如何将这个变量的结果?

时间:2010-03-04 23:41:25

标签: python variables beautifulsoup scrape

现在它设置为写入文件,但我希望它将值输出到变量。不确定如何。

from BeautifulSoup import BeautifulSoup
import sys, re, urllib2
import codecs


woof1 = urllib2.urlopen('someurl').read()
woof_1 = BeautifulSoup(woof1)
woof2 = urllib2.urlopen('someurl').read()
woof_2 = BeautifulSoup(woof2)

GE_DB = open('GE_DB.txt', 'a')

for row in woof_1.findAll("tr", { "class" : "row_b" }):
  for col in row.findAll(re.compile('td')):
    GE_DB.write(col.string if col.string else '')
GE_DB.write("   ")
GE_DB.write("\n")
GE_DB.close()
for row in woof_2.findAll("tr", { "class" : "row_b" }):
  for col in row.findAll(re.compile('td')):
    GE_DB.write(col.string if col.string else '')
GE_DB.write("\n")
GE_DB.close()

4 个答案:

答案 0 :(得分:-1)

values = []
for row in woof_1.findAll("tr", { "class" : "row_b" }):
  for col in row.findAll(re.compile('td')):
    if col.string:
      values.append(col.string)
result = ''.join(values)

答案 1 :(得分:-1)

也许是这样。 

gedb = "";
for row in woof_1.findAll("tr", { "class" : "row_b" }):
  for col in row.findAll(re.compile('td')):
    if col.string:
      gedb += col.string

<击>

答案 2 :(得分:-1)

摆脱GE_DB的所有提及。

做一个    outputtext = "" 朝着开始。

GE_DB.write(col.string if col.string else '')替换为outputtext += col.string if col.string else ''

答案 3 :(得分:-2)

import cStringIO as StringIO   # or import StringIO if on a fringe platform
buf = StringIO.StringIO()
for row in woof_1.findAll("tr", { "class" : "row_b" }):
  for col in row.findAll(re.compile('td')):
    buf.write(col.string if col.string else '')

result = buf.getvalue()
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