十年网站开发经验 + 多家企业客户 + 靠谱的建站团队
量身定制 + 运营维护+专业推广+无忧售后,网站问题一站解决
这篇文章主要介绍“python爬虫多次请求超时怎么办”,在日常操作中,相信很多人在python爬虫多次请求超时怎么办问题上存在疑惑,小编查阅了各式资料,整理出简单好用的操作方法,希望对大家解答”python爬虫多次请求超时怎么办”的疑惑有所帮助!接下来,请跟着小编一起来学习吧!
10年积累的网站制作、成都做网站经验,可以快速应对客户对网站的新想法和需求。提供各种问题对应的解决方案。让选择我们的客户得到更好、更有力的网络服务。我虽然不认识你,你也不认识我。但先做网站设计后付款的网站建设流程,更有荔城免费网站建设让你可以放心的选择与我们合作。
headers = Dict() url = 'https://www.baidu.com'try: proxies = Noneresponse = requests.get(url, headers=headers, verify=False, proxies=None, timeout=3)except:# logdebug('requests failed one time')try: proxies = Noneresponse = requests.get(url, headers=headers, verify=False, proxies=None, timeout=3)except:# logdebug('requests failed two time')print('requests failed two time')
总结 :代码比较冗余,重试try的次数越多,代码行数越多,但是打印日志比较方便
def requestDemo(url,): headers = Dict() trytimes = 3 # 重试的次数for i in range(trytimes): try: proxies = Noneresponse = requests.get(url, headers=headers, verify=False, proxies=None, timeout=3)# 注意此处也可能是302等状态码if response.status_code == 200: breakexcept: # logdebug(f'requests failed {i}time') print(f'requests failed {i} time')
总结 :遍历代码明显比第一个简化了很多,打印日志也方便
def requestDemo(url, times=1): headers = Dict() try: proxies = Noneresponse = requests.get(url, headers=headers, verify=False, proxies=None, timeout=3) html = response.text()# todo 此处处理代码正常逻辑passreturn html except: # logdebug(f'requests failed {i}time') trytimes = 3 # 重试的次数if times < trytimes: times += 1 return requestDemo(url, times) return 'out of maxtimes'
总结 :迭代 显得比较高大上,中间处理代码时有其它错误照样可以进行重试; 缺点 不太好理解,容易出错,另外try包含的内容过多时,对代码运行速度不利。
@retry(3) # 重试的次数 3def requestDemo(url): headers = Dict() proxies = Noneresponse = requests.get(url, headers=headers, verify=False, proxies=None, timeout=3) html = response.text()# todo 此处处理代码正常逻辑passreturn html def retry(times):def wrapper(func):def inner_wrapper(*args, **kwargs):i = 0while i < times:try: print(i)return func(*args, **kwargs)except: # 此处打印日志 func.__name__ 为say函数print("logdebug: {}()".format(func.__name__)) i += 1return inner_wrapperreturn wrapper
总结 :装饰器优点 多种函数复用,使用十分方便
#!/usr/bin/python# -*-coding='utf-8' -*-import requestsimport timeimport jsonfrom lxml import etreeimport warnings warnings.filterwarnings("ignore")def get_xiaomi():try:# for n in range(5): # 重试5次# print("第"+str(n)+"次")for a in range(5): # 重试5次print(a) url = "https://www.mi.com/"headers = {"Accept": "text/html,application/xhtml+xml,application/xml;q=0.9,image/webp,image/apng,*/*;q=0.8,application/signed-exchange;v=b3","Accept-Encoding": "gzip, deflate, br","Accept-Language": "zh-CN,zh;q=0.9,en;q=0.8","Connection": "keep-alive",# "Cookie": "xmuuid=XMGUEST-D80D9CE0-910B-11EA-8EE0-3131E8FF9940; Hm_lvt_c3e3e8b3ea48955284516b186acf0f4e=1588929065; XM_agreement=0; pageid=81190ccc4d52f577; lastsource=www.baidu.com; mstuid=1588929065187_5718; log_code=81190ccc4d52f577-e0f893c4337cbe4d|https%3A%2F%2Fwww.mi.com%2F; Hm_lpvt_c3e3e8b3ea48955284516b186acf0f4e=1588929099; mstz=||1156285732.7|||; xm_vistor=1588929065187_5718_1588929065187-1588929100964","Host": "www.mi.com","Upgrade-Insecure-Requests": "1","User-Agent": "Mozilla/5.0 (Windows NT 10.0; Win64; x64) AppleWebKit/537.36 (KHTML, like Gecko) Chrome/75.0.3770.90 Safari/537.36"} response = requests.get(url,headers=headers,timeout=10,verify=False) html = etree.HTML(response.text)# print(html)result = etree.tostring(html)# print(result)print(result.decode("utf-8")) title = html.xpath('//head/title/text()')[0] print("title==",title)if "左左" in title:# print(response.status_code)# if response.status_code ==200:breakreturn titleexcept: result = "异常"return resultif __name__ == '__main__': print(get_xiaomi())
Python重试模块retrying
# 设置最大重试次数@retry(stop_max_attempt_number=5)def get_proxies(self):r = requests.get('代理地址') print('正在获取')raise Exception("异常") print('获取到最新代理 = %s' % r.text) params = dict()if r and r.status_code == 200: proxy = str(r.content, encoding='utf-8') params['http'] = 'http://' + proxy params['https'] = 'https://' + proxy
# 设置方法的最大延迟时间,默认为100毫秒(是执行这个方法重试的总时间)@retry(stop_max_attempt_number=5,stop_max_delay=50)# 通过设置为50,我们会发现,任务并没有执行5次才结束!# 添加每次方法执行之间的等待时间@retry(stop_max_attempt_number=5,wait_fixed=2000)# 随机的等待时间@retry(stop_max_attempt_number=5,wait_random_min=100,wait_random_max=2000)# 每调用一次增加固定时长@retry(stop_max_attempt_number=5,wait_incrementing_increment=1000)# 根据异常重试,先看个简单的例子def retry_if_io_error(exception):return isinstance(exception, IOError)@retry(retry_on_exception=retry_if_io_error)def read_a_file():with open("file", "r") as f:return f.read()
read_a_file函数如果抛出了异常,会去retry_on_exception指向的函数去判断返回的是True还是False,如果是True则运行指定的重试次数后,抛出异常,False的话直接抛出异常。
当时自己测试的时候网上一大堆抄来抄去的,意思是retry_on_exception指定一个函数,函数返回指定异常,会重试,不是异常会退出。真坑人啊!
来看看获取代理的应用(仅仅是为了测试retrying模块)
到此,关于“python爬虫多次请求超时怎么办”的学习就结束了,希望能够解决大家的疑惑。理论与实践的搭配能更好的帮助大家学习,快去试试吧!若想继续学习更多相关知识,请继续关注创新互联网站,小编会继续努力为大家带来更多实用的文章!