

Install:

pip install minihost              # AudioBuffer-only API; no numpy required
pip install minihost[numpy]       # adds numpy-typed return values + numpy input acceptance

The default audio container is minihost.AudioBuffer (planar float32, JUCE-backed, stdlib-only). It supports DLPack so any C extension that takes a 2D float32 c-contiguous buffer (including all of minihost's process methods) accepts it directly. Numpy is fully supported when installed -- pass as_=numpy.ndarray to receive numpy arrays from read_audio / render_midi, or call .as_ndarray() on any AudioBuffer for a zero-copy numpy view.

Quick start: process a WAV file through a chain

import minihost

with (
    minihost.Plugin("/path/to/delay.vst3", sample_rate=48000) as delay,
    minihost.Plugin("/path/to/reverb.vst3", sample_rate=48000) as reverb,
    minihost.PluginChain([delay, reverb]) as chain,
):
    minihost.process_audio_to_file(
        chain, "in.wav", "out.wav",
        tail_seconds=4.0,           # capture reverb tail
    )

process_audio_to_file handles block iteration, latency compensation, sample-rate matching (input is auto-resampled to the plugin's rate), mono-to-stereo channel duplication, and tail rendering. For in-memory data use process_audio(plugin_or_chain, audio, tail_seconds=...), which returns an AudioBuffer.

Lower-level processing

import minihost

plugin = minihost.Plugin("/path/to/plugin.vst3", sample_rate=48000)

# AudioBuffer is the default container. process accepts it directly via DLPack.
input_audio = minihost.AudioBuffer(2, 512)
output_audio = minihost.AudioBuffer(2, 512)
plugin.process(input_audio, output_audio)

# Numpy users can mix and match -- both accepted as inputs:
import numpy as np                                       # requires minihost[numpy]
input_np = np.zeros((2, 512), dtype=np.float32)
plugin.process(input_np, output_audio)                   # numpy in -> AudioBuffer out
output_np = output_audio.as_ndarray()                    # zero-copy numpy view

Parameter Access by Name

import minihost

plugin = minihost.Plugin("/path/to/synth.vst3", sample_rate=48000)

# Find parameter index by name (case-insensitive)
idx = plugin.find_param("Cutoff")

# Get/set by name directly
value = plugin.get_param_by_name("Cutoff")
plugin.set_param_by_name("Cutoff", 0.7)
plugin.set_param_by_name("resonance", 0.4)  # case-insensitive

# Index-based API remains available for hot paths
plugin.set_param(idx, 0.5)

Preset Morphing

Interpolate between two parameter snapshots (an A/B blend), useful for sound-design sweeps. Morphing operates on normalized per-parameter values (not opaque VST/AU state blobs).

import minihost

plugin = minihost.Plugin("/path/to/synth.vst3", sample_rate=48000)

# Capture two states (e.g. after loading two presets)
a = minihost.capture_params(plugin)
# ... dial in a different sound ...
b = minihost.capture_params(plugin)

# Blend 30% of the way from A to B and apply to the plugin
minihost.morph_params(plugin, a, b, 0.3)

# Or compute a blend without applying; t can be a per-parameter sequence
blended = minihost.lerp_params(a, b, 0.5)
minihost.apply_params(plugin, blended)

Async Plugin Loading

import minihost

# Load a heavy plugin in the background (off the calling thread)
future = minihost.open_async("/path/to/heavy_sampler.vst3", sample_rate=48000)

# Do other work while plugin loads...

# Block until ready -- returns a normal Plugin
plugin = future.result()
print(f"Loaded: {plugin.num_params} params")

# The plugin is built on a loader thread but is safe to use and close from
# any thread: minihost marshals thread-affine operations onto a dedicated
# native plugin thread. Loads are serialized on that thread, so this is
# non-blocking (not parallel) loading.
plugin.close()

Shared session for multi-plugin loading

mh_open and its Python equivalent register the JUCE plugin formats on every call. A Session builds that format manager once and reuses it across loads, probes and scans, which is the difference between loading one plugin and loading a chain of them.

import minihost

session = minihost.Session()
eq     = session.open("/path/to/EQ.vst3", sample_rate=48000)
reverb = session.open("/path/to/Reverb.vst3", sample_rate=48000)

# AudioUnits are identified by an id rather than a path, so they load from a
# serialized PluginDescription -- through the session like anything else.
delay = session.open_desc(
    '<PLUGIN name="AUDelay" format="AudioUnit" file="AudioUnit:Effects/aufx,dely,appl"/>'
)

session.close()   # the plugins keep working; they do not depend on it

The native chain and bus commands load this way, which is where the saving shows: a four-plugin chain built four format managers before.

Audio Device Enumeration and Selection

import minihost

# List available audio devices
for dev in minihost.audio_get_playback_devices():
    print(f"[{dev['index']}] {dev['name']}{' *' if dev['is_default'] else ''}")

for dev in minihost.audio_get_capture_devices():
    print(f"[{dev['index']}] {dev['name']}{' *' if dev['is_default'] else ''}")

# Target a specific playback device (e.g., for routing to a loopback driver)
plugin = minihost.Plugin("/path/to/synth.vst3", sample_rate=48000)
with minihost.AudioDevice(plugin, playback_device_index=2) as audio:
    audio.send_midi(0x90, 60, 100)

# Duplex mode with explicit capture + playback devices
with minihost.AudioDevice(plugin, capture=True,
                          capture_device_index=1,
                          playback_device_index=0) as audio:
    pass

Pass -1 (the default) to use the system default device.

