5

I want to run many HTTP requests in parallel using python. I tried this module named aiohttp with asyncio.

import aiohttp
import asyncio

async def main():
    async with aiohttp.ClientSession() as session:
        for i in range(10):
            async with session.get('https://httpbin.org/get') as response:
                html = await response.text()
                print('done' + str(i))

loop = asyncio.get_event_loop()
loop.run_until_complete(main())

I expect it to execute all the requests in parallel, but they are executed one by one. Although, I later solved this using threading, but I would like to know what's wrong with this?

2

1 Answer 1

14

You need to make the requests in a concurrent manner. Currently, you have a single task defined by main() and so the http requests are run in a serial manner for that task.

You could also consider using asyncio.run() if you are using Python version 3.7+ that abstracts out creation of event loop:

import aiohttp
import asyncio

async def getResponse(session, i):
    async with session.get('https://httpbin.org/get') as response:
        html = await response.text()
        print('done' + str(i))

async def main():
    async with aiohttp.ClientSession() as session:
        tasks = [getResponse(session, i) for i in range(10)] # create list of tasks
        await asyncio.gather(*tasks) # execute them in concurrent manner

asyncio.run(main())
5
  • 1
    You can simplify the loop with list comprehension tasks = [asyncio.create_task(getResponse(session, i)) for i in range(10)] Mar 20, 2021 at 8:24
  • 1
    thanks for the feedback, list comprehension should definitely be preferred. Mar 20, 2021 at 8:26
  • 1
    Understood! Thank you so much! Mar 20, 2021 at 9:12
  • 1
    Unless you specifically need the Task associated with each getResponse, you can omit create_task. [getResponse(session, i) for i in range(10)]
    – dirn
    Mar 20, 2021 at 13:30
  • I have used the above code.. once all the execution completed. again it executing and showing errors Dec 15, 2022 at 10:44

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service, privacy policy and cookie policy

Not the answer you're looking for? Browse other questions tagged or ask your own question.