Better API docs for autofocus extension
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1 changed files with 249 additions and 131 deletions
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@ -1,3 +1,4 @@
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import inspect
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import logging
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import time
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from contextlib import contextmanager
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@ -14,6 +15,7 @@ from openflexure_microscope.devel import abort
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from openflexure_microscope.microscope import Microscope
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from openflexure_microscope.stage.base import BaseStage
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from openflexure_microscope.utilities import set_properties
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from labthings.utilities import get_docstring, get_summary
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### Autofocus utilities
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@ -144,6 +146,117 @@ def sharpness_edge(image: np.ndarray) -> float:
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)
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def find_microscope() -> dict:
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"""Find the microscope component or raise an exception.
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This function will fail with HTTPError extensions if it can't
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find the appropriate hardware.
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It is returned as a dictionary with one key, "microscope".
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This means it can be easily merged into an arguments dictionary.
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"""
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microscope = find_component("org.openflexure.microscope")
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if not microscope:
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abort(503, "No microscope connected. Unable to autofocus.")
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return {"microscope": microscope}
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def find_microscope_with_real_stage() -> dict:
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"""Find the microscope and ensure it has a real stage.
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This function wraps `find_microscope()` and additionally asserts
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that there is a real stage, raising a `503` code if not.
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"""
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args = find_microscope()
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if not args["microscope"].has_real_stage():
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abort(503, "No stage connected. Unable to autofocus.")
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return args
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def extension_action(args=None, extra_args_functions=None):
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"""A decorator to auto-create an Action endpoint for a method
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Use this decorator on any method of an extension (`BaseExtension` subclass)
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and it will automatically be added to the API. At present it is deliberately
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basic, and the plan is to expand the options in the future.
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Currently, you may specify `args` (which is a Marshmallow-format schema
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or dictionary, determining the datatype of the arguments, which will be
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taken from the JSON payload of the POST request initiating the action).
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It is also possible to specify a list of functions, which will be executed
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in order, and their results will be added to the arguments. This allows,
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for example, hardware components to be injected into the arguments. This
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feature is experimental and should not be relied upon.
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The parsed arguments dictionary is expanded as the function arguments,
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i.e. we call `decorated_method(self, **kwargs). This means that any
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unused arguments will cause an error, which is probably good practice...
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NB this decorator does **not** replace the function with a `View` or
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register it with the parent `Extension`. It adds the created `View` as
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a property of the function, `flask_view`. The parent `Extension` is
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responsible for collating and adding the views in its `__init__` method.
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"""
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supplied_args = args
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def decorator(func):
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class_docstring = f"""Manage actions for {func.__name__}.
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This `View` class will return a list of `Action` objects representing
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each time {func.__name__} has been run in response to a `GET` request,
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and will start a new `Action` in response to a `POST` request.
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"""
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class ActionViewWrapper(ActionView):
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__doc__ = class_docstring
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args = supplied_args
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def post(self, args):
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# Inject arguments, if functions are supplied (TODO: I don't love this...)
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if extra_args_functions:
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for f in extra_args_functions:
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args.update(f())
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# Run the action
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return func(**args)
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def get(self, *args, **kwargs):
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# Explicitly wrap the `get` method to allow us to add a docstring
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return super().get(*args, **kwargs)
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# Create a nice docstring. NB because the source function and this docstring
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# aren't guaranteed to have the same leading whitespace, we just make sure
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# both docstrings are stripped of leading indent, using `inspect.cleandoc()`
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ActionViewWrapper.post.description = (
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get_docstring(func, remove_newlines=False) +
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"\n\n" +
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inspect.cleandoc(
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"""
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This `POST` request starts an Action, i.e. the hardware will do something
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that may continue after the HTTP request has been responded to. The
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response will always be an Action object, that details the current
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status of the action and provides an interface to poll for completion.
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If the action completes within a specified timeout, we will return
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an HTTP status code of `200` and the return value will include any
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output from the action. If it does not complete, we will return a
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`201` response code, and the action's endpoint may be polled to follow
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its progress.
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"""
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)
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)
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ActionViewWrapper.post.summary = get_summary(func)
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ActionViewWrapper.post.__doc__ = ActionViewWrapper.post.description
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ActionViewWrapper.__name__ = func.__name__
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ActionViewWrapper.get.summary = f"List running and completed `{func.__name__}` actions."
