This algorithm is a legacy one. The API has changed since its implementation. New versions and forks will need to be updated.
This algorithm is splittable

Algorithms have at least one input and one output. All algorithm endpoints are organized in groups. Groups are used by the platform to indicate which inputs and outputs are synchronized together. The first group is automatically synchronized with the channel defined by the block in which the algorithm is deployed.

Group: main

Endpoint Name Data Format Nature
keystroke tutorial/atvs_keystroke/1 Input
template_id system/text/1 Input
keystroke_model aythamimm/keystroke_model/8 Output

The code for this algorithm in Python
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This algorithm is designed to be used as a simple enrollment strategy of keystroke data. It enrolls a model from several features by computing the average and standard deviation of the enrollment features.

Note

All features must have the same length.

Experiments

Updated Name Databases/Protocols Analyzers
robertodaza/aythamimm/atvs_keystroke_btas_benchmark/1/proof6 atvskeystroke/1@A robertodaza/proof0/4
robertodaza/aythamimm/atvs_keystroke_btas_benchmark/1/proof5 atvskeystroke/1@A robertodaza/proof0/3
robertodaza/aythamimm/atvs_keystroke_btas_benchmark/1/proof4 atvskeystroke/1@A robertodaza/proof0/3
robertodaza/aythamimm/atvs_keystroke_btas_benchmark/1/proof3-template_ids atvskeystroke/1@A robertodaza/proof0/2
robertodaza/aythamimm/atvs_keystroke_btas_benchmark/1/proof0 atvskeystroke/1@A robertodaza/proof0/1
aythamimm/aythamimm/atvs_keystroke_btas_benchmark/1/ATVS_keystroke_beckmark_btas2015 atvskeystroke/1@A aythamimm/keystroke_btas15_analyzer/1

This table shows the number of times this algorithm has been successfully run using the given environment. Note this does not provide sufficient information to evaluate if the algorithm will run when submitted to different conditions.

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