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113 lines
5.5 KiB
Python
113 lines
5.5 KiB
Python
#!/usr/bin/env python
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# Retrieves data from external data source applications and stores in a dataset file.
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# Data source application parameters are temporarily stored in the dataset file.
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import socket, urllib, sys, os
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from galaxy import eggs #eggs needs to be imported so that galaxy.util can find docutils egg...
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from galaxy.util.json import loads, dumps
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from galaxy.util import get_charset_from_http_headers
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import galaxy.model # need to import model before sniff to resolve a circular import dependency
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from galaxy.datatypes import sniff
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from galaxy.datatypes.registry import Registry
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from galaxy.jobs import TOOL_PROVIDED_JOB_METADATA_FILE
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assert sys.version_info[:2] >= ( 2, 4 )
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def stop_err( msg ):
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sys.stderr.write( msg )
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sys.exit()
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GALAXY_PARAM_PREFIX = 'GALAXY'
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GALAXY_ROOT_DIR = os.path.realpath( os.path.join( os.path.split( os.path.realpath( __file__ ) )[0], '..', '..' ) )
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GALAXY_DATATYPES_CONF_FILE = os.path.join( GALAXY_ROOT_DIR, 'datatypes_conf.xml' )
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def load_input_parameters( filename, erase_file = True ):
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datasource_params = {}
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try:
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json_params = loads( open( filename, 'r' ).read() )
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datasource_params = json_params.get( 'param_dict' )
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except:
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json_params = None
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for line in open( filename, 'r' ):
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try:
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line = line.strip()
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fields = line.split( '\t' )
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datasource_params[ fields[0] ] = fields[1]
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except:
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continue
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if erase_file:
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open( filename, 'w' ).close() #open file for writing, then close, removes params from file
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return json_params, datasource_params
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def __main__():
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filename = sys.argv[1]
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try:
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max_file_size = int( sys.argv[2] )
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except:
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max_file_size = 0
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job_params, params = load_input_parameters( filename )
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if job_params is None: #using an older tabular file
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enhanced_handling = False
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job_params = dict( param_dict = params )
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job_params[ 'output_data' ] = [ dict( out_data_name = 'output',
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ext = 'data',
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file_name = filename,
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extra_files_path = None ) ]
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job_params[ 'job_config' ] = dict( GALAXY_ROOT_DIR=GALAXY_ROOT_DIR, GALAXY_DATATYPES_CONF_FILE=GALAXY_DATATYPES_CONF_FILE, TOOL_PROVIDED_JOB_METADATA_FILE = TOOL_PROVIDED_JOB_METADATA_FILE )
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else:
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enhanced_handling = True
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json_file = open( job_params[ 'job_config' ][ 'TOOL_PROVIDED_JOB_METADATA_FILE' ], 'w' ) #specially named file for output junk to pass onto set metadata
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datatypes_registry = Registry()
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datatypes_registry.load_datatypes( root_dir = job_params[ 'job_config' ][ 'GALAXY_ROOT_DIR' ], config = job_params[ 'job_config' ][ 'GALAXY_DATATYPES_CONF_FILE' ] )
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URL = params.get( 'URL', None ) #using exactly URL indicates that only one dataset is being downloaded
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URL_method = params.get( 'URL_method', None )
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# The Python support for fetching resources from the web is layered. urllib uses the httplib
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# library, which in turn uses the socket library. As of Python 2.3 you can specify how long
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# a socket should wait for a response before timing out. By default the socket module has no
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# timeout and can hang. Currently, the socket timeout is not exposed at the httplib or urllib2
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# levels. However, you can set the default timeout ( in seconds ) globally for all sockets by
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# doing the following.
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socket.setdefaulttimeout( 600 )
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for data_dict in job_params[ 'output_data' ]:
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cur_filename = data_dict.get( 'file_name', filename )
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cur_URL = params.get( '%s|%s|URL' % ( GALAXY_PARAM_PREFIX, data_dict[ 'out_data_name' ] ), URL )
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if not cur_URL:
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open( cur_filename, 'w' ).write( "" )
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stop_err( 'The remote data source application has not sent back a URL parameter in the request.' )
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# The following calls to urllib.urlopen() will use the above default timeout
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try:
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if not URL_method or URL_method == 'get':
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page = urllib.urlopen( cur_URL )
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elif URL_method == 'post':
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page = urllib.urlopen( cur_URL, urllib.urlencode( params ) )
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except Exception, e:
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stop_err( 'The remote data source application may be off line, please try again later. Error: %s' % str( e ) )
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if max_file_size:
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file_size = int( page.info().get( 'Content-Length', 0 ) )
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if file_size > max_file_size:
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stop_err( 'The size of the data (%d bytes) you have requested exceeds the maximum allowed (%d bytes) on this server.' % ( file_size, max_file_size ) )
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#do sniff stream for multi_byte
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try:
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cur_filename, is_multi_byte = sniff.stream_to_open_named_file( page, os.open( cur_filename, os.O_WRONLY | os.O_CREAT ), cur_filename, source_encoding=get_charset_from_http_headers( page.headers ) )
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except Exception, e:
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stop_err( 'Unable to fetch %s:\n%s' % ( cur_URL, e ) )
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#here import checks that upload tool performs
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if enhanced_handling:
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try:
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ext = sniff.handle_uploaded_dataset_file( filename, datatypes_registry, ext = data_dict[ 'ext' ], is_multi_byte = is_multi_byte )
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except Exception, e:
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stop_err( str( e ) )
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info = dict( type = 'dataset',
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dataset_id = data_dict[ 'dataset_id' ],
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ext = ext)
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json_file.write( "%s\n" % dumps( info ) )
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if __name__ == "__main__": __main__()
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