Files
pytheory/docs/guide/cli.rst
kennethreitz 3c1fb15cc1 Fix upside-down ASCII guitar tab orientation; release 0.57.9
Fingering.tab(), Fretboard.tab(), and the `pytheory fingering` CLI rendered
tablature inverted — low E on top, high e on the bottom — because they
followed the fretboard's low-to-high data orientation instead of the fixed
tab convention. ASCII tab has one universal rule: the highest-pitched
string goes on top.

All three now render high-e-on-top regardless of the board's high_to_low
setting, matching Part.to_tab() which was already correct. The data model
(positions, string_names, repr) is unchanged — only the rendered tab flips.
SVG chord diagrams were already correct.

Same "a render path honored only part of the convention" class as the
recent audio/notation fixes. Docs, README, and the guitar skill examples
updated to the corrected orientation.

New tests: high-e-on-top ordering, orientation-independence across
high_to_low boards, and parity between Fretboard.tab()/NamedChord.tab().

Co-Authored-By: Claude Opus 4.8 (1M context) <noreply@anthropic.com>
2026-06-29 00:52:45 -04:00

474 lines
14 KiB
ReStructuredText

Command-Line Interface
======================
Sometimes you don't want to open Python — you're mid-practice and just
need to know what's in a B7 chord, or which key has those three sharps.
The ``pytheory`` command answers theory questions, plays notes, and
exports MIDI straight from your shell prompt — no session required.
JSON and audio output
---------------------
The theory commands (``tone``, ``scale``, ``chord``, ``key``,
``progression``, ``analyze``, ``reharmonize``, ``identify``, ``detect``,
``modes``, ``circle``, ``fingering``) all take two extra flags:
- ``--json`` prints a structured result instead of the pretty table —
handy for piping into ``jq`` or another tool.
- ``--play`` plays the result as audio (the note, chord, scale, or
progression).
::
$ pytheory scale C dorian --json
{
"tonic": "C",
"mode": "dorian",
"notes": [
"C",
"D",
"Eb",
"F",
"G",
"A",
"Bb",
"C"
]
}
$ pytheory progression C major I V vi IV --play # hear the chords
Interactive REPL
----------------
For extended exploration, the REPL is a music theory scratchpad with
tab completion. See the :doc:`repl` guide for details::
$ pytheory repl
Demo
----
The fastest way to hear what PyTheory can do. Generates and plays a
random multi-part track — different every time::
$ pytheory demo
♫ Jazz Club
Bb major | 108 bpm
Bb → Gm → Cm → F
jazz | triangle lead | fm pad | plate reverb
Tone Lookup
-----------
Look up any note's frequency, MIDI number, enharmonic spelling, and
overtones::
$ pytheory tone A4
Note: A4
Frequency: 440.00 Hz (equal temperament)
MIDI: 69
Overtones: 440.0, 880.0, 1320.0, 1760.0, 2200.0, 2640.0
Compare temperaments with ``--temperament``::
$ pytheory tone C5 --temperament pythagorean
Note: C5
Frequency: 528.60 Hz (pythagorean temperament)
Equal temp: 523.25 Hz (diff: +17.6 cents)
MIDI: 72
Overtones: 523.3, 1046.5, 1569.8, 2093.0, 2616.3, 3139.5
Scale Display
-------------
Show any scale in any system::
$ pytheory scale C major
C major: C D E F G A B C
Intervals: C4 -2- D4 -2- E4 -1- F4 -2- G4 -2- A4 -2- B4 -1- C5
$ pytheory scale C dorian
$ pytheory scale Sa bhairav --system indian
Ragas
-----
Hindustani and Carnatic ragas, with their ascending and descending lines,
the signature ``pakad`` phrase, and the just-intonation *shruti* tuning a
fixed-pitch instrument can only approximate. The theory lives in
:doc:`systems` — here you just ask::
$ pytheory raga yaman
Raga Yaman (aka Kalyan)
thaat kalyan · shadav-sampurna · evening · serene, romantic
vadi G samvadi N
aroha : N. R G M D N S'
avaroha: S' N D P M G R S
pakad : N. R G, R, P M G R S
scale (Sa=C): C D E F# G A B
Set the tonic with ``--sa``, and add ``--shruti`` to see each swara's just
ratio and how far it lands from equal temperament::
$ pytheory raga yaman --shruti
...
shruti intonation (just vs 12-TET):
S 1/1 C 261.63 Hz +0.0¢
R 9/8 D 294.33 Hz +3.9¢
G 5/4 E 327.03 Hz -13.7¢
M 45/32 F# 367.91 Hz -9.8¢
P 3/2 G 392.44 Hz +2.0¢
D 5/3 A 436.04 Hz -15.6¢
N 15/8 B 490.55 Hz -11.7¢
Bare ``pytheory raga`` (or ``--list``) lists all 54 ragas; narrow it with
``--thaat``, ``--time``, or ``--tradition hindustani|carnatic``::
$ pytheory raga --tradition carnatic
18 ragas:
