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I want to extract text from following src of the image tag and text of the anchor tag which is inside the div class data.

I successfully manage to extract the img src but I am having trouble on extracting the text from the anchor tag.

<a class="title" href="http://rads.stackoverflow.com/amzn/click/B0073HSK0K">Nikon COOLPIX L26 16.1 MP Digital Camera with 5x Zoom NIKKOR Glass Lens and 3-inch LCD (Red)</a> 

Here is the link for the entire HTML page

Here is my code

for div in soup.findAll('div', attrs={'class':'image'}):
    print "\n"
    for data in div.findNextSibling('div', attrs={'class':'data'}):
        for a in data.findAll('a', attrs={'class':'title'}):
            print a.text
    for img in div.findAll('img'):
        print img['src']

What I am trying to do is extract the image src (link) and the title in side the div class=data.

so for example

 <a class="title" href="http://rads.stackoverflow.com/amzn/click/B0073HSK0K">Nikon COOLPIX L26 16.1 MP Digital Camera with 5x Zoom NIKKOR Glass Lens and 3-inch LCD (Red)</a> 

I want to extract : Nikon COOLPIX L26 16.1 MP Digital Camera with 5x Zoom NIKKOR Glass Lens and 3-inch LCD (Red)

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2  
Have you tried print a['href'] –  Jon Clements Jul 30 '12 at 6:33
    
I am looking for the text not text of href –  Null-Hypothesis Jul 30 '12 at 17:43
    
Try a.string then? –  Jon Clements Jul 30 '12 at 17:44
    
did you mean like this print div.find('a').string then I get None –  Null-Hypothesis Jul 30 '12 at 17:47
    
Posted an answer that does what you want... (I think) - but would personally go for the lxml.html parser route. –  Jon Clements Jul 30 '12 at 17:58

4 Answers 4

This will help:

from BeautifulSoup import BeautifulSoup

data = '''<div class="image">
        <a href="http://www.example.com/eg1">Content1<img  
        src="http://image.example.com/img1.jpg" /></a>
        </div>
        <div class="image">
        <a href="http://www.example.com/eg2">Content2<img  
        src="http://image.example.com/img2.jpg" /> </a>
        </div>'''

soup = BeautifulSoup(data)

for div in soup.findAll('div', attrs={'class':'image'}):
    print div.find('a')['href']
    print div.find('a').contents[0]
    print div.find('img')['src']

If you are looking into Amazon products then you should be using the official API. There is at least one Python package that will ease your scraping issues and keep your activity within the terms of use.

share|improve this answer
    
I am actually looking for the text example: <a class="title" href="rads.stackoverflow.com/amzn/click/B0073HSK0K">Nikon COOLPIX L26 16.1 MP Digital Camera with 5x Zoom NIKKOR Glass Lens and 3-inch LCD (Red)</a> in this I want the Nikon COOLPIX... if I used div.find('a')['href'] that only gives the href not the text. –  Null-Hypothesis Jul 30 '12 at 17:43
    
@Null-Hypothesis: the contents are found as in this update. –  gauden Jul 30 '12 at 18:44
>>> txt = '<a class="title" href="http://rads.stackoverflow.com/amzn/click/B0073HSK0K">Nikon COOLPIX L26 16.1 MP Digital Camera with 5x Zoom NIKKOR Glass Lens and 3-inch LCD (Red)</a> '
>>> fragment = bs4.BeautifulSoup(txt)
>>> fragment
<a class="title" href="http://rads.stackoverflow.com/amzn/click/B0073HSK0K">Nikon COOLPIX L26 16.1 MP Digital Camera with 5x Zoom NIKKOR Glass Lens and 3-inch LCD (Red)</a> 
>>> fragment.find('a', {'class': 'title'})
<a class="title" href="http://rads.stackoverflow.com/amzn/click/B0073HSK0K">Nikon COOLPIX L26 16.1 MP Digital Camera with 5x Zoom NIKKOR Glass Lens and 3-inch LCD (Red)</a>
>>> fragment.find('a', {'class': 'title'}).string
u'Nikon COOLPIX L26 16.1 MP Digital Camera with 5x Zoom NIKKOR Glass Lens and 3-inch LCD (Red)'
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so I tried like this but print div.find('a', {'class':'title'}).string got the error: print div.find('a', {'class':'title'}).string AttributeError: 'NoneType' object has no attribute 'string' –  Null-Hypothesis Jul 30 '12 at 18:20
1  
Then it's blank - try/except the block –  Jon Clements Jul 30 '12 at 18:32

I would suggest going the lxml route and using xpath.

from lxml import etree
# data is the variable containing the html
data = etree.HTML(data)
anchor = data.xpath('//a[@class="title"]/text()')
share|improve this answer
    
I am getting following error: 'module' object has no attribute 'html' looks like etree doesn't have html object to be called upon. –  Null-Hypothesis Jul 30 '12 at 18:12
    
Thats because I had a typo the line should be: data = etree.HTML(data) I have updated the original answer. –  justinfay Jul 31 '12 at 9:01
up vote 0 down vote accepted

All the above answers really help me to construct my answer, because of this I voted for all the answers that other users put it out: But I finally put together my own answer to exact problem I was dealing with:

As question clearly defined I had to access some of the siblings and its children in a dom structure: This solution will iterate over the images in the dom structure and construct image name using product title and save the image to the local directory.

import urlparse
from urllib2 import urlopen
from urllib import urlretrieve
from BeautifulSoup import BeautifulSoup as bs
import requests

def getImages(url):
    #Download the images
    r = requests.get(url)
    html = r.text
    soup = bs(html)
    output_folder = '~/amazon'
    #extracting the images that in div(s)
    for div in soup.findAll('div', attrs={'class':'image'}):
        modified_file_name = None
        try:
            #getting the data div using findNext
            nextDiv =  div.findNext('div', attrs={'class':'data'})
            #use findNext again on previous object to get to the anchor tag
            fileName = nextDiv.findNext('a').text
            modified_file_name = fileName.replace(' ','-') + '.jpg'
        except TypeError:
            print 'skip'
        imageUrl = div.find('img')['src']
        outputPath = os.path.join(output_folder, modified_file_name)
        urlretrieve(imageUrl, outputPath)

if __name__=='__main__':
    url = r'http://www.amazon.com/s/ref=sr_pg_1?rh=n%3A172282%2Ck%3Adigital+camera&keywords=digital+camera&ie=UTF8&qid=1343600585'
    getImages(url)
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