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Intuitive framework that allows researchers to implement and test matching methodologies

Project description

FraPPE Matcha

(Framework for Automatic PPE Matching)

An open-source Simulation Framework for researchers interested in developing and testing methodologies to solve the PPE Matching Problem

Installation

In a virtual environment with Python 3.6+, pytestmatch can be installed via pip

pip install fraPPE-Matcha

Import the package using

from frappe_match import simulation sm

Test the installation with the code snippet below

from frappe_match import Simulation

# Initiate the simuation framework
s = Simulation()

# Set debug as True to monitor logs
s.debug(True)

# Run the simulation
s.run()

# Check outputs
s.get_decision() # Pandas dataframe that can be stored

# Display metrics
s.get_metrics() # Pandas dataframe that can be stored

Simulation Class

Parameters

donor_path

Path to donor data. Expected input type: csv Expected columns:

  • don_id - Unique ID for Donor (type:str)
  • date - Datetime of Request (type:datetime)
  • ppe - Type of PPE (type:str)
  • qty - Number of PPEs Requested (type:int/float)
  • don_req_id - Unique ID for Each Donor Request (type:int)
Example:
don_id date ppe qty don_req_id
don0 2020-04-09 13:08:00+00:00 faceShields 10 0
don1 2020-04-09 13:36:00+00:00 faceShields 1 1
don2 2020-04-09 13:53:00+00:00 faceShields 3000 2

Default: anon_donors.csv


recipient_path - Path to recipient data

Path to recipient data. Expected input type: csv Expected columns:

  • rec_id - Unique ID for Recipient (type:str)
  • date - Datetime of Request (type:datetime)
  • (*PPE Type column) - Every PPE type is defined as its own column and the value in these column represent the quantity the recipient requested for the respective PPE type (type: int/float)
  • rec_req_id - Unique ID for Each Recipient Request (type:int)
Example:
rec_id date disinfectingWipes surgicalCaps disposableBooties respirators handmadeMasks nitrileGloves coveralls handSanitizer safetyGlasses bodyBags gowns faceShields safetyGoggles thermometers surgicalMasks paprShield babyMonitors rec_req_id
rec0 2020-04-02 16:27:00+00:00 0 0 0 10000.0 0 10000 0 0 0 0 1000 5000 0 0 0 0 0 0
rec1 2020-04-02 16:35:00+00:00 4 0 0 9.0 9 5 0 4 0 0 9 9 0 0 0 0 0 1
rec2 2020-04-02 16:44:00+00:00 300 0 100 5.0 0 0 0 25 0 0 100 10 0 20 0 0 0 2

Default: anon_recipients.csv


distance_matrix_path

Path to distance matrix between donors and recipients. Expected input type: pickle(pandas dataframe) Expected columns:

  • don_id - Unique ID for Donnor (type:str)
  • rec_id - Unique ID for Recipient (type:str)
  • date - Datetime of Request (type:datetime)
Example:
don_id rec_id distance
don585 rec4650 540.263969
don749 rec5876 770.589552

strategy

User defined strategy to allocate PPE The function must have the following arguments:

ppestrategy(D,R,M)

where,

  • D is a pandas.DataFrame object whose rows contain the donors requests
  • R is a pandas.DataFrame object whose rows contain the recipients requests
  • M is a pandas.DataFrameobject that reports the distance between each donor and each recipient.

Default: proximity_match_strategy

Returns:

pd.dataframe of decisions with columns (don_id, rec_id, ppe, qty)

Class methods:

get_strategy()
set_strategy()

interval

Day Interval set for framework to iterate over. Default: 7 (days)

Class methods:

get_interval()
set_interval()

max_donation_qty

Maximum quantity limit for donor to donate (helps filter out dummy entries or test entries) Default: 1000 (ppe units)

Class methods:

get_max_donation_qty()
set_max_donation_qty()

writeFiles

Boolean flag to save intermediate outputs and final decisions as csv Default: False

If set to True intermediate data will be saved for every iteration as follows:

output
├── 2020-04-09
	 ├── decisions.csv
	 ├── distance_matrix.csv
	 ├── donors.csv
	 └── recipients.csv
├── 2020-04-16
	 ├── decisions.csv
	 ├── distance_matrix.csv
	 ├── donors.csv
	 └── recipients.csv
├── ...

Methods

run()

Executes the strategy function over the data in a date simulation


get_decisions()

Returns final decision output from the framework after run()


debug(bool_flag)

Sets the logging level to DEBUG if True Default: False (WARN)


0.1 - 2021-05-12

  • Initial public release

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