Abhogi Kharaharapriya (22) any pleasing, tender
Bilahari Dheerashankarabharanam (29) any joyful, festive
Charukesi Charukesi (26) any bittersweet
...
Add ``--play`` to hear the aroha and avaroha — just intonation by default,
``--equal`` for 12-TET, ``--reverb`` to set the wet mix.
Maqamat
-------
Arabic maqamat use true quarter tones — the half-flats (marked ````) that
a piano simply doesn't have. ``maqam`` shows the ajnas, the *seyir* melodic
path, and the nearest 12-TET spelling; :doc:`systems` covers the theory::
$ pytheory maqam rast
Maqam Rast
family Rast · dignified, sober, the 'mother' maqam
ajnas: Jins Rast on Do + Jins Rast on Sol
seyir: ascending from the tonic; rests on Sol and the neutral 3rd
scale: Do Re Mi↓ Fa Sol La Si↓
≈ 12-TET (tonic=C): C D E F G A Bb
``--tuning`` prints each degree's just ratio against equal temperament —
watch Rast's neutral third sit 45.5 cents below E::
$ pytheory maqam rast --tuning
...
quarter-tone intonation (just vs 12-TET):
Do 1/1 ~C 261.63 Hz +0.0¢
Re 9/8 ~D 294.33 Hz +3.9¢
Mi↓ 27/22 ~E 321.09 Hz -45.5¢
Fa 4/3 ~F 348.83 Hz -2.0¢
Sol 3/2 ~G 392.44 Hz +2.0¢
La 5/3 ~A 436.04 Hz -15.6¢
Si↓ 11/6 ~Bb 479.65 Hz +49.4¢
Bare ``pytheory maqam`` (or ``--list``) lists all ten; ``--family`` filters
them, ``--tonic`` sets the root, and ``--play`` (with ``--reverb``) plays
the maqam ascending and descending::
$ pytheory maqam --list
10 maqamat:
Ajam Ajam Do Re Mi Fa Sol La Si bright, celebratory
Bayati Bayati Do Re↓ Mib Fa Sol Lab Sib tender, intimate, the everyday maqam
Hijaz Hijaz Do Reb Mi Fa Sol Lab Sib yearning, devotional, desert-evening
...
Chord Identification
--------------------
Identify a chord from its notes::
$ pytheory chord C E G
Chord: C major
Tones: C4 E4 G4
Intervals: [4, 3]
Harmony: 0.2381
Dissonance: 2.7786
Tension: 0.00 (tritones=0)
$ pytheory chord G B D F
Chord: G dominant 7th
Key Explorer
------------
Get a complete breakdown of any key — signature, diatonic triads,
seventh chords, relative and parallel keys::
$ pytheory key G major
Key: G major
Signature: 1 sharps, 0 flats (F#)
Scale: G A B C D E F# G
Triads:
I G major
ii A minor
iii B minor
IV C major
V D major
vi E minor
viidim F# diminished
7th chords:
G major 7th
A minor 7th
B minor 7th
C major 7th
D dominant 7th
E minor 7th
F# half-diminished 7th
Relative: E minor
Parallel: G minor
Guitar Fingerings
-----------------
Get tablature for any of the 144 built-in chords (high string at the top,
standard tab orientation; ``x`` for a muted string)::
$ pytheory fingering Am
Am
e|--0--
B|--1--
G|--2--
D|--2--
A|--0--
E|--x--
Use ``--capo`` to see fingerings with a capo::
$ pytheory fingering G --capo 2
The CLI looks chords up in the built-in chart. To voice *any* parseable
symbol — and to export SVG/PNG chord boxes or scale shapes — reach for the
:class:`~pytheory.chords.Fretboard` API in :doc:`fretboard`.
Chord Progressions
------------------
Build progressions from Roman numerals::
$ pytheory progression G major I V vi IV
Key: G major
Progression: I → V → vi → IV
I G major
V D major
vi E minor
IV C major
Analyze a Progression
---------------------
Go the other way — hand it the chords and it works out the harmony. The key
is auto-detected (or pass ``--key``/``--mode``), applied dominants are
labelled, and cadences are flagged::
$ pytheory analyze C D7 G7 C
Key: C major (detected)
C I C major
D7 V7/V D dominant 7th (secondary dominant)
G7 V7 G dominant 7th
C I C major
Cadences:
D7 → G7: half
G7 → C: imperfect authentic
Use ``--key`` and ``--mode`` to analyze in a specific key::
$ pytheory analyze --key A --mode minor Am Dm E Am
Hand it a ``.mid`` (or ``.midi``) file instead of chord symbols and it
reads the harmony straight off the notes — detected key, tempo, time
signature, and a beat-by-beat chord timeline. ``--key``/``--mode`` and
``--json`` work here too::
$ pytheory analyze song.mid
File: song.mid
Key: C major (detected)
Tempo: 120 BPM Time: 4/4
4 chord change(s)
beat 0.00 I C major
beat 1.00 V G major
beat 2.00 vi A minor
beat 3.00 IV F major
Reharmonize a Chord
-------------------
Ask for substitution ideas — tritone subs, diatonic swaps, the secondary
dominant, and the negative-harmony mirror (aliased ``reharm``)::
$ pytheory reharmonize G7 --key C
Reharmonizing G dominant 7th in C major:
tritone substitution C# dominant 7th
