How to parse mjpeg http stream from ip camera?

不羁岁月 提交于 2019-11-26 06:59:35

问题


Given below is the code written for getting live stream from an IP Camera.

from cv2 import *
from cv2 import cv
import urllib
import numpy as np
k=0
capture=cv.CaptureFromFile(\"http://IPADDRESS of the camera/axis-cgi/mjpg/video.cgi\")
namedWindow(\"Display\",1)

while True:
    frame=cv.QueryFrame(capture)
    if frame is None:
        print \'Cam not found\'
        break
    else:
        cv.ShowImage(\"Display\", frame)
    if k==0x1b:
        print \'Esc. Exiting\'
        break

On running the code the output that I am getting is:

Cam not found

Where am I going wrong? Also, why is frame None here? Is there some problem with the conversion?


回答1:


import cv2
import urllib 
import numpy as np

stream = urllib.urlopen('http://localhost:8080/frame.mjpg')
bytes = ''
while True:
    bytes += stream.read(1024)
    a = bytes.find('\xff\xd8')
    b = bytes.find('\xff\xd9')
    if a != -1 and b != -1:
        jpg = bytes[a:b+2]
        bytes = bytes[b+2:]
        i = cv2.imdecode(np.fromstring(jpg, dtype=np.uint8), cv2.CV_LOAD_IMAGE_COLOR)
        cv2.imshow('i', i)
        if cv2.waitKey(1) == 27:
            exit(0)   

edit (explanation)

I just saw that you mention that you have c++ code that is working, if that is the case your camera may work in python as well. The code above manually parses the mjpeg stream without relying on opencv, since in some of my projects the url will not be opened by opencv no matter what I did(c++,python).

Mjpeg over http is multipart/x-mixed-replace with boundary frame info and jpeg data is just sent in binary. So you don't really need to care about http protocol headers. All jpeg frames start with marker 0xff 0xd8 and end with 0xff 0xd9. So the code above extracts such frames from the http stream and decodes them one by one. like below.

...(http)
0xff 0xd8      --|
[jpeg data]      |--this part is extracted and decoded
0xff 0xd9      --|
...(http)
0xff 0xd8      --|
[jpeg data]      |--this part is extracted and decoded
0xff 0xd9      --|
...(http)

edit 2 (reading from mjpg file)

Regarding your question of saving the file, yes the file can be directly saved and reopened using the same method with very small modification. For example you would do curl http://IPCAM > output.mjpg and then change the line stream=urllib.urlopen('http://localhost:8080/frame.mjpg')so that the code becomes this

import cv2
import urllib 
import numpy as np

stream = open('output.mjpg', 'rb')
bytes = ''
while True:
    bytes += stream.read(1024)
    a = bytes.find('\xff\xd8')
    b = bytes.find('\xff\xd9')
    if a != -1 and b != -1:
        jpg = bytes[a:b+2]
        bytes = bytes[b+2:]
        i = cv2.imdecode(np.fromstring(jpg, dtype=np.uint8), cv2.CV_LOAD_IMAGE_COLOR)
        cv2.imshow('i', i)
        if cv2.waitKey(1) == 27:
            exit(0)   

Of course you are saving a lot of redundant http headers, which you might want to strip away. Or if you have extra cpu power, maybe just encode to h264 first. But if the camera is adding some meta data to http header frames such as channel, timestamp, etc. Then it may be useful to keep them.

edit 3 (tkinter interfacing)

import cv2
import urllib 
import numpy as np
import Tkinter
from PIL import Image, ImageTk
import threading

root = Tkinter.Tk()
image_label = Tkinter.Label(root)  
image_label.pack()

def cvloop():    
    stream=open('output.mjpg', 'rb')
    bytes = ''
    while True:
        bytes += stream.read(1024)
        a = bytes.find('\xff\xd8')
        b = bytes.find('\xff\xd9')
        if a != -1 and b != -1:
            jpg = bytes[a:b+2]
            bytes = bytes[b+2:]
            i = cv2.imdecode(np.fromstring(jpg, dtype=np.uint8), cv2.CV_LOAD_IMAGE_COLOR)            
            tki = ImageTk.PhotoImage(Image.fromarray(cv2.cvtColor(i, cv2.COLOR_BGR2RGB)))
            image_label.configure(image=tki)                
            image_label._backbuffer_ = tki  #avoid flicker caused by premature gc
            cv2.imshow('i', i)
        if cv2.waitKey(1) == 27:
            exit(0)  

thread = threading.Thread(target=cvloop)
thread.start()
root.mainloop()



回答2:


First of all, please be aware that you should first try simply using OpenCV's video capture functions directly, e.g. cv2.VideoCapture('http://localhost:8080/frame.mjpg')!

This works just fine for me:

import cv2
cap = cv2.VideoCapture('http://localhost:8080/frame.mjpg')

while True:
  ret, frame = cap.read()
  cv2.imshow('Video', frame)

  if cv2.waitKey(1) == 27:
    exit(0)

Anyways, here is Zaw Lin's solution ported to OpenCV 3 (only change is cv2.CV_LOAD_IMAGE_COLOR to cv2.IMREAD_COLOR and Python 3 (string vs byte handling changed plus urllib):

import cv2
import urllib.request
import numpy as np

stream = urllib.request.urlopen('http://localhost:8080/frame.mjpg')
bytes = bytes()
while True:
    bytes += stream.read(1024)
    a = bytes.find(b'\xff\xd8')
    b = bytes.find(b'\xff\xd9')
    if a != -1 and b != -1:
        jpg = bytes[a:b+2]
        bytes = bytes[b+2:]
        i = cv2.imdecode(np.fromstring(jpg, dtype=np.uint8), cv2.IMREAD_COLOR)
        cv2.imshow('i', i)
        if cv2.waitKey(1) == 27:
            exit(0)



回答3:


Here is an answer using the Python 3 requests module instead of urllib.

The reason for not using urllib is that it cannot correctly interpret a URL like http://user:pass@ipaddress:port

Adding authentication parameters is more complex in urllib than the requests module.

Here is a nice, concise solution using the requests module:

import cv2
import requests
import numpy as np

r = requests.get('http://192.168.1.xx/mjpeg.cgi', auth=('user', 'password'), stream=True)
if(r.status_code == 200):
    bytes = bytes()
    for chunk in r.iter_content(chunk_size=1024):
        bytes += chunk
        a = bytes.find(b'\xff\xd8')
        b = bytes.find(b'\xff\xd9')
        if a != -1 and b != -1:
            jpg = bytes[a:b+2]
            bytes = bytes[b+2:]
            i = cv2.imdecode(np.fromstring(jpg, dtype=np.uint8), cv2.IMREAD_COLOR)
            cv2.imshow('i', i)
            if cv2.waitKey(1) == 27:
                exit(0)
else:
    print("Received unexpected status code {}".format(r.status_code))



回答4:


I had the same problem. The solution without requests or urllib: just add the user and password in the cam address, using VideoCapture, like this:

E.g.

cv2.VideoCapture('http://user:password@XXX.XXX.XXX.XXX/video')

using IPWebcam for android.



来源:https://stackoverflow.com/questions/21702477/how-to-parse-mjpeg-http-stream-from-ip-camera

易学教程内所有资源均来自网络或用户发布的内容,如有违反法律规定的内容欢迎反馈
该文章没有解决你所遇到的问题?点击提问,说说你的问题,让更多的人一起探讨吧!