143

I tried to run FastAPI using uvicorn webserver but it throws an error.

I run this command,

uvicorn api:app --reload --host 0.0.0.0

but there is an error in the terminal.

Uvicorn running on http://0.0.0.0:8000 (Press CTRL+C to quit)
Started reloader process [23445]
Error loading ASGI app. Could not import module "api".
Stopping reloader process [23445]
3

14 Answers 14

268

TL;DR

Add the directory name in front of your filename

uvicorn src.main:app 

or cd into that directory

cd src
uvicorn main:app 

Long Answer

It happens because you are not in the same folder with your FastAPI app instance more specifically:

Let's say i have an app-tree like this;

my_fastapi_app/
├── app.yaml
├── docker-compose.yml
├── src
│   └── main.py
└── tests
    ├── test_xx.py
    └── test_yy.py

$ pwd         # Present Working Directory
/home/yagiz/Desktop/my_fastapi_app

I'm not inside the same folder with my app instance, so if I try to run my app with uvicorn I'll get an error like yours

$ uvicorn main:app --reload
INFO:     Uvicorn running on http://127.0.0.1:8000 (Press CTRL+C to quit)
INFO:     Started reloader process [40645] using statreload
ERROR:    Error loading ASGI app. Could not import module "main".

The answer is so simple, add the folder name in front of your filename

uvicorn src.main:app --reload

or you can change your working directory

cd src 

Now i'm inside of the folder with my app instance

src
└── main.py

Run your uvicorn again

$ uvicorn main:app --reload
INFO:     Uvicorn running on http://127.0.0.1:8000 (Press CTRL+C to quit)
INFO:     Started reloader process [40726] using statreload
INFO:     Started server process [40728]
INFO:     Waiting for application startup.
INFO:     Application startup complete.
7
  • 3
    Well, I'm at the same folder as my main.py file but it doesn't want to run
    – Carlos3dx
    Aug 25, 2020 at 12:39
  • 2
    Hi @Carlos3dx what is FastAPI instance's name is it called app? for example if you declare like other_app = FastAPI() you need to run as main:other_app , if it doesn't works either, i can help you from FastAPI's gitter Aug 25, 2020 at 13:10
  • 6
    There was another file in the application importing main, the error message was related to that import, not the main I passed to uvicorn, but cause there was no stacktrace it looked like uvicorn cannot foun main module. Rearranged the code and now works perfect
    – Carlos3dx
    Aug 26, 2020 at 8:01
  • 2
    another option, uvicorn has a path parameter: --app-dir src. running uvicorn --help, shows all options
    – AJ AJ
    Mar 15, 2022 at 7:25
  • 4
    I encountered this issue because I mistakenly added .py in the command like this uvicorn main.py:app. It should be uvicorn main:app. Apr 25, 2022 at 17:36
16

One reason this might be happening is that you are using:

uvicorn src/main:app --reload    

instead of the correct syntax:

uvicorn src.main:app --reload 

Notice the . instead of the /
Currently auto-completion in the terminal suggests the wrong format.


That's assuming that:

(1) your structure is something like this:

project_folder/
├── some_folder
├── src
│   └── main.py
└── tests
    ├── test_xx.py
    └── test_yy.py

(2) your FastAPI() object is indeed assigned to an object named app in main.py:

app = FastAPI()

(3) you are running the uvicorn command from the project_folder, e.g.:

(venv) <username>@<pcname>:~/PycharmProjects/project_folder$ uvicorn src.main:app --reload
10

I had the same problem and solved it adding package name before main, in your case trying:

uvicorn src.main:app --reload

may solve the problem

4

This worked for me look at the docs for fastAPI. I am very thankful I ran accross that as the Python script needs to be named main.py not app.py

The command uvicorn main:app refers to:

  1. main: the file main.py (the Python "module").
  2. app: the object created inside of main.py with the line app = FastAPI()
  3. --reload: make the server restart after code changes. Only use for development.
1
  • 1
    you can name it as you want as long as you reference it correctly.
    – The Fool
    Jan 9, 2022 at 12:57
4

Another reason for this error: there is a circular reference between files.