The dominant a tritone away — same tritone, chromatic bass descent.
diatonic substitution D minor
Shares 2 notes — a smooth diatonic swap.
...
Add ``--play`` to hear the original followed by each option.
Give it **several** chords and it reharmonizes the whole progression with a
chosen ``--technique`` (``secondary_dominants``, ``tritone``, or
``diatonic``)::
$ pytheory reharmonize C Am Dm G7 C --key C
Reharmonizing in C major (secondary_dominants):
original: C → Am → Dm → G7 → C
reharmonized: C → E7 → Am → A7 → Dm → D7 → G7 → C
Key Detection
-------------
Detect the most likely key from a set of notes::
$ pytheory detect C E G A D
Detected key: C major
Scale: C D E F G A B C
Audio Playback
--------------
Play individual notes or chords (requires PortAudio)::
$ pytheory play A4 # Single note
$ pytheory play C E G # Notes as chord
$ pytheory play Am7 # Chord by name
$ pytheory play C E G --synth saw # Sawtooth wave
$ pytheory play A4 --duration 2000 # 2 seconds
$ pytheory play C E G --temperament meantone
$ pytheory play Am7 --envelope pad # With ADSR envelope
$ pytheory play C4 --envelope bell # Bell-like ring
Chord Identification (from symbol)
-----------------------------------
Parse any chord symbol and get a full analysis::
$ pytheory identify Cmaj7
Chord: C major 7th
Symbol: Cmaj7
Tones: C4 E4 G4 B4
Intervals: [4, 3, 4]
Harmony: 0.4930
Dissonance: 5.3347
Tension: score=0.15 tritones=0 minor_2nds=1 dominant=False
$ pytheory identify F#m7b5
MIDI Export
-----------
Export a chord progression to a Standard MIDI File::
$ pytheory midi C major I V vi IV -o pop.mid
Key: C major
Progression: I V vi IV
BPM: 120
Duration: 500 ms
Output: pop.mid
$ pytheory midi G major ii V I -o jazz.mid --bpm 140 --duration 800
Modes
-----
Show all 7 modes starting from a note::
$ pytheory modes C
Modes of C:
ionian C D E F G A B C
dorian C D Eb F G A Bb C
phrygian C Db Eb F G Ab Bb C
lydian C D E F# G A B C
mixolydian C D E F G A Bb C
aeolian C D Eb F G Ab Bb C
locrian C Db Eb F Gb Ab Bb C
Circle of Fifths
----------------
Display the circle of fifths and fourths from any note::
$ pytheory circle C
Circle of fifths from C:
→ C → G → D → A → E → B → F# → C# → G# → D# → A# → F
Circle of fourths from C:
→ C → F → A# → D# → G# → C# → F# → B → E → A → D → G
Common Progressions
-------------------
Show all named progressions realized in a key::
$ pytheory progressions C major
Common progressions in C major:
I-IV-V-I C → F → G → C
I-V-vi-IV C → G → Am → F
I-vi-IV-V C → Am → F → G
I-IV-vi-V C → F → Am → G
vi-IV-I-V Am → F → C → G
...
The full list runs to dozens of forms — pop turnarounds, jazz ``ii-V-I``
families, and 8-, 12-, and minor-blues structures among them.
Metronome & Tempo Trainer
-------------------------
A practice metronome that lives in your terminal. Give it a tempo and a bar
length with ``--beats``; ``--subdivide`` adds eighths (``2``), triplets
(``3``), or sixteenths (``4``), and ``--no-accent`` flattens the downbeat.
The command is aliased ``metro``::
$ pytheory metronome 90 --chords C major I V vi IV
Metronome: 90.0 BPM (4/4)
Cycling: C | G | Am | F
Press Ctrl-C to stop.
bar 1 90 BPM C
bar 2 90 BPM G
...
``--chords`` cycles a chord under the click so you can drill changes —
either literal symbols (``Am F C G``) or a key plus Roman numerals
(``C major I V vi IV``, as above).
To build speed, point ``--to`` at a target tempo and it ramps there,
nudging up ``--step`` BPM every ``--every`` beats — then holds the target
unless you pass ``--no-hold``::
$ pytheory metronome 80 --to 120
Tempo trainer: 80.0 → 120.0 BPM, +5 every 8 beats (4/4)
Press Ctrl-C to stop.
bar 1 80 BPM
Performance & Audio Tools
-------------------------
Four more commands open whole apps rather than answering a lookup.
Each has its own guide::
$ pytheory tune --instrument guitar # real-time terminal tuner
$ pytheory tune --serve # browser strobe tuner + JS pitch stream
$ pytheory studio # browser: recording → sheet music
$ pytheory transcribe hum.m4a hum.mid # recording → notes/MIDI
$ pytheory live --link # MIDI synth rig in the terminal
The tuner, studio, and transcriber are covered in :doc:`listening`;
the live rig in :doc:`live`.
The CLI is there for quick lookups when you don't want to open a Python session -- just ask your question and get back to playing.