问题描述
我的初始文件在AWS S3 。
有人能指出我需要在Luigi Task设置这个吗?
我查看了文档并找到了luigi.S3但我不清楚该怎么做,然后我在网上搜索,只获得了从mortar-luigi和实施在luigi顶部的链接。
UPDATE
按照为@matagus提供的示例(我也按照建议创建了~/.boto文件):
# coding: utf-8
import luigi
from luigi.s3 import S3Target, S3Client
class MyS3File(luigi.ExternalTask):
def output(self):
return S3Target('s3://my-bucket/19170205.txt')
class ProcessS3File(luigi.Task):
def requieres(self):
return MyS3File()
def output(self):
return luigi.LocalTarget('/tmp/resultado.txt')
def run(self):
result = None
for input in self.input():
print("Doing something ...")
with input.open('r') as f:
for line in f:
result = 'This is a line'
if result:
out_file = self.output().open('w')
out_file.write(result)
当我执行它时没有任何反应
DEBUG: Checking if ProcessS3File() is complete
INFO: Informed scheduler that task ProcessS3File() has status PENDING
INFO: Done scheduling tasks
INFO: Running Worker with 1 processes
DEBUG: Asking scheduler for work...
DEBUG: Pending tasks: 1
INFO: [pid 21171] Worker Worker(salt=226574718, workers=1, host=heliodromus, username=nanounanue, pid=21171) running ProcessS3File()
INFO: [pid 21171] Worker Worker(salt=226574718, workers=1, host=heliodromus, username=nanounanue, pid=21171) done ProcessS3File()
DEBUG: 1 running tasks, waiting for next task to finish
INFO: Informed scheduler that task ProcessS3File() has status DONE
DEBUG: Asking scheduler for work...
INFO: Done
INFO: There are no more tasks to run at this time
INFO: Worker Worker(salt=226574718, workers=1, host=heliodromus, username=nanounanue, pid=21171) was stopped. Shutting down Keep-Alive thread
如你所见,消息Doing something...从不打印。
怎么了?
1楼
这里的关键是定义一个没有输入的外部任务 ,哪个输出是你在S3中生活的那些文件。 Luigi docs在提到这一点:
请注意,requires()无法返回Target对象。 如果您有一个在外部创建的简单Target对象,则可以将其包装在Task类中
所以,基本上你最终得到这样的东西:
import luigi
from luigi.s3 import S3Target
from somewhere import do_something_with
class MyS3File(luigi.ExternalTask):
def output(self):
return luigi.S3Target('s3://my-bucket/path/to/file')
class ProcessS3File(luigi.Task):
def requires(self):
return MyS3File()
def output(self):
return luigi.S3Target('s3://my-bucket/path/to/output-file')
def run(self):
result = None
# this will return a file stream that reads the file from your aws s3 bucket
with self.input().open('r') as f:
result = do_something_with(f)
# and the you
out_file = self.output().open('w')
# it'd better to serialize this result before writing it to a file, but this is a pretty simple example
out_file.write(result)
更新:
Luigi使用从AWS S3读取文件和/或将它们写入AWS S3,因此为了使此代码正常工作,您需要在boto配置文件中提供您的凭据~/boto ( 查找其他 ):
[Credentials]
aws_access_key_id = <your_access_key_here>
aws_secret_access_key = <your_secret_key_here>