Real-time Audio Playback

import minihost
import time

plugin = minihost.Plugin("/path/to/synth.vst3", sample_rate=48000)

# Use as context manager for automatic start/stop
with minihost.AudioDevice(plugin) as audio:
    # Plugin is now producing audio through speakers
    # Send MIDI programmatically
    audio.send_midi(0x90, 60, 100)  # Note on: C4, velocity 100
    time.sleep(1)
    audio.send_midi(0x80, 60, 0)    # Note off
    time.sleep(0.5)

# Or manual control
audio = minihost.AudioDevice(plugin)
audio.start()
audio.send_midi(0x90, 64, 80)  # E4 note on
time.sleep(0.5)
audio.send_midi(0x80, 64, 0)   # E4 note off
audio.stop()

Real-time Audio Input (Effect Processing)

Route system audio through an effect plugin using duplex mode or the ring buffer API:

import minihost
import time

plugin = minihost.Plugin("/path/to/reverb.vst3", sample_rate=48000)

# Option 1: Duplex mode (system audio capture -> plugin -> speakers)
with minihost.AudioDevice(plugin, capture=True) as audio:
    print("Processing system audio through effect... Ctrl+C to stop")
    time.sleep(10)

# Option 2: Ring buffer (push audio from Python).
# AudioBuffer slicing returns a new AudioBuffer; write_input accepts it
# directly via DLPack -- no numpy required.
audio = minihost.AudioDevice(plugin)
audio.enable_input()  # ~0.5s ring buffer by default
audio.start()

data, sr = minihost.read_audio("guitar.wav")
block_size = 512
for i in range(0, data.frames, block_size):
    chunk = data[:, i:i+block_size]
    audio.write_input(chunk)
    time.sleep(block_size / sr * 0.9)  # pace to real time

audio.stop()
audio.disable_input()

Real-time MIDI I/O

import minihost

# Enumerate available MIDI ports
inputs = minihost.midi_get_input_ports()
outputs = minihost.midi_get_output_ports()
print(f"MIDI Inputs: {inputs}")
print(f"MIDI Outputs: {outputs}")

# Connect MIDI when creating AudioDevice
with minihost.AudioDevice(plugin, midi_input_port=0) as audio:
    # MIDI from port 0 is now routed to the plugin
    pass

# Or connect dynamically
audio = minihost.AudioDevice(plugin)
audio.connect_midi_input(0)
audio.start()
# ...
audio.disconnect_midi_input()
audio.stop()

# Create virtual MIDI ports (appear in system MIDI, DAWs can connect)
audio = minihost.AudioDevice(plugin)
audio.create_virtual_midi_input("minihost Input")
audio.create_virtual_midi_output("minihost Output")
audio.start()
# Other apps can now send MIDI to "minihost Input"
# and receive MIDI from "minihost Output"

Standalone MIDI Input

Monitor MIDI messages without loading a plugin:

import minihost

def on_midi(data: bytes):
    status = data[0]
    if status & 0xF0 == 0x90 and data[2] > 0:
        print(f"Note On: {data[1]} vel={data[2]}")

# Open hardware MIDI port
with minihost.MidiIn.open(0, on_midi) as midi_in:
    input("Press Enter to stop...\n")

# Or create a virtual MIDI port
with minihost.MidiIn.open_virtual("My Monitor", on_midi) as midi_in:
    input("Press Enter to stop...\n")

Audio File I/O

import minihost

# Read audio files (WAV, FLAC, MP3, Vorbis).
# Default container is AudioBuffer (planar float32, no numpy required).
data, sample_rate = minihost.read_audio("input.wav")
# data is an AudioBuffer of shape (channels, samples)

# Pass as_=numpy.ndarray to get a numpy array instead (requires minihost[numpy]).
import numpy as np
data_np, sample_rate = minihost.read_audio("input.wav", as_=np.ndarray)

# write_audio accepts AudioBuffer, numpy ndarray, or any DLPack/buffer-protocol producer.
minihost.write_audio("output.wav", data, sample_rate, bit_depth=24)   # WAV (16/24/32-bit)
minihost.write_audio("output.flac", data, sample_rate, bit_depth=24)  # FLAC (16/24-bit)

# Broadcast Wave (bext) metadata for film/broadcast workflows (WAV only)
minihost.write_audio("take.wav", data, sample_rate, bit_depth=24, bwf={
    "description": "Scene 12 take 3",
    "originator": "minihost",
    "originator_reference": "REF-0012",
    "origination_date": "2026-07-07",   # yyyy-mm-dd
    "origination_time": "12:34:56",     # hh:mm:ss
    "time_reference": 48000 * 3600,     # samples since midnight (timecode anchor)
})

# Get file info without decoding
info = minihost.get_audio_info("song.wav")
print(f"{info['channels']}ch, {info['sample_rate']}Hz, {info['duration']:.2f}s")

Sample Rate Conversion

import minihost

# Works on AudioBuffer (default), numpy ndarray, or any 2D float32
# c-contig buffer-protocol producer. Return type matches the input type
# (AudioBuffer in -> AudioBuffer out; numpy in -> numpy out).
data, sr = minihost.read_audio("input_44100.wav")  # AudioBuffer @ 44.1kHz
resampled = minihost.resample(data, 44100, 48000)   # -> 48kHz AudioBuffer
minihost.write_audio("output_48000.wav", resampled, 48000)

MIDI File Read/Write

import minihost

# Create a new MIDI file
mf = minihost.MidiFile()
mf.ticks_per_quarter = 480

# Add events
mf.add_tempo(0, 0, 120.0)  # 120 BPM at tick 0
mf.add_note_on(0, 0, 0, 60, 100)    # C4 note on at tick 0
mf.add_note_off(0, 480, 0, 60, 0)   # C4 note off at tick 480

# Save to file
mf.save("output.mid")

# Load existing MIDI file
mf2 = minihost.MidiFile()
mf2.load("input.mid")

# Read events
events = mf2.get_events(0)  # Get events from track 0
for event in events:
    if event['type'] == 'note_on':
        print(f"Note {event['pitch']} vel {event['velocity']} at {event['seconds']:.2f}s")

MIDI File Rendering

Render MIDI files through plugins to produce audio output. Returns AudioBuffer by default; pass as_=numpy.ndarray for numpy:

import minihost

plugin = minihost.Plugin("/path/to/synth.vst3", sample_rate=48000)

