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.

This question has been asked in a similar way here but the answer was way over my head (I'm super new to python and web development) so I'm hoping there's a simpler way or it could be explained differently.

I'm trying to generate an image using matplotlib and serve it without first writing a file to the server. My code is probably kind of silly, but it goes like this:

import cgi
import matplotlib.pyplot as pyplot
import cStringIO #I think I will need this but not sure how to use

...a bunch of matplotlib stuff happens....
pyplot.savefig('test.png')

print "Content-type: text/html\n"
print """<html><body>
...a bunch of text and html here...
<img src="test.png"></img>
...more text and html...
</body></html>
"""

I think that instead of doing pyplot.savefig('test.png'), I am supposed to create a cstringIO object and then do something like this:

mybuffer=cStringIO.StringIO()
pyplot.savefig(mybuffer, format="png")

But I am pretty lost from there. All the examples I've seen (e.g. http://lost-theory.org/python/dynamicimg.html) involve doing something like

print "Content-type: image/png\n"

and I don't get how to integrate that with the HTML I'm already outputting.

share|improve this question
    
When you output the blob from imageout.py , then in the HTML can you set image source to the py script? In php you would do something along those lines. –  ninMonkey Feb 12 '13 at 3:07
1  

3 Answers 3

up vote 9 down vote accepted

You should

  • first write to a cStringIO object
  • then write the HTTP header
  • then write the content of the cStringIO to stdout

Thus, if an error in savefig occured, you could still return something else, even another header. Some errors won't be recognized earlier, e.g., some problems with texts, too large image dimensions etc.

You need to tell savefig where to write the output. You can do:

format = "png"
sio = cStringIO.StringIO()
pyplot.savefig(sio, format=format)
print "Content-Type: image/%s\n" % format
msvcrt.setmode(sys.stdout.fileno(), os.O_BINARY) # Needed this on windows, IIS
sys.stdout.write(sio.getvalue())

If you want to embed the image into HTML:

print "Content-Type: text/html\n"
print """<html><body>
...a bunch of text and html here...
<img src="data:image/png;base64,%s"/>
...more text and html...
</body></html>""" % sio.getvalue().encode("base64").strip()
share|improve this answer
    
Works perfectly, thanks! –  Ben S. Feb 16 '13 at 22:56
    
you're welcome... –  Thorsten Kranz Feb 16 '13 at 23:55

My first question is: Does the image change often? Do you want to keep the older ones? If it's a real-time thing, then your quest for optimisation is justified. Otherwise, the benefits from generating the image on the fly aren't that significant.

The code as it stands would require 2 requests:

  1. to get the html source you already have and
  2. to get the actual image

Probably the simplest way (keeping the web requests to a minimum) is @Alex L's comment, which would allow you to do it in a single request, by building a HTML with the image embedded in it.

Your code would be something like:

# Build your matplotlib image in a iostring here
# ......
#

# Initialise the base64 string
#
imgStr = "data:image/png;base64,"

imgStr += base64.b64encode(mybuffer)

print "Content-type: text/html\n"
print """<html><body>
# ...a bunch of text and html here...
    <img src="%s"></img>
#...more text and html...
    </body></html>
""" % imgStr

This code will probably not work out of the box, but shows the idea.

Note that this is a bad idea in general if your image doesn't really change too often or generating it takes a long time, because it will be generated every time.

Another way would be to generate the original html. Loading it will trigger a request for the "test.png". You can serve that separately, either via the buffer streaming solution you already mention, or from a static file.

Personally, I'd stick with a decoupled solution: generate the image by another process (making sure that there's always an image available) and use a very light thing to generate and serve the HTML.

HTH,

share|improve this answer

Unless I badly miscomprehend your question, all you need to do is cd to the location of the image and run: python -m SimpleHTTPServer 8000 &

Then open your browser, and type http://localhost:8000/ in the URL bar.

share|improve this answer
    
Not what I'm looking for but you prompted me to reword for clarity, thanks! –  Ben S. Feb 12 '13 at 3:01

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.