Making Label an Attribute - Decision Tree Process

Eric005Eric005 Member Posts: 9 Contributor I
edited November 2018 in Help

HI All,


I'm currently working on a presentation piece using time series data for a binary classifier of stock market direction. I generate a custom attribute that makes a True/False indication (Up/Down) of a forward market price (this is under the column as Label2) using actual forward data in the series, and then my standard label attribute is the predicted value through a boosted decision tree.  Here is my question, when I select attributes as a final step going into the validation I will select the market date and market data, and this generally produces about a 74% accuracy.  If I also select the label as an attribute it then produces a 98% accuracy of prediction (which to me is absurd).  So I'm trying to understand the mechanics of what makes listing the label as an attribute have such a radical change in predictions - is the decision tree using previous predictions through the windowing function to influence forward predictions in a sort of looping system?  Does any of this make sense? 

Feedback welcome.  XML below.   

 

Thanks!

Eric

 

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  • JEdwardJEdward RapidMiner Certified Analyst, RapidMiner Certified Expert, Member Posts: 578 Unicorn

    I am sure Mr Ott will have a lot more to add than I on this.  He has a series of tutorials on exactly this.  

    http://www.neuralmarkettrends.com/building-an-ai-financial-market-model-lesson-i/

     

    A few really quick things from a short glance. 

    Use sliding window validation for your time series, otherwise inside the XVal you are using examples from the future to predict the past. 

    Where you set your other labels to regular, you can actually use Set Role to set the roles as Label1, Label2, etc.... they don't need to be regular if you don't want your model to use them. 

  • Eric005Eric005 Member Posts: 9 Contributor I

    Thank you for the Reply and Assistance.  

     

    I realized the target attribute which generates the binary control was not correct, I have now corrected this in a subsequent arrangement.  

    In this case, when I set a role (Set Role (2)) for the label to also be a regular attribute it, it again improves the accuracy.  

     

