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I have a celery periodic task which has a function call inside it i need to make the code sleep for a second for every 20 emails sent how can i achieve that.

 @app.task(bind=True)
 def send_email_reminder_on_due_date(self):
      send_email_from_template(
            subject_template_path='emails/subject.txt',
            body_template_path='emails/template.html',
            template_data=template_data,
            to_email_list=email_list,
            fail_silently=False,
            content_subtype='html'
        )

i have some condition before send_email_from_template i.e fetching records from database whose due_date is today and i will be sending email for all the records which i fetch let's say i have 30 records for which i need to send an email to so i would do sleep for 1 second after the email function gets executed for 20 records.

1 Answer 1

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I would solve it like this:

  1. retrieve 20 records from database (LIMIT 20 by mysql)
  2. wait 1 seconds
import time
time.sleep(1) # Sleep for 1 second
  1. repeat the first step

With this solution, it is also a given that newer emails in the database, e.g. they can be revoked or even modified.

Is there any other way we could that without limiting it on the database level by Happy

records = mycursor.fetchall()

i = 0
for record in records:
  send_email(record)
  i = i + 1
  if i % 20 == 0:
    time.sleep(1)
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  • Is there any other way we could that without limiting it on the database level
    – Happy
    Oct 31, 2022 at 3:45

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