# Render to AudioBuffer (default)
audio = minihost.render_midi(plugin, "song.mid")
print(f"Rendered {audio.frames / 48000:.2f} seconds of audio")

# Numpy variant
import numpy as np
audio_np = minihost.render_midi(plugin, "song.mid", as_=np.ndarray)

# Render directly to WAV file (returns frame count)
samples = minihost.render_midi_to_file(plugin, "song.mid", "output.wav", bit_depth=24)

# Stream blocks for large files or real-time processing.
# Each yielded block is an AudioBuffer; pass as_=numpy.ndarray to yield numpy instead.
for block in minihost.render_midi_stream(plugin, "song.mid", block_size=512):
    # block.shape == (channels, n) where n <= block_size
    pass

# Auto-detect reverb/delay tail (stops when output decays below -80 dB)
audio = minihost.render_midi(plugin, "song.mid", tail_seconds="auto")

# Custom threshold (-40 dB) and max tail (10s safety cap)
audio = minihost.render_midi(plugin, "song.mid",
                             tail_seconds="auto", tail_threshold=1e-2, max_tail_seconds=10)

# Fine-grained control with MidiRenderer class
renderer = minihost.MidiRenderer(plugin, "song.mid")
print(f"Duration: {renderer.duration_seconds:.2f}s")

while not renderer.is_finished:
    block = renderer.render_block()   # returns AudioBuffer or None
    print(f"Progress: {renderer.progress:.1%}")

Plugin Chaining

Chain multiple plugins together for serial processing:

import minihost
import time

# Load plugins (all must have same sample rate)
synth = minihost.Plugin("/path/to/synth.vst3", sample_rate=48000)
reverb = minihost.Plugin("/path/to/reverb.vst3", sample_rate=48000)
limiter = minihost.Plugin("/path/to/limiter.vst3", sample_rate=48000)

# Create chain
chain = minihost.PluginChain([synth, reverb, limiter])
print(f"Total latency: {chain.latency_samples} samples")
print(f"Tail length: {chain.tail_seconds:.2f} seconds")

# Real-time playback through chain
with minihost.AudioDevice(chain) as audio:
    audio.send_midi(0x90, 60, 100)  # Note on to synth
    time.sleep(2)
    audio.send_midi(0x80, 60, 0)    # Note off
    time.sleep(1)  # Let reverb tail fade

# Offline processing -- AudioBuffer is the default container
input_audio = minihost.AudioBuffer(2, 512)
output_audio = minihost.AudioBuffer(2, 512)
chain.process(input_audio, output_audio)

# Process with MIDI (enters the first plugin that accepts it, then
# carried on by any plugin that produces MIDI -- e.g. arpeggiator -> synth)
midi_events = [(0, 0x90, 60, 100)]
chain.process_midi(input_audio, output_audio, midi_events)

# Sample-accurate automation across chain
# param_changes: (sample_offset, plugin_index, param_index, value)
param_changes = [
    (0, 1, 0, 0.3),    # Set reverb param 0 at sample 0
    (256, 1, 0, 0.6),  # Change reverb param 0 at sample 256
    (0, 2, 0, 0.8),    # Set limiter param 0 at sample 0
]
chain.process_auto(input_audio, output_audio, midi_events, param_changes)

# Render MIDI file through chain
audio = minihost.render_midi(chain, "song.mid")        # -> AudioBuffer
minihost.render_midi_to_file(chain, "song.mid", "output.wav")

# File-to-file processing through the chain (handles tail, latency, resample)
minihost.process_audio_to_file(chain, "input.wav", "output.wav", tail_seconds=4.0)

# Access individual plugins in chain
for i in range(chain.num_plugins):
    plugin = chain.get_plugin(i)
    print(f"Plugin {i}: {plugin.num_params} params")

Parallel routing (PluginBus)

PluginChain is series; PluginBus is parallel. A bus fans the same input to N branches (each a PluginChain) and sums their outputs with a per-branch gain -- parallel compression, dry-bus + reverb-send, multi-band processing. With process_midi, the same MIDI is delivered to every branch, which is the idiomatic way to layer one part across several instruments:

import minihost

# Three synths layered under one MIDI part, summed to stereo.
a = minihost.PluginChain([minihost.Plugin("/path/to/saw.vst3", sample_rate=48000)])
b = minihost.PluginChain([minihost.Plugin("/path/to/sub.vst3", sample_rate=48000)])
c = minihost.PluginChain([minihost.Plugin("/path/to/pad.vst3", sample_rate=48000)])

bus = minihost.PluginBus(2, 2, max_block_size=512, sample_rate=48000.0)
bus.add_branch(a, gain=1.0)
bus.add_branch(b, gain=0.7)
bus.add_branch(c, gain=0.5)

silence = minihost.AudioBuffer(2, 512)   # synths ignore audio input
out = minihost.AudioBuffer(2, 512)
note_on = [(0, 0x90, 60, 100)]           # C4 reaches ALL three synths
bus.process_midi(silence, out, note_on)

A complete, runnable version (block loop, chord, WAV output) is in examples/parallel_bus.py.

For arbitrary node-to-node topologies (multiple inputs/outputs, MIDI processors, channel pick/merge), use PluginGraph -- the general DAG executor that also backs project files (minihost.load_project). Branch MIDI output is not collected by the bus; reach for PluginGraph if you need that.

