Byebug hasn't been maintained for years, and it isn't fully compatible
with Zeitwerk [1]. On the other hand, Ruby includes the debug gem since
version 3.1.0. We tried to start using at after commit e74eff217, but
couldn't do so because our CI was hanging forever in a test related to
machine learning, with the message:
> DEBUGGER: Attaching after process X fork to child process Y
(Note this message appeared with debug 1.6.3 but not with the version
we're currently using.)
So we're changing the debug gem fork mode in the test so it doesn't hang
anymore when running our CI. We tried to change the test so it wouldn't
call `Process.fork`, but this required changing the code, and since
there are no tests checking machine learning behavior with real scripts,
we aren't sure whether these script would keep working after changing
the code.
[1] Issue 564 in https://github.com/deivid-rodriguez/byebug
618 lines
24 KiB
Ruby
618 lines
24 KiB
Ruby
require "rails_helper"
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describe MachineLearning do
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def full_sanitizer(string)
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ActionView::Base.full_sanitizer.sanitize(string)
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end
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let(:job) { create(:machine_learning_job) }
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describe "#cleanup_proposals_tags!" do
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it "does not delete other machine learning generated data" do
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create(:ml_summary_comment, commentable: create(:proposal))
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create(:ml_summary_comment, commentable: create(:budget_investment))
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create(:related_content, :proposals, :from_machine_learning)
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create(:related_content, :budget_investments, :from_machine_learning)
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expect(MlSummaryComment.count).to be 2
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expect(RelatedContent.for_proposals.from_machine_learning.count).to be 2
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expect(RelatedContent.for_investments.from_machine_learning.count).to be 2
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machine_learning = MachineLearning.new(job)
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machine_learning.send(:cleanup_proposals_tags!)
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expect(MlSummaryComment.count).to be 2
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expect(RelatedContent.for_proposals.from_machine_learning.count).to be 2
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expect(RelatedContent.for_investments.from_machine_learning.count).to be 2
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end
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it "deletes proposals tags machine learning generated data" do
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proposal = create(:proposal)
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investment = create(:budget_investment)
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user_tag = create(:tag)
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create(:tagging, tag: user_tag, taggable: proposal)
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ml_proposal_tag = create(:tag)
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create(:tagging, tag: ml_proposal_tag, taggable: proposal, context: "ml_tags")
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ml_investment_tag = create(:tag)
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create(:tagging, tag: ml_investment_tag, taggable: investment, context: "ml_tags")
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common_tag = create(:tag)
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create(:tagging, tag: common_tag, taggable: proposal)
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create(:tagging, tag: common_tag, taggable: proposal, context: "ml_tags")
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create(:tagging, tag: common_tag, taggable: investment, context: "ml_tags")
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expect(Tag.count).to be 4
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expect(Tagging.count).to be 6
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expect(Tagging.where(context: "tags").count).to be 2
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expect(Tagging.where(context: "ml_tags", taggable_type: "Proposal").count).to be 2
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expect(Tagging.where(context: "ml_tags", taggable_type: "Budget::Investment").count).to be 2
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machine_learning = MachineLearning.new(job)
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machine_learning.send(:cleanup_proposals_tags!)
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expect(Tag.count).to be 3
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expect(Tag.all).not_to include ml_proposal_tag
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expect(Tagging.count).to be 4
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expect(Tagging.where(context: "tags").count).to be 2
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expect(Tagging.where(context: "ml_tags", taggable_type: "Proposal")).to be_empty
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expect(Tagging.where(context: "ml_tags", taggable_type: "Budget::Investment").count).to be 2
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end
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end
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describe "#cleanup_investments_tags!" do
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it "does not delete other machine learning generated data" do
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create(:ml_summary_comment, commentable: create(:proposal))
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create(:ml_summary_comment, commentable: create(:budget_investment))
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create(:related_content, :proposals, :from_machine_learning)
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create(:related_content, :budget_investments, :from_machine_learning)
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expect(MlSummaryComment.count).to be 2
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expect(RelatedContent.for_proposals.from_machine_learning.count).to be 2
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expect(RelatedContent.for_investments.from_machine_learning.count).to be 2
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machine_learning = MachineLearning.new(job)
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machine_learning.send(:cleanup_investments_tags!)
