Menlo Repetition Rate

From: Menlo Systems

Class: herosdevices.hardware.menlo.repetition_rate.RepetitionRate

Driver Quality Index: alpha

Additional Information Check before use

Menlo OFC Setup

This driver is split into one core device and several modules attached to it.

OFC opens the single QWebChannel websocket connection to the comb and exposes its raw control/status tree via get_node/set_node/explore.

Each functional-layer module (DDS, LaserLock, DualLaserLock, FXE, RepetitionRate, CEO, Oscillator) is a separate HERO. It takes the already-running OFC HERO as a constructor argument via BOSS’s "ofc": "$device_menlo_ofc" reference, so all modules share the one physical connection instead of each opening their own.

See examples/menlo/ofc.json for a complete BOSS config wiring one comb with all its modules.

Some CW channels lock two wavelengths through one shared lock loop, with two separate frequency-distribution blocks instead of one. Deploying plain LaserLock against one of these fails, since it hardcodes a single frequency-distribution node name that these channels don’t have. Use DualLaserLock instead, passing both wavelengths’ node names explicitly; see examples/menlo/ofc.json for an example.

FXE wraps the comb’s 16-channel frequency counter. Unlike the other modules, it has no default observables, since which channel carries which signal is deployment-specific. Pass observables for the channels relevant to your comb, e.g. a beat on channel 3:

"arguments": {
  "ofc": "$device_ofc",
  "observables": {
    "cw_beat": {"path": "counterFrequencies.channel03", "unit": "Hz"}
  }
}

Node paths (used in get_node/set_node/observables) are firmware-dependent and not documented by Menlo. Use format_tree() to find them interactively:

>>> print(ofc.format_tree("functionalLayer.rrSettings", depth=2))
functionalLayer.rrSettings
|-- dds
|   |-- ddsFrequency = 28286800
|   |-- outputOn = True
|   `-- outputPower = 0.64
|-- mainControls
|   |-- fastOutput ...
|   |-- lock = True
|   `-- slowOutput ...
`-- repetitionRate
    |-- rrCounterRepRate = 250105340.0
    `-- rrTargetBeatRF = 250105340

Nodes shown as ... are unexpanded branches; raise depth or call format_tree again rooted at that path to descend further. explore() returns the same tree as a plain dict instead of a rendered string, if you want to process it programmatically.

For anything specific to your comb (e.g. a customer-specific fiber-noise-cancellation module), poll or control it directly instead of adding a new class: every module accepts an observables argument, merged on top of its DEFAULT_OBSERVABLES, and OFC.get_node/OFC.set_node give full read/write access to any node regardless.

"arguments": {
  "host": "IP_OR_HOSTNAME",
  "observables": {
    "fnc578_locked": {"path": "functionalLayer.fnc578Settings.mainControls.lock", "unit": ""},
    "fnc1157_locked": {"path": "functionalLayer.fnc1157Settings.mainControls.lock", "unit": ""}
  }
}

Important

The OFC device’s _ensure_connected method must be reachable from the other modules over the network. HEROS excludes underscore-prefixed methods from a RemoteHERO proxy unless marked force_remote, so the OFC row in your BOSS config needs:

"extra_decorators": [["_ensure_connected", "heros.inspect.force_remote"]]

See examples/menlo/ofc.json for this in context.

Warning

The PyPI package named pywebchannel is an unrelated project; installing it will not work. Install it from source instead:

pip install "pywebchannel @ git+https://github.com/MenloSystems/pywebchannel"

pywebchannel is not declared as a project dependency, so this install step must be run manually wherever the Menlo driver is used: locally, in CI, and in any Docker image.

In a Docker Container deployment via BOSS, use the BOSS_PIP_PKGS environment variable (see the BOSS documentation) instead of extending the image:

docker-compose.yml
 services:
   device_ofc:
     image: registry.gitlab.com/atomiq-project/herosdevices:latest
     restart: always
     network_mode: host
     volumes:
       - ./ofc.json:/ofc.json:ro
     environment:
       - BOSS_PIP_PKGS=pywebchannel@git+https://github.com/MenloSystems/pywebchannel
     command: python -m boss.starter -u file:///ofc.json --log info

Driver for the repetition-rate stabilization loop of a Menlo Systems frequency comb.

Wraps the OFC’s functionalLayer.rrSettings sub-tree, a fixed, singleton module (there is only one repetition-rate loop per OFC, so unlike DDS/ LaserLock there is no funclayer_identifier to select).

Combines DDS (the loop’s underlying DDS, confirmed identical in shape to a laser-lock module’s) with BeatLoop (the shared lock-loop shape). This means RepetitionRate implements atomiq’s RFSource interface via the DDS: _set_frequency tunes the DDS directly, not the loop’s beat-frequency setpoint (see beat_frequency_setpoint for that).

Also exposes select_monitor (the same node shape seen on CW channels and CEO, so treated as a general default here). One observed comb additionally has amp1542 (laser-diode current control, see amp_node), frequencyDistributionOpticalBeat/frequencyDistributionRfBeat, and an operationMode.lockMode single/dual-lock switch - none of those are modeled here, since they weren’t seen anywhere else and it’s unconfirmed whether they’re a fixed feature of every Menlo repetition-rate loop or specific to that comb’s configuration. Poll/control them via observables or ofc.get_node/ set_node directly if your comb has them.

Bold arguments are mandatory. For more information on the listed arguments refer to the class documentation: herosdevices.hardware.menlo.repetition_rate.RepetitionRate If parameters appear in this list but not in the class definition, please recursively check the linked base classes for the definition of the parameter.

Argument

Type

Default Value

Description

ofc

<class ‘herosdevices.hardware.menlo.ofc.OFC’>

The OFC HERO this loop belongs to.

amp_node

str | None

None

Relative node name of this loop’s laser-diode current-control block (amp*), if it has one. None (the default) leaves current_control unset.

observables

dict[str, dict[str, str]] | None

None

Additional observables to poll, merged on top of DEFAULT_OBSERVABLES, see FunctionalLayerModule.

The following JSON strings can be used to start a HERO device representation of RepetitionRate using BOSS.

{
    "_id": "device_menlo_ofc_rep_rate",
    "classname": "herosdevices.hardware.menlo.RepetitionRate",
    "arguments": {
        "ofc": "$device_menlo_ofc"
    },
    "datasource": {
        "async": false,
        "interval": 15
    }
}

Note

This example contains a variable that references another HERO with $.

from examples/menlo/ofc.json

{
    "_id": "my_RepetitionRate",
    "classname": "herosdevices.hardware.menlo.repetition_rate.RepetitionRate",
    "arguments": {
        "ofc": "<class 'herosdevices.hardware.menlo.ofc.OFC'>",
        "amp_node": null,
        "observables": null
    }
}

generated from signature

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