VST3 Presets

Read, load, and write Steinberg .vstpreset files:

import minihost
from minihost import vstpreset

plugin = minihost.Plugin("/path/to/synth.vst3")

# Read a .vstpreset into raw chunks
preset = vstpreset.read_vstpreset("patch.vstpreset")
print(preset.class_id, len(preset.component_state or b""))

# Load into a plugin (calls plugin.set_state under the hood)
vstpreset.load_vstpreset("patch.vstpreset", plugin)

# Save the plugin's current state to a .vstpreset.
# class_id defaults to the FUID auto-detected from the plugin bundle's
# moduleinfo.json (requires VST3 SDK 3.7.5+, which all modern plugins ship).
vstpreset.save_vstpreset("out.vstpreset", plugin)

# Or pass class_id explicitly (e.g., for legacy plugins without moduleinfo.json):
vstpreset.save_vstpreset("out.vstpreset", plugin,
                         class_id="ABCDEF0123456789ABCDEF0123456789")

# Read just the class ID from a bundle without instantiating the plugin
fuid = vstpreset.read_class_id_from_bundle("/path/to/synth.vst3")
print(fuid)  # e.g., "ABCDEF0123456789ABCDEF0123456789"

# Or write raw chunks you already have
vstpreset.write_vstpreset("out.vstpreset",
                          class_id=fuid,
                          component_state=plugin.get_state())

C API Usage

#include "minihost.h"

// Load a plugin
char err[256];
MH_Plugin* plugin = mh_open("/path/to/plugin.vst3",
                            48000.0,  // sample rate
                            512,      // max block size
                            2, 2,     // in/out channels
                            err, sizeof(err));

// Process audio
float* inputs[2] = { in_left, in_right };
float* outputs[2] = { out_left, out_right };
mh_process(plugin, inputs, outputs, 512);

// Process with MIDI
MH_MidiEvent midi[] = {
    { 0, 0x90, 60, 100 },   // Note on at sample 0
    { 256, 0x80, 60, 0 }    // Note off at sample 256
};
mh_process_midi(plugin, inputs, outputs, 512, midi, 2);

// Parameter control
int num_params = mh_get_num_params(plugin);
float value = mh_get_param(plugin, 0);
mh_set_param(plugin, 0, 0.5f);

// State save/restore
int size = mh_get_state_size(plugin);
void* state = malloc(size);
mh_get_state(plugin, state, size);
mh_set_state(plugin, state, size);

// Cleanup
mh_close(plugin);

Real-time Audio Playback

#include "minihost_audio.h"

// Enumerate and select a playback device (optional)
MH_AudioDeviceInfo devices[32];
int n = mh_audio_enumerate_playback_devices(devices, 32);
for (int i = 0; i < n; i++) {
    printf("[%d]%s %s\n", i, devices[i].is_default ? "*" : " ", devices[i].name);
}

// Open audio device for real-time playback
MH_AudioConfig config = {
    .sample_rate = 48000,
    .buffer_frames = 512,
    .playback_device_index = -1,  // -1 = system default
    .capture_device_index = -1,
};
MH_AudioDevice* audio = mh_audio_open(plugin, &config, err, sizeof(err));

// Start playback
mh_audio_start(audio);

// Plugin is now producing audio through speakers
// Send MIDI, adjust parameters, etc.

// Stop and cleanup
mh_audio_stop(audio);
mh_audio_close(audio);
mh_close(plugin);

Real-time MIDI I/O

#include "minihost_midi.h"

// Enumerate available MIDI ports
int num_inputs = mh_midi_get_num_inputs();
int num_outputs = mh_midi_get_num_outputs();

for (int i = 0; i < num_inputs; i++) {
    char name[256];
    mh_midi_get_input_name(i, name, sizeof(name));
    printf("MIDI Input %d: %s\n", i, name);
}

// Connect MIDI to audio device
MH_AudioConfig config = {
    .sample_rate = 48000,
    .midi_input_port = 0,   // Connect to first MIDI input
    .midi_output_port = -1  // No MIDI output
};
MH_AudioDevice* audio = mh_audio_open(plugin, &config, err, sizeof(err));

// Or connect/disconnect dynamically
mh_audio_connect_midi_input(audio, 1);
mh_audio_disconnect_midi_input(audio);

// Create virtual MIDI ports (appear in system MIDI, DAWs can connect)
mh_audio_create_virtual_midi_input(audio, "minihost Input");
mh_audio_create_virtual_midi_output(audio, "minihost Output");

Plugin Chaining

Chain multiple plugins together for processing (e.g., synth -> reverb -> limiter):

#include "minihost_chain.h"

// Load plugins
MH_Plugin* synth = mh_open("/path/to/synth.vst3", 48000, 512, 0, 2, err, sizeof(err));
MH_Plugin* reverb = mh_open("/path/to/reverb.vst3", 48000, 512, 2, 2, err, sizeof(err));
MH_Plugin* limiter = mh_open("/path/to/limiter.vst3", 48000, 512, 2, 2, err, sizeof(err));

// Create chain (all plugins must have same sample rate)
MH_Plugin* plugins[] = { synth, reverb, limiter };
MH_PluginChain* chain = mh_chain_create(plugins, 3, err, sizeof(err));

// Get combined latency
int latency = mh_chain_get_latency_samples(chain);

// Process audio through chain
float* inputs[2] = { in_left, in_right };
float* outputs[2] = { out_left, out_right };
mh_chain_process(chain, inputs, outputs, 512);

// Process with MIDI (carried onward by plugins that produce MIDI)
MH_MidiEvent midi[] = { { 0, 0x90, 60, 100 } };
mh_chain_process_midi_io(chain, inputs, outputs, 512, midi, 1, NULL, 0, NULL);

// Sample-accurate automation across chain
MH_ChainParamChange changes[] = {
    { .sample_offset = 0,   .plugin_index = 1, .param_index = 0, .value = 0.3f },
    { .sample_offset = 256, .plugin_index = 1, .param_index = 0, .value = 0.6f },
};
mh_chain_process_auto(chain, inputs, outputs, 512,
                       NULL, 0, NULL, 0, NULL, changes, 2);

// Real-time playback through chain
MH_AudioConfig config = { .sample_rate = 48000, .buffer_frames = 512 };
MH_AudioDevice* audio = mh_audio_open_chain(chain, &config, err, sizeof(err));
mh_audio_start(audio);
// ...
mh_audio_stop(audio);
mh_audio_close(audio);

// Cleanup
mh_chain_close(chain);  // Does not close individual plugins
mh_close(synth);
mh_close(reverb);
mh_close(limiter);