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expect(MlSummaryComment.count).to be 2
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expect(RelatedContent.for_proposals.from_machine_learning.count).to be 2
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expect(RelatedContent.for_investments.from_machine_learning.count).to be 2
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end
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it "deletes investments tags machine learning generated data" do
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proposal = create(:proposal)
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investment = create(:budget_investment)
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user_tag = create(:tag)
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create(:tagging, tag: user_tag, taggable: investment)
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ml_investment_tag = create(:tag)
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create(:tagging, tag: ml_investment_tag, taggable: investment, context: "ml_tags")
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ml_proposal_tag = create(:tag)
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create(:tagging, tag: ml_proposal_tag, taggable: proposal, context: "ml_tags")
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common_tag = create(:tag)
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create(:tagging, tag: common_tag, taggable: investment)
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create(:tagging, tag: common_tag, taggable: investment, context: "ml_tags")
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create(:tagging, tag: common_tag, taggable: proposal, context: "ml_tags")
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expect(Tag.count).to be 4
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expect(Tagging.count).to be 6
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expect(Tagging.where(context: "tags").count).to be 2
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expect(Tagging.where(context: "ml_tags", taggable_type: "Budget::Investment").count).to be 2
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expect(Tagging.where(context: "ml_tags", taggable_type: "Proposal").count).to be 2
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machine_learning = MachineLearning.new(job)
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machine_learning.send(:cleanup_investments_tags!)
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expect(Tag.count).to be 3
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expect(Tag.all).not_to include ml_investment_tag
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expect(Tagging.count).to be 4
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expect(Tagging.where(context: "tags").count).to be 2
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expect(Tagging.where(context: "ml_tags", taggable_type: "Budget::Investment")).to be_empty
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expect(Tagging.where(context: "ml_tags", taggable_type: "Proposal").count).to be 2
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end
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end
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describe "#cleanup_proposals_related_content!" do
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it "does not delete other machine learning generated data" do
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proposal = create(:proposal)
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investment = create(:budget_investment)
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create(:ml_summary_comment, commentable: proposal)
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create(:ml_summary_comment, commentable: investment)
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create(:tagging, tag: create(:tag))
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create(:tagging, tag: create(:tag), context: "ml_tags", taggable: proposal)
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create(:tagging, tag: create(:tag), context: "ml_tags", taggable: investment)
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expect(MlSummaryComment.count).to be 2
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expect(Tag.count).to be 3
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expect(Tagging.count).to be 3
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expect(Tagging.where(context: "tags").count).to be 1
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expect(Tagging.where(context: "ml_tags").count).to be 2
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machine_learning = MachineLearning.new(job)
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machine_learning.send(:cleanup_proposals_related_content!)
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expect(MlSummaryComment.count).to be 2
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expect(Tag.count).to be 3
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expect(Tagging.count).to be 3
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expect(Tagging.where(context: "tags").count).to be 1
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expect(Tagging.where(context: "ml_tags").count).to be 2
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end
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it "deletes proposals related content machine learning generated data" do
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create(:related_content, :proposals)
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create(:related_content, :budget_investments)
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create(:related_content, :proposals, :from_machine_learning)
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create(:related_content, :budget_investments, :from_machine_learning)
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expect(RelatedContent.for_proposals.from_users.count).to be 2
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expect(RelatedContent.for_investments.from_users.count).to be 2
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expect(RelatedContent.for_proposals.from_machine_learning.count).to be 2
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expect(RelatedContent.for_investments.from_machine_learning.count).to be 2
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machine_learning = MachineLearning.new(job)
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machine_learning.send(:cleanup_proposals_related_content!)
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expect(RelatedContent.for_proposals.from_users.count).to be 2
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expect(RelatedContent.for_investments.from_users.count).to be 2
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expect(RelatedContent.for_proposals.from_machine_learning).to be_empty
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expect(RelatedContent.for_investments.from_machine_learning.count).to be 2
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end
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end
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describe "#cleanup_investments_related_content!" do
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it "does not delete other machine learning generated data" do
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proposal = create(:proposal)
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investment = create(:budget_investment)
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create(:ml_summary_comment, commentable: proposal)
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create(:ml_summary_comment, commentable: investment)
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create(:tagging, tag: create(:tag))
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create(:tagging, tag: create(:tag), context: "ml_tags", taggable: proposal)
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create(:tagging, tag: create(:tag), context: "ml_tags", taggable: investment)
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expect(MlSummaryComment.count).to be 2
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expect(Tag.count).to be 3
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expect(Tagging.count).to be 3
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expect(Tagging.where(context: "tags").count).to be 1
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expect(Tagging.where(context: "ml_tags").count).to be 2
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machine_learning = MachineLearning.new(job)
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machine_learning.send(:cleanup_investments_related_content!)
