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I am writing a simple web interface using flask and I have a form with some fields in it.

I have a specific requirement where I want to show some of the fields on page load and the remaining other field only when the form has been validated and submitted. However i am not able to do so because my form.submit() fails which i guess is because of the field which has not been displayed yet . Here is how my form class looks like

class TasksForm(FlaskForm):
    ports = SelectField('Select port', choices=[('1', 1), ('2', 2)])
    operation = SelectField('Choose an operation to do', choices=[('a', 1), ('b', 2)])
    submit = SubmitField('Submit')

So on page load i am just displaying the ports field and submit field and not the operation select list.

What I want is to display the operations field only when the form has been submitted and validated. Here is how my views.py looks like

@app.route("/tasks", methods=['GET', 'POST'])
def tasks():
    form = TasksForm()

    if not form.validate():
        print('Not validated')
    if not form.submit():
        print("Not submitted")

    if form.validate_on_submit():
        session['submitted'] = True
        return "<h1>Done</h1>"
        # return redirect(url_for("tasks"))
    return render_template("tasks.html", form=form)

Finally inside my template file i can check if session['submit'] returns True and then display the operations field.

I am not sure why the form submission fails because none of my form fields have any validation attached to it which could prevent the form from successful submission.

  • Personally I think this is a design flaw. Either separate it to two forms, or, instead, validate the form with Javascript on the client side and then dynamically allow the form entry for the additional fields and submit it as a complete form which flask will validate server side. Good practice says server side and client side validation is required anyway so this wouldn't be much extra work in production website. – Attack68 Jan 11 at 17:42
  • @Attack68 I can surely redirect to a separate form once the form has been submitted, but then I have to duplicate the fields of existing form as well, because my requirement is that I want to display one particular after the form has been submitted, rest everything needs to stay as it is. Also i am not sure how can i achieve this with javascript because the form will never validate because the third field is not displayed yet and hence not filled as well because of which flask fails to validate the form. – Rohit Jan 14 at 9:37
  • javascript can validate form elements separately and then once 2 of 3 have passed dynamically change the visibility of number 3, and then once that is validated the full form can be submitted. If you insist on doing this in Flask, which I really recommend against, then you can custom code your validation process: flask.pocoo.org/snippets/64. This means you will have to code different code logic depending upon the 'state' of your form, i.e. which pieces have been submitted, but it is far more convoluted for the user – Attack68 Jan 14 at 10:09
  • I don't have any preference to do this via flask only, I can surely try javascript and see if i am able to achieve desired result. – Rohit Jan 14 at 10:27

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