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    <operator activated="false" class="neural_net" compatibility="7.4.000" expanded="true" height="82" name="Neural Net" width="90" x="782" y="391">
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    <parameter key="decay" value="true"/>
    </operator>
    <operator activated="false" class="bagging" compatibility="7.4.000" expanded="true" height="82" name="Bagging" width="90" x="782" y="493">
    <process expanded="true">
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    <portSpacing port="sink_model" spacing="0"/>
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    <operator activated="true" class="retrieve" compatibility="7.4.000" expanded="true" height="68" name="Retrieve Date_NDX_SPX_VIX_RUT_DJX_HOLC Data (2)" width="90" x="45" y="34">
    <parameter key="repository_entry" value="../Date_NDX_SPX_VIX_RUT_DJX_HOLC Data"/>
    </operator>
    <operator activated="true" class="select_attributes" compatibility="7.4.000" expanded="true" height="82" name="Select Attributes" width="90" x="179" y="34">
    <parameter key="attribute_filter_type" value="subset"/>
    <parameter key="attributes" value="SPX Close|SPX High|SPX Low|SPX Open|Date"/>
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    <operator activated="true" class="set_role" compatibility="7.4.000" expanded="true" height="82" name="Set Role" width="90" x="313" y="34">
    <parameter key="attribute_name" value="SPX Close"/>
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    <parameter key="Date" value="id"/>
    <parameter key="SPX Close" value="label"/>
    <parameter key="SPX Close" value="regular"/>
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    <operator activated="true" class="series:windowing" compatibility="7.4.000" expanded="true" height="82" name="Windowing" width="90" x="447" y="34">
    <parameter key="window_size" value="10"/>
    <parameter key="create_label" value="true"/>
    <parameter key="label_attribute" value="SPX Close"/>
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    <parameter key="horizon" value="5"/>
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    <operator activated="true" class="generate_attributes" compatibility="7.4.000" expanded="true" height="82" name="Generate Attributes" width="90" x="45" y="187">
    <list key="function_descriptions">
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    <parameter key="SPXClose2" value="[SPX Close-0]"/>
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    </operator>
    <operator activated="true" class="set_role" compatibility="7.4.000" expanded="true" height="82" name="Set Role (2)" width="90" x="179" y="187">
    <parameter key="attribute_name" value="BinaryForward"/>
    <parameter key="target_role" value="label"/>
    <list key="set_additional_roles">
    <parameter key="label" value="regular"/>
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    <operator activated="true" class="quantx1:security_return_operator" compatibility="1.0.006" expanded="true" height="68" name="Differencing" width="90" x="313" y="187">
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    <parameter key="attribute_filter_type" value="subset"/>
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    <connect from_port="training" to_op="Gradient Boosted Trees (6)" to_port="training set"/>
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    <process expanded="true">
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    <connect from_port="model" to_op="Apply Model (4)" to_port="model"/>
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    <connect from_op="Performance (4)" from_port="performance" to_port="averagable 1"/>
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    <process expanded="true">
    <operator activated="false" class="k_nn" compatibility="7.4.000" expanded="true" height="82" name="k-NN" width="90" x="112" y="187"/>
    <operator activated="false" class="h2o:gradient_boosted_trees" compatibility="7.4.000" expanded="true" height="103" name="Gradient Boosted Trees (2)" width="90" x="112" y="34">
    <parameter key="maximal_depth" value="10"/>
    <list key="expert_parameters"/>
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    <operator activated="false" class="concurrency:parallel_decision_tree" compatibility="7.4.000" expanded="true" height="82" name="Decision Tree (2)" width="90" x="112" y="289"/>
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    <process expanded="true">
    <operator activated="true" class="h2o:gradient_boosted_trees" compatibility="7.4.000" expanded="true" height="103" name="Gradient Boosted Trees (3)" width="90" x="179" y="34">
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    <list key="expert_parameters"/>
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    <connect from_port="training set" to_op="Gradient Boosted Trees (3)" to_port="training set"/>
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    <operator activated="false" class="weka:W-IBk" compatibility="7.3.000" expanded="true" height="82" name="W-IBk" width="90" x="246" y="34"/>
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    <list key="expert_parameters"/>
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    <connect from_port="training set" to_op="Gradient Boosted Trees (4)" to_port="training set"/>
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    <process expanded="true">
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    <operator activated="false" class="h2o:gradient_boosted_trees" compatibility="7.4.000" expanded="true" height="103" name="Gradient Boosted Trees (5)" width="90" x="313" y="238">
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    <operator activated="false" class="naive_bayes" compatibility="7.4.000" expanded="true" height="82" name="Naive Bayes" width="90" x="313" y="391"/>
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    <operator activated="false" class="h2o:logistic_regression" compatibility="7.4.000" expanded="true" height="103" name="Logistic Regression (2)" width="90" x="380" y="289"/>
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    <operator activated="true" class="performance_binominal_classification" compatibility="7.4.000" expanded="true" height="82" name="Performance (3)" width="90" x="246" y="34">
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    <parameter key="AUC" value="true"/>
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    <parameter key="true_positive" value="true"/>
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    <parameter key="sensitivity" value="true"/>
    <parameter key="positive_predictive_value" value="true"/>
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    <process expanded="true">
    <operator activated="true" class="apply_model" compatibility="7.4.000" expanded="true" height="82" name="Apply Model (3)" width="90" x="112" y="34">
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    <operator activated="true" class="performance_classification" compatibility="7.4.000" expanded="true" height="82" name="Performance" width="90" x="246" y="34">
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    <connect from_port="model" to_op="Apply Model (3)" to_port="model"/>
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    <portSpacing port="sink_performance 2" spacing="0"/>
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    </operator>
    <connect from_op="Retrieve Date_NDX_SPX_VIX_RUT_DJX_HOLC Data (2)" from_port="output" to_op="Select Attributes" to_port="example set input"/>
    <connect from_op="Select Attributes" from_port="example set output" to_op="Set Role" to_port="example set input"/>
    <connect from_op="Set Role" from_port="example set output" to_op="Windowing" to_port="example set input"/>
    <connect from_op="Windowing" from_port="example set output" to_op="Generate Attributes" to_port="example set input"/>
    <connect from_op="Generate Attributes" from_port="example set output" to_op="Set Role (2)" to_port="example set input"/>
    <connect from_op="Set Role (2)" from_port="example set output" to_op="Differencing" to_port="example set input"/>
    <connect from_op="Differencing" from_port="example set output" to_op="Replace Missing Values" to_port="example set input"/>
    <connect from_op="Replace Missing Values" from_port="example set output" to_op="Validation (3)" to_port="training"/>
    <connect from_op="Validation (3)" from_port="model" to_port="result 1"/>
    <connect from_op="Validation (3)" from_port="training" to_port="result 2"/>
    <connect from_op="Validation (3)" from_port="averagable 1" to_port="result 3"/>
    <portSpacing port="source_input 1" spacing="0"/>
    <portSpacing port="sink_result 1" spacing="0"/>
    <portSpacing port="sink_result 2" spacing="0"/>
    <portSpacing port="sink_result 3" spacing="0"/>
    <portSpacing port="sink_result 4" spacing="0"/>
    </process>
    </operator>
    </process>

  • Eric005Eric005 Member Posts: 9 Contributor I

    Thanks Thomas

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