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expect(MlSummaryComment.count).to be 2
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expect(Tag.count).to be 3
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expect(Tagging.count).to be 3
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expect(Tagging.where(context: "tags").count).to be 1
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expect(Tagging.where(context: "ml_tags").count).to be 2
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end
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it "deletes proposals related content machine learning generated data" do
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create(:related_content, :proposals)
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create(:related_content, :budget_investments)
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create(:related_content, :proposals, :from_machine_learning)
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create(:related_content, :budget_investments, :from_machine_learning)
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expect(RelatedContent.for_proposals.from_users.count).to be 2
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expect(RelatedContent.for_investments.from_users.count).to be 2
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expect(RelatedContent.for_proposals.from_machine_learning.count).to be 2
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expect(RelatedContent.for_investments.from_machine_learning.count).to be 2
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machine_learning = MachineLearning.new(job)
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machine_learning.send(:cleanup_investments_related_content!)
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expect(RelatedContent.for_proposals.from_users.count).to be 2
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expect(RelatedContent.for_investments.from_users.count).to be 2
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expect(RelatedContent.for_proposals.from_machine_learning.count).to be 2
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expect(RelatedContent.for_investments.from_machine_learning).to be_empty
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end
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end
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describe "#cleanup_proposals_comments_summary!" do
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it "does not delete other machine learning generated data" do
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create(:related_content, :proposals, :from_machine_learning)
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create(:related_content, :budget_investments, :from_machine_learning)
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create(:tagging, tag: create(:tag))
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create(:tagging, tag: create(:tag), context: "ml_tags", taggable: create(:proposal))
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create(:tagging, tag: create(:tag), context: "ml_tags", taggable: create(:budget_investment))
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expect(RelatedContent.for_proposals.from_machine_learning.count).to be 2
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expect(RelatedContent.for_investments.from_machine_learning.count).to be 2
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expect(Tag.count).to be 3
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expect(Tagging.count).to be 3
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expect(Tagging.where(context: "tags").count).to be 1
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expect(Tagging.where(context: "ml_tags").count).to be 2
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machine_learning = MachineLearning.new(job)
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machine_learning.send(:cleanup_proposals_comments_summary!)
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expect(RelatedContent.for_proposals.from_machine_learning.count).to be 2
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expect(RelatedContent.for_investments.from_machine_learning.count).to be 2
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expect(Tag.count).to be 3
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expect(Tagging.count).to be 3
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expect(Tagging.where(context: "tags").count).to be 1
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expect(Tagging.where(context: "ml_tags").count).to be 2
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end
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it "deletes proposals comments summary machine learning generated data" do
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create(:ml_summary_comment, commentable: create(:proposal))
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create(:ml_summary_comment, commentable: create(:budget_investment))
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expect(MlSummaryComment.where(commentable_type: "Proposal").count).to be 1
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expect(MlSummaryComment.where(commentable_type: "Budget::Investment").count).to be 1
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machine_learning = MachineLearning.new(job)
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machine_learning.send(:cleanup_proposals_comments_summary!)
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expect(MlSummaryComment.where(commentable_type: "Proposal")).to be_empty
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expect(MlSummaryComment.where(commentable_type: "Budget::Investment").count).to be 1
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end
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end
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describe "#cleanup_investments_comments_summary!" do
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it "does not delete other machine learning generated data" do
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create(:related_content, :proposals, :from_machine_learning)
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create(:related_content, :budget_investments, :from_machine_learning)
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create(:tagging, tag: create(:tag))
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create(:tagging, tag: create(:tag), context: "ml_tags", taggable: create(:proposal))
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create(:tagging, tag: create(:tag), context: "ml_tags", taggable: create(:budget_investment))
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expect(RelatedContent.for_proposals.from_machine_learning.count).to be 2
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expect(RelatedContent.for_investments.from_machine_learning.count).to be 2
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expect(Tag.count).to be 3
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expect(Tagging.count).to be 3
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expect(Tagging.where(context: "tags").count).to be 1
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expect(Tagging.where(context: "ml_tags").count).to be 2
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machine_learning = MachineLearning.new(job)
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machine_learning.send(:cleanup_investments_comments_summary!)
