s3 上传文件 post 请求
s3 uploading file post request
我正在尝试通过 post 请求将文件上传到 amazon s3。问题是我不知道如何将请求格式化为多部分表单。
这是我现在拥有的:
content_type = "image/JPEG"
key = 'uploads/filename.jpg'
acl = "public-read"
bucket = None
params_raw = create_upload_data(content_type,key,acl,bucket)
params = { 'policy': params_raw['policy'],'acl':acl,'signature':params_raw['signature'],'key':params_raw['key'],'Content-Type':params_raw['Content-Type'],'AWSAccessKeyId':params_raw['AWSAccessKeyId'],'success_action_status':params_raw['success_action_status'],'binary': binary_data}
r = requests.post(params_raw['form_action'],data=params)
我认为我收到的回复很糟糕,因为它不是多部分表单,但回复文本如下所示:
{"request": "<?xml version=\"1.0\" encoding=\"UTF-8\"?>\n<Error><Code>InvalidArgument</Code><Message>Conflicting query string parameters: acl, policy</Message><ArgumentName>ResourceType</ArgumentName><ArgumentValue>acl</ArgumentValue><RequestId>D558E016151E448F</RequestId><HostId>WT5aT0OOqJx3ziPgYFzjuTHJSERaCcuJG+y/acs6+l/mWVwO0MiH3lhWyBWIdhKr9BnhdIpkarw=</HostId></Error>"}
如何使用文件构造请求...它是 base 64 中的 .jpg?
改变内容类型就足够了
content-type = 'multipart/form-data'
对此有一些痛苦,但最终还是成功了。最后很简单!
url = "https://yourbucket.s3.amazonaws.com"
#complete_path is the local server path to the file
files = {'file':open(complete_path,'rb')}
r = requests.post(url, data=params, files=files)
我正在尝试通过 post 请求将文件上传到 amazon s3。问题是我不知道如何将请求格式化为多部分表单。
这是我现在拥有的:
content_type = "image/JPEG"
key = 'uploads/filename.jpg'
acl = "public-read"
bucket = None
params_raw = create_upload_data(content_type,key,acl,bucket)
params = { 'policy': params_raw['policy'],'acl':acl,'signature':params_raw['signature'],'key':params_raw['key'],'Content-Type':params_raw['Content-Type'],'AWSAccessKeyId':params_raw['AWSAccessKeyId'],'success_action_status':params_raw['success_action_status'],'binary': binary_data}
r = requests.post(params_raw['form_action'],data=params)
我认为我收到的回复很糟糕,因为它不是多部分表单,但回复文本如下所示:
{"request": "<?xml version=\"1.0\" encoding=\"UTF-8\"?>\n<Error><Code>InvalidArgument</Code><Message>Conflicting query string parameters: acl, policy</Message><ArgumentName>ResourceType</ArgumentName><ArgumentValue>acl</ArgumentValue><RequestId>D558E016151E448F</RequestId><HostId>WT5aT0OOqJx3ziPgYFzjuTHJSERaCcuJG+y/acs6+l/mWVwO0MiH3lhWyBWIdhKr9BnhdIpkarw=</HostId></Error>"}
如何使用文件构造请求...它是 base 64 中的 .jpg?
改变内容类型就足够了
content-type = 'multipart/form-data'
对此有一些痛苦,但最终还是成功了。最后很简单!
url = "https://yourbucket.s3.amazonaws.com"
#complete_path is the local server path to the file
files = {'file':open(complete_path,'rb')}
r = requests.post(url, data=params, files=files)