MIDI File Rendering

Read a standard MIDI file into the event form mh_process* consumes. Tracks are merged and the file's tempo map is applied; sample_offset is absolute, so rebase it per block:

MH_MidiEvent* events = NULL;
int count = 0;
double duration = 0.0;
char err[512] = {0};

if (!mh_midi_file_load("song.mid", 48000.0, &events, &count, &duration,
                       err, sizeof(err))) {
    fprintf(stderr, "%s\n", err);
    return 1;
}

int cursor = 0;
for (int start = 0; start < total_frames; start += block) {
    int end = start + block;
    MH_MidiEvent block_midi[256];
    int n = 0;
    while (cursor < count && events[cursor].sample_offset < end && n < 256) {
        block_midi[n] = events[cursor];
        block_midi[n].sample_offset -= start;   // rebase to this block
        n++;
        cursor++;
    }
    mh_process_midi(synth, inputs, outputs, block, block_midi, n);
}

mh_midi_file_free(events);

Audio File I/O

Read and write audio files without external dependencies:

#include "minihost_audiofile.h"

// Read any supported format (WAV, FLAC, MP3, Vorbis)
char err[1024];
MH_AudioData* audio = mh_audio_read("input.flac", err, sizeof(err));
if (audio) {
    printf("Channels: %u, Frames: %u, Rate: %u\n",
           audio->channels, audio->frames, audio->sample_rate);
    // audio->data is interleaved float32
    mh_audio_data_free(audio);
}

// Write audio file (format selected by extension)
mh_audio_write("output.wav", interleaved_data,
               2, num_frames, 48000, 24, err, sizeof(err));   // WAV
mh_audio_write("output.flac", interleaved_data,
               2, num_frames, 48000, 24, err, sizeof(err));   // FLAC

// Get file info without decoding
MH_AudioFileInfo info;
mh_audio_get_file_info("song.wav", &info, err, sizeof(err));
printf("Duration: %.2f seconds\n", info.duration);

// Resample audio (e.g., 44.1kHz -> 48kHz)
MH_AudioData* resampled = mh_audio_resample(
    audio->data, audio->channels, audio->frames,
    44100, 48000, err, sizeof(err));
if (resampled) {
    printf("Resampled: %u frames at %u Hz\n", resampled->frames, resampled->sample_rate);
    mh_audio_data_free(resampled);
}

VST3 Preset I/O

Portable .vstpreset reader/writer with no external dependencies:

#include "minihost_vstpreset.h"

char err[256];

// Read a .vstpreset
MH_VstPreset preset;
if (mh_vstpreset_read("in.vstpreset", &preset, err, sizeof(err))) {
    // Apply the processor chunk to a plugin
    mh_set_state(plugin, preset.component_state, preset.component_size);
    mh_vstpreset_free(&preset);
}

// Auto-detect the processor FUID from the plugin bundle's moduleinfo.json
// (requires VST3 SDK 3.7.5+, which all modern plugins ship).
char class_id[MH_VSTPRESET_CLASS_ID_LEN + 1];
if (!mh_vstpreset_read_class_id_from_bundle(
        "/path/to/synth.vst3", class_id, err, sizeof(err))) {
    fprintf(stderr, "Cannot determine class_id: %s\n", err);
    // For legacy plugins without moduleinfo.json, supply class_id another way
    // (e.g., copy it from an existing .vstpreset).
}

// Write current plugin state to a .vstpreset
int state_size = mh_get_state_size(plugin);
void* state = malloc(state_size);
mh_get_state(plugin, state, state_size);

mh_vstpreset_write("out.vstpreset",
                   class_id,
                   state, state_size,
                   NULL, 0,  // optional controller state
                   err, sizeof(err));
free(state);

Thread Safety

minihost runs a dedicated native plugin thread and marshals every thread-affine plugin operation onto it -- construction, destruction, and control-plane queries (state, parameter text, program names, reset, set_sample_rate, processing precision). This makes plugins safe to build on one thread and use or close from another (which is what makes open_async work), and hardens the whole library against cross-thread use.

  • process* functions (process, process_midi, process_auto, process_double, process_sidechain): the real-time path -- lock-free, call from a single thread (typically the audio thread). Not marshaled.

  • All other (control) functions: safe to call from any thread.

  • Reconfiguring calls (set_sample_rate, set_state, set_processing_precision, set_non_realtime, reset) must not overlap a process* call -- they reconfigure the audio pipeline while process runs unprotected. Stop processing before calling them.

  • Set the environment variable MINIHOST_MESSAGE_THREAD=0 to disable the plugin thread (operations then run inline on the caller's thread; cross- thread plugin use, including open_async, becomes unsafe).

API Reference

Detailed API documentation:

  • C API Reference -- minihost.h, minihost_audio.h, minihost_audiofile.h, minihost_chain.h, minihost_midi.h, minihost_vstpreset.h

  • Python API Reference -- Plugin, PluginChain, AudioDevice, MidiFile, MidiIn, audio I/O, MIDI rendering, automation, VST3 presets

  • Hosting Guide -- practical guide with extended examples

License

GPL3

Download files

Download the file for your platform. If you're not sure which to choose, learn more about installing packages.

Source Distributions

No source distribution files available for this release.See tutorial on generating distribution archives.