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expect(RelatedContent.for_proposals.from_machine_learning.count).to be 2
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expect(RelatedContent.for_investments.from_machine_learning.count).to be 2
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expect(Tag.count).to be 3
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expect(Tagging.count).to be 3
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expect(Tagging.where(context: "tags").count).to be 1
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expect(Tagging.where(context: "ml_tags").count).to be 2
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end
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it "deletes budget investments comments summary machine learning generated data" do
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create(:ml_summary_comment, commentable: create(:proposal))
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create(:ml_summary_comment, commentable: create(:budget_investment))
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expect(MlSummaryComment.where(commentable_type: "Proposal").count).to be 1
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expect(MlSummaryComment.where(commentable_type: "Budget::Investment").count).to be 1
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machine_learning = MachineLearning.new(job)
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machine_learning.send(:cleanup_investments_comments_summary!)
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expect(MlSummaryComment.where(commentable_type: "Proposal").count).to be 1
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expect(MlSummaryComment.where(commentable_type: "Budget::Investment")).to be_empty
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end
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end
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describe "#export_proposals_to_json" do
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it "creates a JSON file with all proposals" do
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first_proposal = create(:proposal)
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last_proposal = create(:proposal)
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machine_learning = MachineLearning.new(job)
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machine_learning.send(:export_proposals_to_json)
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json_file = MachineLearning.data_folder.join("proposals.json")
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json = JSON.parse(File.read(json_file))
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expect(json).to be_an Array
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expect(json.size).to be 2
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expect(json.first["id"]).to eq first_proposal.id
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expect(json.first["title"]).to eq first_proposal.title
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expect(json.first["summary"]).to eq full_sanitizer(first_proposal.summary)
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expect(json.first["description"]).to eq full_sanitizer(first_proposal.description)
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expect(json.last["id"]).to eq last_proposal.id
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expect(json.last["title"]).to eq last_proposal.title
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expect(json.last["summary"]).to eq full_sanitizer(last_proposal.summary)
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expect(json.last["description"]).to eq full_sanitizer(last_proposal.description)
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end
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end
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describe "#export_budget_investments_to_json" do
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it "creates a JSON file with all budget investments" do
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first_budget_investment = create(:budget_investment)
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last_budget_investment = create(:budget_investment)
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machine_learning = MachineLearning.new(job)
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machine_learning.send(:export_budget_investments_to_json)
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json_file = MachineLearning.data_folder.join("budget_investments.json")
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json = JSON.parse(File.read(json_file))
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expect(json).to be_an Array
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expect(json.size).to be 2
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expect(json.first["id"]).to eq first_budget_investment.id
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expect(json.first["title"]).to eq first_budget_investment.title
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expect(json.first["description"]).to eq full_sanitizer(first_budget_investment.description)
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expect(json.last["id"]).to eq last_budget_investment.id
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expect(json.last["title"]).to eq last_budget_investment.title
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expect(json.last["description"]).to eq full_sanitizer(last_budget_investment.description)
