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I have a jinja_filters.py file with a few dozen custom filters I've written. Now I have multiple Flask apps that need to use these filters. (I'm not sure if my problem is Flask-specific or not.)

One hacky way to accomplish what I want is to do:

app = Flask(__name__)

import jinja_filters

@app.template_filter('filter_name1')
def filter_name1(arg):
    return jinja_filters.filter_name1(arg)

@app.template_filter('filter_name2')
def filter_name2(arg):
    return jinja_filters.filter_name2(arg)

...

What's the "right" way to do this?

EDIT: Ideally, I wouldn't have to list each filter name. So when I add a new filter to jinja_filters.py I don't have to update any other code -- all my apps would be able to use it right away.

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2 Answers 2

up vote 13 down vote accepted

Where ever you're setting up your app object (app.py, perhaps), you only need to import your custom filters and then modify the Jinja environment attribute.

import jinja_filters

app = Flask(__name__)
app.jinja_env.filters['filter_name1'] = jinja_filters.filter_name1
app.jinja_env.filters['filter_name2'] = jinja_filters.filter_name2

and so on.

Another possibility is to use the inspect module to find all the methods in jinja_filters like so:

from inspect import getmembers, isfunction
import jinja_filters

app = Flask(__name__)

my_filters = {name: function 
                for name, function in getmembers(jinja_filters)
                if isfunction(function)}

app.jinja_env.filters.update(my_filters)

That code is untested, but the idea is to build a dictionary of function names and functions that exist in your jinja_filters files and then update the Jinja environment's filters dictionary with your filters.

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That's definitely better than what I have. But is there a way that I don't have to explicitly list each filter name? –  Dustin Boswell Sep 5 '12 at 21:02
    
I updated my answer with another solution that could dynamically add the filters using the inspect module. –  aezell Sep 5 '12 at 21:22
1  
Well, it gets the job done alright :) But I still can't believe the authors of Jinja2/Flask didn't have a more succinct way to do this. (I'll checkmark your answer in a couple days if no one else chimes in.) –  Dustin Boswell Sep 6 '12 at 4:30
1  
I was hoping for something like a @global_register_filter decorator that I could use inside jinja_filters.py. That way, all I'd have to do in my app is just "import jinja_filters" and that's it. –  Dustin Boswell Sep 6 '12 at 19:13
1  
That's an interesting idea. Sort of like how nose finds tests, flask might look for filters in files named a specific way and find methods in those files that are decorated as you suggest. That would be cool. It might be one of those things where it's a bit too much magic and not explicit enough. –  aezell Sep 6 '12 at 20:10

There is a recommended way of doing this using Flask blueprints. One of it's use cases is this functionality specifically:

  • Provide template filters, static files, templates, and other utilities through blueprints. A blueprint does not have to implement applications or view functions.

You just need to create a flask.Blueprint object and use it to register your filters in a similar way as you would with flask.Flask app object, using the Blueprint.app_template_filter decorator or Blueprint.add_app_template_filter method.

# filters.py

import jinja2
import flask

blueprint = flask.Blueprint('filters', __name__)

# using the decorator
@jinja2.contextfilter
@blueprint.app_template_filter()
def filter1(context, value):
    return 1

# using the method
@jinja2.contextfilter
def filter2(context, value):
    return 2

blueprint.add_app_template_filter(filter2)

Then you just need to register the blueprint on your app object:

# app.py

import flask
import filters

app = flask.Flask(__name__)
app.register_blueprint(filters.blueprint)

And voilà, the filters are registered.

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