Example:

  • main.py:

    from tools import validator
    
    # ...
    
    class GlobalException(Exception):
        # ...
    
  • /tools/validator.py:

    from main import GlobalException
    
3

I also encountered the same issue, being a total beginner to FastAPI, the solution given by Yagiz Degirmenci helped to come up with a simple idea for beginners like me, i.e

cd directory of code
uvicorn fast-api:main --reload 

PS. fast-api is the name of my file (i.e fast-api.py)

2

It seems it is important that you name your file main.py otherwise it won't work.

Edit: Actually I was running Jupyter Notebook on port 8888 so that port was already occupied. If you have to run Jupyter notebook, run it after running the API server, the notebook will automatically run on 8889. Alternatively, you can run the API server on a different port.

2
  • Step-1 make sure your main file is located in the same directory of your terminal/command prompt, use ls command
(virtual-env) shayon@shayon-X556UQK:~/Documents/python-fast-api$ ls
main.py  __pycache__  README.md  requirements.txt  virtual-env
  • Step-2 check the directory of your terminal using pwd command
(virtual-env) shayon@shayon-X556UQK:~/Documents/python-fast-api$ pwd
/home/shayon/Documents/python-fast-api
  • Step-3 check the name of your object - here app is the object of FastAPI so we need to use the command uvicorn main:app --reload, if you keep the object name app1 you need to run uvicorn main:app1 --reload
(virtual-env) shayon@shayon-X556UQK:~/Documents/python-fast-api$ cat main.py

main.py

from fastapi import FastAPI
app = FastAPI()


@app.get("/")
def index():
    return {"Hello": "World"}
  • Step-4 In my case, I made a mistake making command of uvicorn main.py:app --reload and this was the reason for my error. The command should be uvicorn main:app --reload (without dot py extension)
1

Hit the Save button in VS Code etc because sometimes it will throw this error if you have not saved the file. Happened to me.

1

I fixed this by using the following in my main:

import uvicorn

app = FastAPI()

@app.get("/")
def index():
    return {"index": "root"}

if __name__ == '__main__':

    uvicorn.run(f"{Path(__file__).stem}:app", host="127.0.0.1", port=8888, reload=True)

and then from the terminal, I typed uvicorn main:app --reload as my main.py is in my root folder.

0

Use this folder structure and configuration where main is in parent directory enter image description here

launch.json

{
    // Use IntelliSense to learn about possible attributes.
    // Hover to view descriptions of existing attributes.
    // For more information, visit: https://go.microsoft.com/fwlink/?linkid=830387
    "version": "0.2.0",
    "configurations": [
        {
            "name": "Python: FastAPI",
            "type": "python",
            "request": "launch",
            "module": "uvicorn",
            "args": [
                "main:app"
            ],
            "jinja": true
        }
    ]
}

main.py

from fastapi import FastAPI
app = FastAPI(
    title="test",
    description="test",
    version="0.0.1",
)
if __name__ == "__main__":
import uvicorn

uvicorn.run(
    "main:app",
    host="0.0.0.0",
    reload=True,
    port=3001,
)
0

Also another reason for this error:

There's already a file named exactly like your running folder, then it will make a conflict to the system.

Example you have a file inside a folder named test_app/main.py, then you should run uvicorn test_app.main:app --reload to run the app.

But, if you have a file named test_app.py (which is the same name as the folder above), it will throw the error when you run the app.

enter image description here

So the solution is to rename the folder or rename the file so they won't be conflict to each other.

0

If you are using Pycharm , the reason could be the source directory not being set correctly. For example, I was trying to configure Python remote debugger using docker-compose and my folder structure was like this:

my_app_name
├── docker-compose.yml
├── src
│   └── main.py
└── tests
    ├── test_file1.py
    └── test_file2.py

I had the src folder inside the root folder, which contained the main.py file. In PyCharm project settings, by default your source folder is set to root.But if you have a nested structure like the case above, you have to go to Preferences->Project->Project Structure->Sources and add your src folder under Source Folders.

0

don't give the same name for your python file like uvicorn.py,Folder same name, package name

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