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func.flask_view = ActionViewWrapper
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return func
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return decorator
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### Autofocus extension
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@ -157,21 +270,30 @@ class AutofocusExtension(BaseExtension):
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self.add_view(
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MeasureSharpnessAPI, "/measure_sharpness", endpoint="measure_sharpness"
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)
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self.add_view(AutofocusAPI, "/autofocus", endpoint="autofocus")
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self.add_view(FastAutofocusAPI, "/fast_autofocus", endpoint="fast_autofocus")
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self.add_view(
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UpDownUpAutofocusAPI, "/updownup_autofocus", endpoint="updownup_autofocus"
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)
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self.add_decorated_method_views()
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self.add_view(
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MoveAndMeasureAPI, "/move_and_measure", endpoint="move_and_measure"
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)
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def add_decorated_method_views(self):
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"""Add views from any methods that have been decorated
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Using the decorators `@extension_action()` et al will add a
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property to the decorated method, `method_view`. If this is
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present, this function will add the views to the extension.
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"""
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for k in dir(self):
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obj = getattr(self, k)
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if hasattr(obj, "flask_view"):
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name = obj.__name__
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self.add_view(obj.flask_view, f"/{name}", name)
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def measure_sharpness(
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self, microscope: Microscope, metric_fn: Callable = sharpness_sum_lap2
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) -> float:
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"""Measure the sharpness of the camera's current view."""
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"""Measure the sharpness from the MJPEG stream
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Take a JPEG snapshot from the camera (extracted from the live preview stream)
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and return its size. This is the sharpness metric used by the fast autofocus
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method.
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"""
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if hasattr(microscope.camera, "array") and callable(
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getattr(microscope.camera, "array")
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):
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@ -179,14 +301,19 @@ class AutofocusExtension(BaseExtension):
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else:
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raise RuntimeError(f"Object {microscope.camera} has no method `array`")
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@extension_action(
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args = {"dz": fields.List(fields.Int())},
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extra_args_functions = [find_microscope_with_real_stage],
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)
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def autofocus(
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self,
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microscope: Microscope,
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dz: List[int],
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dz: Optional[List[int]] = None,
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settle: float = 0.5,
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metric_fn: Callable = sharpness_sum_lap2,
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) -> Tuple[List[int], List[float]]:
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"""Perform a simple autofocus routine.
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The stage is moved to z positions (relative to current position) in dz,
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and at each position an image is captured and the sharpness function
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evaulated. We then move back to the position where the sharpness was
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@ -195,6 +322,8 @@ class AutofocusExtension(BaseExtension):
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"""
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camera: BaseCamera = microscope.camera
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stage: BaseStage = microscope.stage
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if not dz:
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dz = np.linspace(-300, 300, 7)
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with set_properties(stage, backlash=256), stage.lock, camera.lock:
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sharpnesses: List[float] = []
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@ -221,20 +350,96 @@ class AutofocusExtension(BaseExtension):
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with monitor_sharpness(microscope) as m:
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m.focus_rel(dz)
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return m.sharpest_z_on_move(0)
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@extension_action(
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args={"dz": fields.Int(required=True)},
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extra_args_functions=[find_microscope_with_real_stage],
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)
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def move_and_measure(
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self, microscope: Microscope, dz: int
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) -> Dict[str, np.ndarray]:
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"""Make a relative Z move and return the sharpness data"""
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"""Make a relative move in Z and measure dynamic sharpness
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This accesses the underlying method used by the fast autofocus routines, to
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move the stage while monitoring the sharpness, as reported by the size of
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each JPEG frame in the preview stream. It returns a dictionary with
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stage position vs time and image size (i.e. sharpness) vs time.
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"""
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with monitor_sharpness(microscope) as m:
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m.focus_rel(dz)
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return m.data_dict()
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@extension_action(
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args={"dz": fields.Int(missing=2000, example=2000)},
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extra_args_functions=[find_microscope_with_real_stage],
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)
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def fast_autofocus(
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self, microscope: Microscope, dz: int = 2000
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) -> Dict[str, np.ndarray]:
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"""Perform a down-up-down-up autofocus"""
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with microscope.camera.lock, microscope.stage.lock:
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"""Perform a fast down-up-down-up autofocus
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This "fast" autofocus method moves the stage continuously in Z, while
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following the sharpness using the MJPEG stream. This version is the
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simplest "fast" autofocus method, and performs the following sequence
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of moves:
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1. Move to `-dz/2`, i.e. the bottom of the range
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2. Move up by `dz`, i.e. to the top of the range, while recording the
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sharpness of the image as a function of time. Record the estimated
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position of the stage when the sharpness was maximised, `fz`.
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3. Move back to the bottom (by `-dz`)
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4. Move up to the position where it was sharpest.
