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cerebro.py
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cerebro.py
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# The MIT License (MIT)
#
# Copyright (c) 2013 Numenta, Inc.
#
# Permission is hereby granted, free of charge, to any person obtaining a copy
# of this software and associated documentation files (the "Software"), to deal
# in the Software without restriction, including without limitation the rights
# to use, copy, modify, merge, publish, distribute, sublicense, and/or sell
# copies of the Software, and to permit persons to whom the Software is
# furnished to do so, subject to the following conditions:
#
# The above copyright notice and this permission notice shall be included in
# all copies or substantial portions of the Software.
#
# THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND, EXPRESS OR
# IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF MERCHANTABILITY,
# FITNESS FOR A PARTICULAR PURPOSE AND NONINFRINGEMENT. IN NO EVENT SHALL THE
# AUTHORS OR COPYRIGHT HOLDERS BE LIABLE FOR ANY CLAIM, DAMAGES OR OTHER
# LIABILITY, WHETHER IN AN ACTION OF CONTRACT, TORT OR OTHERWISE, ARISING FROM,
# OUT OF OR IN CONNECTION WITH THE SOFTWARE OR THE USE OR OTHER DEALINGS IN
# THE SOFTWARE.
from gevent import monkey; monkey.patch_all()
import web
import os
from cerebro_model import CerebroModel
from experiment_runner import SimulationDataElement
import json
import pprint
import pymongo
from experiment_db import ExperimentDB
USE_MONGO = True
urls = (
r'^/$', 'index',
r'^/anomaly$','anomaly',
r'^/anomaly/setThreshold$','setThreshold',
r'^/loadDescriptionFile$', 'loadDescriptionFile',
r'^/runCurrentExperiment$', 'runCurrentExperiment',
r'^/stopCurrentExperiment$', 'stopCurrentExperiment',
r'^/setPredictedField$', 'setPredictedField',
r'^/getPredictions$', 'getPredictions',
r'^/setModelParams$', 'setModelParams',
r'^/runExperiment$', 'runExperiment',
r'^/createDataset$', 'createDataset',
r'^/saveDataset$', 'saveDataset',
r'^/saveDescription$', 'saveDescriptionFile',
r'^/getDataAtTime$', 'getDataAtTime',
# Managing Experiments
r'^/experiment/rename$', 'setExperimentName',
r'^/experiment/list$', 'ExperimentList',
r'^/experiment/load$', 'loadExperiment',
r'^/experiment/delete$', 'deleteExperiment'
)
render = web.template.render("templates/")
web.webapi.internalerror = web.debugerror
class index:
def GET(self):
f = open("templates/index.html")
s = f.read()
f.close()
CerebroModel.USE_MONGO = USE_MONGO
return s
class anomaly:
def GET(self):
f = open("templates/index_anomaly.html")
s = f.read()
f.close()
CerebroModel.USE_MONGO = USE_MONGO
return s
class getEngineState:
def POST(self):
state = {}
state['consoleOptions'] = SimulationDataElement._fields
return json.dumps(state)
class setPredictedField:
def POST(self):
cerebro = CerebroModel.get()
predictedFieldname = web.input()['fieldname']
cerebro.setPredictedField(fieldname=predictedFieldname)
return ""
class setModelParams:
def POST(self):
cerebro = CerebroModel.get()
params = eval(web.input()['params'])
cerebro.setModelParams(params)
return
class runExperiment:
def POST(self):
expType = web.input()["type"]
cerebro = CerebroModel.get()
cerebro.name = cerebro.default_name
results = cerebro.runCurrentExperiment(expType)
return json.dumps(results)
class loadExperiment:
def POST(self):
expType = web.input()["type"]
name = web.input()["name"]
cerebro = CerebroModel.get()
cerebro.name = name
results = cerebro.runCurrentExperiment(expType, True)
return json.dumps(results)
class deleteExperiment:
def POST(self):
name = web.input()["name"]
return json.dumps(ExperimentDB.delete(name))
class setThreshold:
def POST(self):
newThreshold = web.input()["threshold"]
cerebro = CerebroModel.get()
results = cerebro.setClassifierThreshold(newThreshold)
return json.dumps(results)
class stopCurrentExperiment:
def POST(self):
cerebro = CerebroModel.get()
cerebro.stopCurrentExperiment()
return ""
class getPredictions:
def POST(self):
cerebro = CerebroModel.get()
returnData = json.dumps(cerebro.getLatestPredictions())
web.header("Content-Type", "application/json")
return returnData
class getDataAtTime:
def POST(self):
""" Get information about the current model at a specific timestep"""
cerebro = CerebroModel.get()
dataInput = dict(web.input())
data = cerebro.getDataAtTime(dataInput)
web.header("Content-Type", "application/json")
return json.dumps(data)
class loadDescriptionFile:
def POST(self):
""" Load a dataset/model from a description.py """
cerebro = CerebroModel.get()
params = web.input()
cerebro.loadDescriptionFile(descriptionFile = params["experimentFile"],
subDescriptionFile= params["subExperimentFile"])
modelDesc = cerebro.getCurrentModelParams()
return pprint.pformat(modelDesc['modelParams'])
class createDataset:
def POST(self):
""" Create a dataset from a function """
cerebro = CerebroModel.get()
fnText = web.input()["text"]
iterations = int(web.input()["iterations"])
cerebro.createProceduralDataset(fnText, iterations)
modelDesc = cerebro.getCurrentModelParams()
return pprint.pformat(modelDesc['modelParams'])
class saveDataset:
def GET(self):
""" FIXME: Right now, this returns the csv as a text file, so that the user
can use the "save file as" button """
cerebro = CerebroModel.get()
text = cerebro.getDatasetText()
web.header("Content-Type", "text/plain")
web.header('Content-Disposition', "attachment; filename=data.csv")
return text
class saveDescriptionFile:
def GET(self):
""" FIXME: Right now, this returns the csv as a text file, so that the user
can use the "save file as" button """
cerebro = CerebroModel.get()
text = cerebro.getDescriptionText()
web.header("Content-Type", "text/plain")
web.header('Content-Disposition', "attachment; filename=description.py")
return text
# Managing Experiments
class setExperimentName:
def POST(self):
""" Save the currently used mongoDB for use later """
name = web.input()["name"]
cerebro = CerebroModel.get()
results = cerebro.setExperimentName(name)
return json.dumps(results)
class ExperimentList:
def GET(self):
return json.dumps(ExperimentDB.list())
app = web.application(urls, globals())
def setup():
if USE_MONGO:
import pymongo
from subprocess import Popen
import subprocess
try:
conn = pymongo.Connection()
except pymongo.errors.AutoReconnect:
print "MongoDB not running. Starting..."
dbPath = os.path.expanduser('~/nta/mongodb/')
if not os.path.exists(dbPath):
print 'Directory for the MongoDB files does not exist. Creating ...'
os.makedirs(dbPath)
pid = Popen(["mongod --dbpath ~/nta/mongodb/"], shell=True).pid
print "MongoDB running with process id", pid
if __name__ == "__main__":
setup()
app.run()