Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

The following code is for a python server that can receive a string.

import socket

TCP_IP = '127.0.0.1'
TCP_PORT = 8001
BUFFER_SIZE = 1024

s = socket.socket(socket.AF_INET, socket.SOCK_STREAM)
s.bind((TCP_IP, TCP_PORT))
s.listen(1)

conn, addr = s.accept()
print 'Connection address:', addr
while 1:
    length = conn.recv(1027)
    data = conn.recv(int(length))
    import StringIO
    buff = StringIO.StringIO()
    buff.write(data)
    if not data: break
    print "received data:", data
    conn.send('Thanks')  # echo
    get_result(buff)    
conn.close()

Can anyone help me to edit this code or create a similar one to be able to receive images instead of string?

share|improve this question
add comment

1 Answer 1

First, your code actually can't receive a string. Sockets are byte streams, not message streams.

This line:

length = conn.recv(1027)

… will receive anywhere from 1 to 1027 bytes.

You need to loop around each recv and accumulate a buffer, like this:

def recvall(conn, length):
    buf = b''
    while len(buf) < length:
        data = conn.recv(length - len(buf))
        if not data:
            return data
        buf += data
    return buf

Now you can make it work like this:

while True:
    length = recvall(conn, 1027)
    if not length: break
    data = recvall(conn, int(length))
    if not data: break
    print "received data:", data
    conn.send('Thanks')  # echo

You can use StringIO or other techniques instead of concatenation for performance reasons, but I left that out because it's simpler and more concise this way, and understanding the code is more important than performance.

Meanwhile, it's worth pointing out that 1027 bytes is a ridiculous huge amount of space to use for a length prefix. Also, your sending code has to make sure to actually send 1027 bytes, no matter what. And your responses have to always be exactly 6 bytes long for this to work.

def send_string(conn, msg):
    conn.sendall(str(len(msg)).ljust(1027))
    conn.sendall(msg)
    response = recvall(conn, 6)
    return response

But at least now it is workable.


So, why did you think it worked?

TCP is a stream of bytes, not a stream of messages. There's no guarantee that a single send from one side will match up with the next recv on the other side. However, when you're running both sides on the same computer, sending relatively small buffers, and aren't loading the computer down too badly, they will often happen to match up 1-to-1. After all, each time you call recv, the other side has probably only had time to send one message, which is sitting in the OS's buffers all by itself, so the OS just gives you the whole thing. So, your code will appear to work in initial testing.

But if you send the message through a router to another computer, or if you wait long enough for the other side to make multiple send calls, or if your message is too big to fit into a single buffer, or if you just get unlucky, there could be 2-1/2 messages waiting in the buffer, and the OS will give you the whole 2-1/2 messages. And then your next recv will get the leftover 1/2 message.


So, how do you make this work for images? Well, it depends on what you mean by that.

You can read an image file into memory as a sequence of bytes, and call send_string on that sequence, and it will work fine. Then the other side can save that file, or interpret it as an image file and display it, or whatever it wants.

Alternatively, you can use something like PIL to parse and decompress an image file into a bitmap. Then, you encode the header data (width, height, pixel format, etc.) in some way (e.g., pickle it), send_string the header, then send_string the bitmap.

If the header has a fixed size (e.g., it's a simple structure that you can serialize with struct.pack), and contains enough information for the other side to figure out the length of the bitmap in bytes, you don't need to send_string each one; just use conn.sendall(serialized_header) then conn.sendall(bitmap).

share|improve this answer
add comment

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

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