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end
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end
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describe "#export_comments_to_json" do
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it "creates a JSON file with all comments" do
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first_comment = create(:comment)
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last_comment = create(:comment)
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machine_learning = MachineLearning.new(job)
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machine_learning.send(:export_comments_to_json)
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json_file = MachineLearning.data_folder.join("comments.json")
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json = JSON.parse(File.read(json_file))
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expect(json).to be_an Array
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expect(json.size).to be 2
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expect(json.first["id"]).to eq first_comment.id
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expect(json.first["commentable_id"]).to eq first_comment.commentable_id
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expect(json.first["commentable_type"]).to eq first_comment.commentable_type
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expect(json.first["body"]).to eq full_sanitizer(first_comment.body)
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expect(json.last["id"]).to eq last_comment.id
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expect(json.last["commentable_id"]).to eq last_comment.commentable_id
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expect(json.last["commentable_type"]).to eq last_comment.commentable_type
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expect(json.last["body"]).to eq full_sanitizer(last_comment.body)
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end
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end
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describe "#run_machine_learning_scripts" do
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let!(:original_fork_mode) { DEBUGGER__::CONFIG[:fork_mode] }
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before { DEBUGGER__::CONFIG[:fork_mode] = "parent" }
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after { DEBUGGER__::CONFIG[:fork_mode] = original_fork_mode }
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it "returns true if python script executed correctly" do
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machine_learning = MachineLearning.new(job)
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command = "cd #{MachineLearning::SCRIPTS_FOLDER} && python script.py 2>&1"
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expect(machine_learning).to receive(:`).with(command) do
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Process.waitpid Process.fork { exit 0 }
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end
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expect(Mailer).not_to receive(:machine_learning_error)
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expect(machine_learning.send(:run_machine_learning_scripts)).to be true
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job.reload
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expect(job.finished_at).not_to be_present
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expect(job.error).not_to be_present
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end
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it "returns false if python script errored" do
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machine_learning = MachineLearning.new(job)
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command = "cd #{MachineLearning::SCRIPTS_FOLDER} && python script.py 2>&1"
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expect(machine_learning).to receive(:`).with(command) do
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Process.waitpid Process.fork { abort "error message" }
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end
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mailer = double("mailer")
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expect(mailer).to receive(:deliver_later)
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expect(Mailer).to receive(:machine_learning_error).and_return mailer
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expect(machine_learning.send(:run_machine_learning_scripts)).to be false
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job.reload
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expect(job.finished_at).to be_present
|
|
expect(job.error).not_to eq "error message"
|
|
end
|
|
end
|
|
|
|
describe "#import_ml_proposals_comments_summary" do
|
|
it "feeds the database using content from the JSON file generated by the machine learning script" do
|
|
machine_learning = MachineLearning.new(job)
|
|
|
|
proposal = create(:proposal)
|
|
|
|
data = [
|
|
{ commentable_id: proposal.id,
|
|
commentable_type: "Proposal",
|
|
body: "Summary comment for proposal with ID #{proposal.id}" }
|
|
]
|
|
|
|
filename = "ml_comments_summaries_proposals.json"
|
|
json_file = MachineLearning.data_folder.join(filename)
|
|
expect(File).to receive(:read).with(json_file).and_return data.to_json
|
|
|
|
machine_learning.send(:import_ml_proposals_comments_summary)
|
|
|
|
expect(proposal.summary_comment.body).to eq "Summary comment for proposal with ID #{proposal.id}"
|
|
end
|
|
end
|
|
|