Built Distributions

If you're not sure about the file name format, learn more about wheel file names.

minihost-0.7.0-cp314-cp314-win_amd64.whl (1.3 MB view details)

Uploaded CPython 3.14Windows x86-64

minihost-0.7.0-cp314-cp314-manylinux_2_27_x86_64.manylinux_2_28_x86_64.whl (2.2 MB view details)

Uploaded CPython 3.14manylinux: glibc 2.27+ x86-64manylinux: glibc 2.28+ x86-64

minihost-0.7.0-cp314-cp314-macosx_11_0_x86_64.whl (1.5 MB view details)

Uploaded CPython 3.14macOS 11.0+ x86-64

minihost-0.7.0-cp314-cp314-macosx_11_0_arm64.whl (1.4 MB view details)

Uploaded CPython 3.14macOS 11.0+ ARM64

minihost-0.7.0-cp313-cp313-win_amd64.whl (1.3 MB view details)

Uploaded CPython 3.13Windows x86-64

minihost-0.7.0-cp313-cp313-manylinux_2_27_x86_64.manylinux_2_28_x86_64.whl (2.2 MB view details)

Uploaded CPython 3.13manylinux: glibc 2.27+ x86-64manylinux: glibc 2.28+ x86-64

minihost-0.7.0-cp313-cp313-macosx_11_0_x86_64.whl (1.5 MB view details)

Uploaded CPython 3.13macOS 11.0+ x86-64

minihost-0.7.0-cp313-cp313-macosx_11_0_arm64.whl (1.4 MB view details)

Uploaded CPython 3.13macOS 11.0+ ARM64

minihost-0.7.0-cp312-cp312-win_amd64.whl (1.3 MB view details)

Uploaded CPython 3.12Windows x86-64

minihost-0.7.0-cp312-cp312-manylinux_2_27_x86_64.manylinux_2_28_x86_64.whl (2.2 MB view details)

Uploaded CPython 3.12manylinux: glibc 2.27+ x86-64manylinux: glibc 2.28+ x86-64

minihost-0.7.0-cp312-cp312-macosx_11_0_x86_64.whl (1.5 MB view details)

Uploaded CPython 3.12macOS 11.0+ x86-64

minihost-0.7.0-cp312-cp312-macosx_11_0_arm64.whl (1.4 MB view details)

Uploaded CPython 3.12macOS 11.0+ ARM64

minihost-0.7.0-cp311-cp311-win_amd64.whl (1.3 MB view details)

Uploaded CPython 3.11Windows x86-64

minihost-0.7.0-cp311-cp311-manylinux_2_27_x86_64.manylinux_2_28_x86_64.whl (2.2 MB view details)

Uploaded CPython 3.11manylinux: glibc 2.27+ x86-64manylinux: glibc 2.28+ x86-64

minihost-0.7.0-cp311-cp311-macosx_11_0_x86_64.whl (1.5 MB view details)

Uploaded CPython 3.11macOS 11.0+ x86-64

minihost-0.7.0-cp311-cp311-macosx_11_0_arm64.whl (1.4 MB view details)

Uploaded CPython 3.11macOS 11.0+ ARM64

minihost-0.7.0-cp310-cp310-win_amd64.whl (1.3 MB view details)

Uploaded CPython 3.10Windows x86-64

minihost-0.7.0-cp310-cp310-manylinux_2_27_x86_64.manylinux_2_28_x86_64.whl (2.2 MB view details)

Uploaded CPython 3.10manylinux: glibc 2.27+ x86-64manylinux: glibc 2.28+ x86-64

minihost-0.7.0-cp310-cp310-macosx_11_0_x86_64.whl (1.5 MB view details)

Uploaded CPython 3.10macOS 11.0+ x86-64

minihost-0.7.0-cp310-cp310-macosx_11_0_arm64.whl (1.4 MB view details)

Uploaded CPython 3.10macOS 11.0+ ARM64

File details

Details for the file minihost-0.7.0-cp314-cp314-win_amd64.whl.

File metadata

  • Download URL: minihost-0.7.0-cp314-cp314-win_amd64.whl
  • Upload date:
  • Size: 1.3 MB
  • Tags: CPython 3.14, Windows x86-64
  • Uploaded using Trusted Publishing? No
  • Uploaded via: twine/6.2.0 CPython/3.13.2

File hashes

Hashes for minihost-0.7.0-cp314-cp314-win_amd64.whl
Algorithm Hash digest
SHA256 6a4a0c7bf1fc7ed7c42973c5d8fee9bd1647b986aa2feab2f97e7094393aa2c3
MD5 d60f32207fc1fc51f6075b044ae111d5
BLAKE2b-256 c2e0cfca91dbd342c797b9305a9d7b0bfcc4c7ac65f40155ea1e0ee858b3b456

See more details on using hashes here.

File details

Details for the file minihost-0.7.0-cp314-cp314-manylinux_2_27_x86_64.manylinux_2_28_x86_64.whl.

File metadata

File hashes

Hashes for minihost-0.7.0-cp314-cp314-manylinux_2_27_x86_64.manylinux_2_28_x86_64.whl
Algorithm Hash digest
SHA256 69d0a3529e1809bf90d85c5a4f2fe4f071c15d98b60836cb4cb73cfea772d292
MD5 77cb911edd77db722445c328db029d87
BLAKE2b-256 9437fc8ec4d896d91c95f66a7ef6832a8af151c92df3f60dd4189134ef64d4d1

See more details on using hashes here.

File details

Details for the file minihost-0.7.0-cp314-cp314-macosx_11_0_x86_64.whl.

File metadata

File hashes

Hashes for minihost-0.7.0-cp314-cp314-macosx_11_0_x86_64.whl
Algorithm Hash digest
SHA256 81cd0226de2b62ab650648076c07ce2188cf542823903df868e757be9c6392dd
MD5 c6003414193925e71400ef6668f0feb0
BLAKE2b-256 d41abe11a6f883fb9eb3f13cd6d5692ae99d69586b9fd7201e5e680034c7aebc

See more details on using hashes here.

File details

Details for the file minihost-0.7.0-cp314-cp314-macosx_11_0_arm64.whl.

File metadata

File hashes

Hashes for minihost-0.7.0-cp314-cp314-macosx_11_0_arm64.whl
Algorithm Hash digest
SHA256 5f1269e8d3876c4d51cf6566b45dd8d876fc045e87b9e7cfe3f56dcfe165d469
MD5 390d531e8a4c0f78a8245345cc6aa977
BLAKE2b-256 f3e4ac4dda3875d027703e2f01338ebd2cb53471fa193e87073d4b395afc6997

See more details on using hashes here.

File details

Details for the file minihost-0.7.0-cp313-cp313-win_amd64.whl.