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## Backlash correction
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This routine should cancel out backlash: the stage is moving upwards as
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we record the sharpnes vs z data, and it is also moving upwards when
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we make the final move to the sharpest point. Mechanical backlash should
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therefore be the same in both cases.
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This does not account for lag between the sharpness measurements and the
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stage's motion; that has been tested for and seems not to be a big issue
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most of the time, but may need to be accounted for in the future, if
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hardware or software changes increase the latency.
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## Sharpness metric
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This method uses the MJPEG preview stream to estimate the sharpness of
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the image. MJPEG streams consist of a series of independent JPEG images,
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so each frame can be looked at in isolation (though see later for an
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important caveat). JPEG images are compressed lossily, by taking the
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discrete cosine transform (DCT) of each 8x8 block in the image. A very
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rough precis of how this works is that after the DCT, cosine components
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that are deemed unimportant (i.e. smaller than a threshold) are discarded.
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The effect is that images with lots of high-frequency information have a
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larger file size.
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We look only at the size of each JPEG frame in the stream, so we get a
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remarkably robust estimate of image sharpness without even opening the
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images! That's what lets us analyse 30 images/second even on the very
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limited processing power available to the Raspberry Pi 3.
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> *Warning*
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> We assume that JPEG frames are independent. This is only true if the
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> MJPEG stream is encoded at *constant quality* without any additional
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> bit rate control. By default, many streams will reduce the quality
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> factor if they exceed a target bit rate, which badly affects this
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> method. We turn off bit rate limiting for the Raspberry Pi camera,
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> which fixes the problem, at the expense of sometimes failing if
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> particularly sharp images appear in the stream, as there is a fairly
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> small maximum size for each JPEG frame beyond which empty images are
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> returned.
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## Estimation of sharpness vs z
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What we record during an autofocus is two time series, from two parallel
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threads. One thread monitors the camera, and records the size of each
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JPEG frame as a function of time. NB this is time from `time.time()`
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in Python, so will not be microsecond-accurate. The other thread is
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responsible for moving the stage, and records its current Z position
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before and after each move. Interpolating between these `(t, z)` points
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gives us a `z` value for each JPEG size, and so we can estimate the
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JPEG size as a function of `z` and hence determine the `z` value at
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which sharpness is maximised.
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"""
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with microscope.lock(timeout=1), microscope.camera.lock, microscope.stage.lock:
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with monitor_sharpness(microscope) as m:
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# Move to (-dz / 2)
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m.focus_rel(-dz / 2)
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@ -253,15 +458,28 @@ class AutofocusExtension(BaseExtension):
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# Return all focus data
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return m.data_dict()
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@extension_action(
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args = {
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"dz": fields.Int(missing=2000, example=2000),
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"backlash": fields.Int(missing=25, minimum=0),
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},
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extra_args_functions=[find_microscope_with_real_stage],
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)
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def fast_up_down_up_autofocus(
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self,
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microscope: Microscope,
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dz: int = 2000,
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target_z: int = 0,
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initial_move_up: bool = True,
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mini_backlash: int = 25,
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backlash: Optional[int] = None,
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mini_backlash: Optional[int] = None,
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) -> Dict[str, np.ndarray]:
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"""Autofocus by measuring on the way down, and moving back up with feedback.
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"""Perform a fast up-down-up autofocus, with feedback
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Autofocus by measuring on the way down, and moving back up with feedback.
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This is a "fast" autofocus method, i.e. it moves the stage continuously
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while monitoring the sharpness using the MJPEG stream. See `fast_autofocus`
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for more details.
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This autofocus method is very efficient, as it only passes the peak once.
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The sequence of moves it performs is:
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@ -277,7 +495,10 @@ class AutofocusExtension(BaseExtension):
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target position.
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Moving back to the target position in two steps allows us to correct for
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backlash, by using the sharpness-vs-z curve as a rough encoder for Z.
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backlash, by using the sharpness-vs-z curve as a rough encoder for Z. The
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main source of error is that the curves on the way up and the way down are
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not always identical, largely due to small lateral shifts as the Z axis is
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moved.
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Parameters:
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dz: number of steps over which to scan (optional, default 2000)
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@ -290,13 +511,18 @@ class AutofocusExtension(BaseExtension):
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from the starting position. Mostly useful if you're able to combine
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the initial move with something else, e.g. moving to the next scan point.