|
describe "#import_ml_investments_comments_summary" do
|
|
it "feeds the database using content from the JSON file generated by the machine learning script" do
|
|
machine_learning = MachineLearning.new(job)
|
|
|
|
investment = create(:budget_investment)
|
|
|
|
data = [
|
|
{ commentable_id: investment.id,
|
|
commentable_type: "Budget::Investment",
|
|
body: "Summary comment for investment with ID #{investment.id}" }
|
|
]
|
|
|
|
filename = "ml_comments_summaries_budgets.json"
|
|
json_file = MachineLearning.data_folder.join(filename)
|
|
expect(File).to receive(:read).with(json_file).and_return data.to_json
|
|
|
|
machine_learning.send(:import_ml_investments_comments_summary)
|
|
|
|
expect(investment.summary_comment.body).to eq "Summary comment for investment with ID #{investment.id}"
|
|
end
|
|
end
|
|
|
|
describe "#import_proposals_related_content" do
|
|
it "feeds the database using content from the JSON file generated by the machine learning script" do
|
|
machine_learning = MachineLearning.new(job)
|
|
|
|
proposal = create(:proposal)
|
|
related_proposal = create(:proposal)
|
|
other_related_proposal = create(:proposal)
|
|
|
|
data = [
|
|
{
|
|
"id" => proposal.id,
|
|
"related1" => related_proposal.id,
|
|
"related2" => other_related_proposal.id
|
|
}
|
|
]
|
|
|
|
filename = "ml_related_content_proposals.json"
|
|
json_file = MachineLearning.data_folder.join(filename)
|
|
expect(File).to receive(:read).with(json_file).and_return data.to_json
|
|
|
|
machine_learning.send(:import_proposals_related_content)
|
|
|
|
expect(proposal.related_contents.count).to be 2
|
|
expect(proposal.related_contents.first.child_relationable).to eq related_proposal
|
|
expect(proposal.related_contents.last.child_relationable).to eq other_related_proposal
|
|
end
|
|
end
|
|
|
|
describe "#import_budget_investments_related_content" do
|
|
it "feeds the database using content from the JSON file generated by the machine learning script" do
|
|
machine_learning = MachineLearning.new(job)
|
|
|
|
investment = create(:budget_investment)
|
|
related_investment = create(:budget_investment)
|
|
other_related_investment = create(:budget_investment)
|
|
|
|
data = [
|
|
{
|
|
"id" => investment.id,
|
|
"related1" => related_investment.id,
|
|
"related2" => other_related_investment.id
|
|
}
|
|
]
|
|
|
|
filename = "ml_related_content_budgets.json"
|
|
json_file = MachineLearning.data_folder.join(filename)
|
|
expect(File).to receive(:read).with(json_file).and_return data.to_json
|
|
|
|
machine_learning.send(:import_budget_investments_related_content)
|
|
|
|
expect(investment.related_contents.count).to be 2
|
|
expect(investment.related_contents.first.child_relationable).to eq related_investment
|
|
expect(investment.related_contents.last.child_relationable).to eq other_related_investment
|
|
end
|
|
end
|
|
|
|
describe "#import_ml_proposals_tags" do
|
|
it "feeds the database using content from the JSON file generated by the machine learning script" do
|
|
create(:tag, name: "Existing tag")
|
|
proposal = create(:proposal)
|
|
machine_learning = MachineLearning.new(job)
|
|
|
|
tags_data = [
|
|
{
|
|
id: 0,
|
|
name: "Existing tag"
|
|
},
|
|
{
|
|
id: 1,
|
|
name: "Machine learning tag"
|
|
}
|
|
]
|
|
|
|
taggings_data = [
|
|
{
|
|
tag_id: 0,
|
|
taggable_id: proposal.id
|
|
},
|
|
{
|
|
tag_id: 1,
|
|
taggable_id: proposal.id
|
|
}
|
|
]
|
|
|
|
tags_filename = "ml_tags_proposals.json"
|
|
tags_json_file = MachineLearning.data_folder.join(tags_filename)
|
|
expect(File).to receive(:read).with(tags_json_file).and_return tags_data.to_json
|
|
|
|
taggings_filename = "ml_taggings_proposals.json"
|
|
taggings_json_file = MachineLearning.data_folder.join(taggings_filename)
|
|
expect(File).to receive(:read).with(taggings_json_file).and_return taggings_data.to_json
|
|
|
|
machine_learning.send(:import_ml_proposals_tags)
|
|
|
|
expect(Tag.count).to be 2
|
|
expect(Tag.first.name).to eq "Existing tag"
|
|
expect(Tag.last.name).to eq "Machine learning tag"
|
|
expect(proposal.tags).to be_empty
|
|
expect(proposal.ml_tags.count).to be 2
|
|
expect(proposal.ml_tags.first.name).to eq "Existing tag"
|
|
expect(proposal.ml_tags.last.name).to eq "Machine learning tag"
|
|
end
|
|
end
|
|
|
|
describe "#import_ml_investments_tags" do
|
|
it "feeds the database using content from the JSON file generated by the machine learning script" do
|
|
create(:tag, name: "Existing tag")
|
|
investment = create(:budget_investment)
|
|
machine_learning = MachineLearning.new(job)
|
|
|
|
tags_data = [
|
|
{
|
|
id: 0,
|
|
name: "Existing tag"
|
|
},
|
|
{
|
|
id: 1,
|
|
name: "Machine learning tag"
|
|
}
|
|
]
|
|
|
|
taggings_data = [
|
|
{
|
|
tag_id: 0,
|
|
taggable_id: investment.id
|
|
},
|
|
{
|
|
tag_id: 1,
|
|
taggable_id: investment.id
|
|
}
|
|
]
|
|
|
|
tags_filename = "ml_tags_budgets.json"
|
|
tags_json_file = MachineLearning.data_folder.join(tags_filename)
|
|
expect(File).to receive(:read).with(tags_json_file).and_return tags_data.to_json
|
|
|
|
taggings_filename = "ml_taggings_budgets.json"
|
|
taggings_json_file = MachineLearning.data_folder.join(taggings_filename)
|
|
expect(File).to receive(:read).with(taggings_json_file).and_return taggings_data.to_json
|
|
|
|
machine_learning.send(:import_ml_investments_tags)
|
|
|
|
expect(Tag.count).to be 2
|
|
expect(Tag.first.name).to eq "Existing tag"
|
|
expect(Tag.last.name).to eq "Machine learning tag"
|
|
expect(investment.tags).to be_empty
|
|
expect(investment.ml_tags.count).to be 2
|
|
expect(investment.ml_tags.first.name).to eq "Existing tag"
|
|
expect(investment.ml_tags.last.name).to eq "Machine learning tag"
|
|
end
|
|
end
|
|
end
|