File metadata

  • Download URL: minihost-0.7.0-cp313-cp313-win_amd64.whl
  • Upload date:
  • Size: 1.3 MB
  • Tags: CPython 3.13, Windows x86-64
  • Uploaded using Trusted Publishing? No
  • Uploaded via: twine/6.2.0 CPython/3.13.2

File hashes

Hashes for minihost-0.7.0-cp313-cp313-win_amd64.whl
Algorithm Hash digest
SHA256 802a985e0a1ccbf3a3f41f8c759b48e82562b149bc910ab622c85f7d4ba33f43
MD5 955fae19e4709785b106cef28c59c221
BLAKE2b-256 ead7701d4f90b23f22e595a7e1ca8a067fa68442ef499f717956464a2b36ccfb

See more details on using hashes here.

File details

Details for the file minihost-0.7.0-cp313-cp313-manylinux_2_27_x86_64.manylinux_2_28_x86_64.whl.

File metadata

File hashes

Hashes for minihost-0.7.0-cp313-cp313-manylinux_2_27_x86_64.manylinux_2_28_x86_64.whl
Algorithm Hash digest
SHA256 dcbd099429f2f77f209270d07232c1baddaaec821e8503dbe5a8910a8efdeea6
MD5 1fe21ee360153edf904ea74d69e8650b
BLAKE2b-256 c4617de78fdc968c283b36ac5ea1e656c23abe813a93c6af0d4451e06e3bce7e

See more details on using hashes here.

File details

Details for the file minihost-0.7.0-cp313-cp313-macosx_11_0_x86_64.whl.

File metadata

File hashes

Hashes for minihost-0.7.0-cp313-cp313-macosx_11_0_x86_64.whl
Algorithm Hash digest
SHA256 a2f13692c546a8238085ec87fa653810b6db00369df3d2645cde8cfa448c3a05
MD5 8fd4997351b67325a4570fe45f05d95d
BLAKE2b-256 f5fb99bcc2ae7a3da0b9b58b69341b1dac2a14ef189ea3798e5391afe0a6fecb

See more details on using hashes here.

File details

Details for the file minihost-0.7.0-cp313-cp313-macosx_11_0_arm64.whl.

File metadata

File hashes

Hashes for minihost-0.7.0-cp313-cp313-macosx_11_0_arm64.whl
Algorithm Hash digest
SHA256 2d7973bb5af8a1f100f9e3bc168f9089d08490aacbe18a7c6a7e53112f8f9daf
MD5 8596d3c3f1b4f3ec8dfc298d55031d17
BLAKE2b-256 32705504cf04dd9a2147be05e7dd4ca20e592d67e57faa5eee25016ba9afb9cf

See more details on using hashes here.

File details

Details for the file minihost-0.7.0-cp312-cp312-win_amd64.whl.

File metadata

  • Download URL: minihost-0.7.0-cp312-cp312-win_amd64.whl
  • Upload date:
  • Size: 1.3 MB
  • Tags: CPython 3.12, Windows x86-64
  • Uploaded using Trusted Publishing? No
  • Uploaded via: twine/6.2.0 CPython/3.13.2

File hashes

Hashes for minihost-0.7.0-cp312-cp312-win_amd64.whl
Algorithm Hash digest
SHA256 8d473fe09bd2d44d87b08de3b5ba47a232d69bc824388818f64617d993c3df90
MD5 7e1bee3cc4ba7c8a51ab8d98ea27bc87
BLAKE2b-256 06aa0f956e2e18ffc4d1d724ce5523538e8d692f8d78c7f9f964f30378d317cb

See more details on using hashes here.

File details

Details for the file minihost-0.7.0-cp312-cp312-manylinux_2_27_x86_64.manylinux_2_28_x86_64.whl.

File metadata

File hashes

Hashes for minihost-0.7.0-cp312-cp312-manylinux_2_27_x86_64.manylinux_2_28_x86_64.whl
Algorithm Hash digest
SHA256 116169821f5095d27dda27c06f60cbc9fbf56af12a4aff04cb949f2157f72629
MD5 9976718a4e0bab19db763c018afc910d
BLAKE2b-256 bd780884c1df021dc8ed70688ec9d40b7a4131ebffbab4ff250f8c83d54b634d

See more details on using hashes here.

File details

Details for the file minihost-0.7.0-cp312-cp312-macosx_11_0_x86_64.whl.

File metadata

File hashes

Hashes for minihost-0.7.0-cp312-cp312-macosx_11_0_x86_64.whl
Algorithm Hash digest
SHA256 674ae00f86490819a7b64ed05c91675b8fb6a1700a1d7eff329468ec3d58273f
MD5 b74b25c39ff74ac0b88fd84269d1996d
BLAKE2b-256 98ac7404b9f10bc17e758ccea59d9ad69631cdb1290cadac70557979988aa0cf

See more details on using hashes here.

File details

Details for the file minihost-0.7.0-cp312-cp312-macosx_11_0_arm64.whl.

File metadata

File hashes

Hashes for minihost-0.7.0-cp312-cp312-macosx_11_0_arm64.whl
Algorithm Hash digest
SHA256 69eb73d72d76c7edd2c19d901c6fa381f1435e8d7b9e5843523a78a1dd501ad1
MD5 4e392d996520890200a6bca3f4bd60fd
BLAKE2b-256 adfe671a11124a9f4b82fc1e7a53708b6f2655d41566ff2e2a296d39f4d6f524

See more details on using hashes here.

File details

Details for the file minihost-0.7.0-cp311-cp311-win_amd64.whl.

File metadata

  • Download URL: minihost-0.7.0-cp311-cp311-win_amd64.whl
  • Upload date:
  • Size: 1.3 MB
  • Tags: CPython 3.11, Windows x86-64
  • Uploaded using Trusted Publishing? No
  • Uploaded via: twine/6.2.0 CPython/3.13.2

File hashes

Hashes for minihost-0.7.0-cp311-cp311-win_amd64.whl
Algorithm Hash digest
SHA256 837e2e31e8132a1ca3a3878afbe537bb95ce6b0f006a1ff0daa746c84ab95bcf
MD5 585a4e0ed0d92f031ddd5fd79e987a39
BLAKE2b-256 89a5dc910d3dc6a0af1b572670d45d08a23ae756958b1fab362c1bf9dd4303d0

See more details on using hashes here.

