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@ -18,10 +18,11 @@ import re
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import time
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import collections
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import math
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import json
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LANGUAGE= os.getenv("SUCKER_LANGUAGE","sk")
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DOMAIN = os.getenv("SUCKER_DOMAIN","sk")
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BATCHSIZE=os.getenv("SUCKER_BATCHSIZE",100)
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BATCHSIZE=os.getenv("SUCKER_BATCHSIZE",10)
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CONNECTION=os.getenv("SUCKER_CONNECTION","mongodb://root:example@localhost:27017/")
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DBNAME=os.getenv("SUCKER_DBNAME","crawler")
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MINFILESIZE=300
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@ -405,7 +406,7 @@ def get_links(db,hostname,status,batch_size):
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outlinks.append((doc["url"],cl.classify(link)))
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outlinks = sorted(outlinks, key=lambda x: x[1],reverse=True)
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links = [l[0] for l in outlinks[0:batch_size]]
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# todo remove very bad links
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# todo remove very bad links from database
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return list(links)
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@ -463,14 +464,35 @@ def link_summary(db,hostname):
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text_size = 0
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for item in res:
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text_size = item["text_size_sum"]
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good_document_characters = text_size / goodcount
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good_document_characters = 0
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if goodcount > 0:
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good_document_characters = text_size / goodcount
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fetch_average_characters = text_size / (goodcount + badcount)
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info["total_good_characters"] = text_size
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info["average_good_characters"] = good_document_characters
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info["average_fetch_characters"] = fetch_average_characters
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domaincol = db["domain"]
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print(json.dumps(info))
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domaincol.update_one({"host":domain},{"$set":info},usert=True)
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if goodcount + badcount > 100:
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cl = LinkClassifier()
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cl.train(db,hostname)
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res = linkcol.aggregate([
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{ "$match": { "status": "backlink","host":hostname } },
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{ "$sample": { "size": BATCHSIZE * 100 } }
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])
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predicted_good = 0
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predicted_bad = 0
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for item in res:
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cll = cl.classify(item["url"])
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if cll > 0:
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predicted_good += 1
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else:
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predicted_bad += 1
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predicted_good_prob = 0
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if predicted_good + predicted_bad > 0:
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predicted_good_prob = predicted_good / (predicted_good + predicted_bad)
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info["predicted_good_prob"] = predicted_good_prob
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print(info)
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domaincol.update_one({"host":hostname},{"$set":info},upsert=True)
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def domain_summary(db,hostname):
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linkcol = db["links"]
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