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mini_backlash: (optional, default 25) is a small extra move made in step
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backlash: (optional, default 25) is a small extra move made in step
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3 to help counteract backlash. It should be small enough that you
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would always expect there to be greater backlash than this. Too small
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might slightly hurt accuracy, but is unlikely to be a big issue. Too big
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may cause you to overshoot, which is a problem.
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mini_backlash: (optional, default 25) is an alias for `backlash` and will be
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removed in due course.
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"""
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with microscope.camera.lock, microscope.stage.lock:
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if not mini_backlash: # I renamed the argument,
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mini_backlash = backlash or 25
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with microscope.lock(timeout=1), microscope.camera.lock, microscope.stage.lock:
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with monitor_sharpness(microscope) as m:
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# Ensure the MJPEG stream has started
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microscope.camera.start_stream()
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@ -347,116 +573,8 @@ class AutofocusExtension(BaseExtension):
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class MeasureSharpnessAPI(View):
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__doc__ = AutofocusExtension.measure_sharpness.__doc__
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def post(self):
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microscope = find_component("org.openflexure.microscope")
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microscope = find_microscope()["microscope"]
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if not microscope:
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abort(503, "No microscope connected. Unable to measure sharpness.")
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return {"sharpness": self.extension.measure_sharpness(microscope)}
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class MoveAndMeasureAPI(ActionView):
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"""
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Move the stage and measure dynamic sharpness
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"""
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args = {"dz": fields.Int(required=True)}
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def post(self, args):
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microscope = find_component("org.openflexure.microscope")
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if not microscope:
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abort(503, "No microscope connected. Unable to autofocus.")
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if microscope.has_real_stage():
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# Acquire microscope lock with 1s timeout
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with microscope.camera.lock, microscope.stage.lock:
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return self.extension.move_and_measure(microscope, dz=args.get("dz"))
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else:
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abort(503, "No stage connected. Unable to autofocus.")
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class AutofocusAPI(ActionView):
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"""
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Run a standard autofocus
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"""
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args = {"dz": fields.List(fields.Int())}
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def post(self, args):
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microscope = find_component("org.openflexure.microscope")
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if not microscope:
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abort(503, "No microscope connected. Unable to autofocus.")
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# Figure out the range of z values to use
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dz = np.array(args.get("dz", np.linspace(-300, 300, 7)))
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if microscope.has_real_stage():
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logging.debug("Running autofocus...")
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# return a handle on the autofocus task
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return self.extension.autofocus(microscope, dz)
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else:
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abort(503, "No stage connected. Unable to autofocus.")
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class FastAutofocusAPI(ActionView):
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"""
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Run a fast autofocus
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"""
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args = {"dz": fields.Int(missing=2000, example=2000)}
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def post(self, args):
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microscope = find_component("org.openflexure.microscope")
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if not microscope:
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abort(503, "No microscope connected. Unable to autofocus.")
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if microscope.has_real_stage():
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logging.debug("Running autofocus...")
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# Acquire microscope lock with 1s timeout
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with microscope.lock(timeout=1):
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# Run fast_autofocus
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return self.extension.fast_autofocus(microscope, dz=args.get("dz"))
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|
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else:
|
||||
abort(503, "No stage connected. Unable to autofocus.")
|
||||
|
||||
|
||||
class UpDownUpAutofocusAPI(ActionView):
|
||||
"""
|
||||
Run a fast up-down-up autofocus
|
||||
"""
|
||||
|
||||
args = {
|
||||
"dz": fields.Int(missing=2000, example=2000),
|
||||
"backlash": fields.Int(missing=25, minimum=0),
|
||||
}
|
||||
|
||||
def post(self, args):
|
||||
microscope = find_component("org.openflexure.microscope")
|
||||
|
||||
if not microscope:
|
||||
abort(503, "No microscope connected. Unable to autofocus.")
|
||||
|
||||
# Figure out the parameters to use
|
||||
dz = args.get("dz")
|
||||
backlash = args.get("backlash")
|
||||
|
||||
if microscope.has_real_stage():
|
||||
logging.debug("Running autofocus...")
|
||||
|
||||
# Acquire microscope lock with 1s timeout
|
||||
with microscope.lock(timeout=1):
|
||||
# Run fast_up_down_up_autofocus
|
||||
return self.extension.fast_up_down_up_autofocus(
|
||||
microscope, dz=dz, mini_backlash=backlash
|
||||
)
|
||||
|
||||
else:
|
||||
abort(503, "No stage connected. Unable to autofocus.")
|
||||
return {"sharpness": self.extension.measure_sharpness(microscope)}
|
||||
Loading…
Add table
Add a link
Reference in a new issue