使用python+xpath 获取https://pypi.python.org/pypi/lxml/2.3/的下载链接:


使用requests获取html后,分析html中的标签发现所需要的链接在

...

然后分别获却class="odd"> 和class="even">中的内容 ,使用xpath时可以写成xpath('//table[@class="list"]/tr[@class="even" or "odd"]/td/span/a[1]/@href')


import re

import requests

import urllib2

from lxml import etree


url='https://pypi.python.org/pypi/lxml/2.3/'

head={'User-Agent':'Mozilla/5.0 (Windows NT 6.1; WOW64) AppleWebKit/537.36 (KHTML, like Gecko) Chrome/31.0.1650.63 Safari/537.36'}


def gethtml(url, *args):

    html = requests.get(url, *args).content

    return html


def writfile(cont):

    try:

        fd = open('x.txt', 'w')

        try:

            fd.write(cont)

        finally:

            fd.close()

    except IOError:

        print "file not existing!"


def readfile():

    try:

        fd = open('x.txt', 'r')

        try:

            all_the_text = fd.read()

        finally:

            fd.close()

    except IOError:

        print "File open error !"


    return all_the_text


html = gethtml(url, head)

writfile(html)

all_text = readfile()


dom = etree.HTML(all_text)

url_list = dom.xpath('//table[@class="list"]/tr[@class="even" or "odd"]/td/span/a[1]/@href')

for url in url_list:

    print url








经测试,可以正常获取对应的下载链接。作为初学者,代码有很多不当地方,还请大牛审阅之后加以指正。