File details

Details for the file minihost-0.7.0-cp311-cp311-manylinux_2_27_x86_64.manylinux_2_28_x86_64.whl.

File metadata

File hashes

Hashes for minihost-0.7.0-cp311-cp311-manylinux_2_27_x86_64.manylinux_2_28_x86_64.whl
Algorithm Hash digest
SHA256 dcb23acaa14eb94824ea18ba618f32ffa8f5d5fc5740027b0a7f7eeb91f5f99a
MD5 682c13302c74a984b01ccb19a18f15b8
BLAKE2b-256 6eb6e8f3769877b6ef8b36a19f47b6703448d457a6109ad574517b4dcbd8b021

See more details on using hashes here.

File details

Details for the file minihost-0.7.0-cp311-cp311-macosx_11_0_x86_64.whl.

File metadata

File hashes

Hashes for minihost-0.7.0-cp311-cp311-macosx_11_0_x86_64.whl
Algorithm Hash digest
SHA256 8b12947d46ea2db204c5304b0a3293eb998bde4b80fe0f06cc9da5b45078fc68
MD5 93394f06bd850b9d341575570e707a52
BLAKE2b-256 2fb450387ba637749acf6074f6b3964e67f6c500c9261cd65dd6c9b298ed8b14

See more details on using hashes here.

File details

Details for the file minihost-0.7.0-cp311-cp311-macosx_11_0_arm64.whl.

File metadata

File hashes

Hashes for minihost-0.7.0-cp311-cp311-macosx_11_0_arm64.whl
Algorithm Hash digest
SHA256 f94d28a9338abe1c2b9f94eaf414d09758c72cbe7789aa8940f68f17b2fc94f4
MD5 51b0136b684cb4fdedca06f397d7bfc0
BLAKE2b-256 4a1c0195bffe67ef4b072764f5b3f312923f04b0eb8a4f9154cad2469cf8f644

See more details on using hashes here.

File details

Details for the file minihost-0.7.0-cp310-cp310-win_amd64.whl.

File metadata

  • Download URL: minihost-0.7.0-cp310-cp310-win_amd64.whl
  • Upload date:
  • Size: 1.3 MB
  • Tags: CPython 3.10, Windows x86-64
  • Uploaded using Trusted Publishing? No
  • Uploaded via: twine/6.2.0 CPython/3.13.2

File hashes

Hashes for minihost-0.7.0-cp310-cp310-win_amd64.whl
Algorithm Hash digest
SHA256 663e6412bb343e373bd915a2e0e35cc2472128ecdf0d67913cec797423dc97d8
MD5 70641bc3a6775523fbe2f1d0cf2d7a8e
BLAKE2b-256 6c72a33a7fc211dbf4b0d5f0ea1914de5e610f0b800dfb74c4ea53efd3985343

See more details on using hashes here.

File details

Details for the file minihost-0.7.0-cp310-cp310-manylinux_2_27_x86_64.manylinux_2_28_x86_64.whl.

File metadata

File hashes

Hashes for minihost-0.7.0-cp310-cp310-manylinux_2_27_x86_64.manylinux_2_28_x86_64.whl
Algorithm Hash digest
SHA256 df8270c6c4f6c23d8dca0367bcf2bacfacd9b39576711135304a41c5a0930bb4
MD5 86628d5d9f2aba74f67e9ca997edd172
BLAKE2b-256 2870db5220f0c242f038d6cc031e174c95b9b6fd8e645d5a68c5431e77094488

See more details on using hashes here.

File details

Details for the file minihost-0.7.0-cp310-cp310-macosx_11_0_x86_64.whl.

File metadata

File hashes

Hashes for minihost-0.7.0-cp310-cp310-macosx_11_0_x86_64.whl
Algorithm Hash digest
SHA256 5ff5edfd65bbbab309e9cbcc427ebc61d5f52e77c095f72d9667360e341c982a
MD5 89fe9b0220d8c8ed5dda07b105579aca
BLAKE2b-256 7d6e07741480dd5b250180b6c8f8e382d49018bc9041592d7c8e11c3eef1cab2

See more details on using hashes here.

File details

Details for the file minihost-0.7.0-cp310-cp310-macosx_11_0_arm64.whl.

File metadata

File hashes

Hashes for minihost-0.7.0-cp310-cp310-macosx_11_0_arm64.whl
Algorithm Hash digest
SHA256 45ffaf85c84c9fd1fbff2649b824100101ff30f6b06b570e4b2798487bed6bf5
MD5 685fe39a09eb667eb4c0c68fa05e2669
BLAKE2b-256 028d8259ccba521ef0e93b3e07ba5aa9ba64d8faa023a55fea84764ffdbf9f12

See more details on using hashes here.

Release history Release notifications | RSS feed

0.8.0

20 files

0.7.2

20 files

This release

0.7.0 This release

20 files

0.6.0

20 files

0.5.1

20 files

0.5.0

20 files

0.4.2

20 files

0.4.1

20 files

0.3.2

20 files

0.2.1

20 files

0.2.0

20 files

0.1.7

20 files

0.1.6

20 files

0.1.5

20 files

0.1.4

21 files

0.1.3

21 files

0.1.2

21 files

0.1.1

21 files

0.1.0

21 files

Anthropic, PBC Visionary sponsor Bloomberg Visionary sponsor Hudson River Trading Visionary sponsor Meta Visionary sponsor NVIDIA Visionary sponsor Microsoft Sustainability sponsor Depot Continuous Integration AWS Cloud computing and Security Sponsor Datadog Monitoring Fastly CDN Google Download Analytics Sentry Error logging StatusPage Status page