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July 6, 2019 00:33
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{ | |
"cells": [ | |
{ | |
"cell_type": "code", | |
"execution_count": null, | |
"metadata": {}, | |
"outputs": [], | |
"source": [ | |
"# 911 Calls Capstone Project" | |
] | |
}, | |
{ | |
"cell_type": "markdown", | |
"metadata": {}, | |
"source": [ | |
"For this capstone project we will be analyzing some 911 call data from [Kaggle](https://www.kaggle.com/mchirico/montcoalert). The data contains the following fields:\n", | |
"\n", | |
"* lat : String variable, Latitude\n", | |
"* lng: String variable, Longitude\n", | |
"* desc: String variable, Description of the Emergency Call\n", | |
"* zip: String variable, Zipcode\n", | |
"* title: String variable, Title\n", | |
"* timeStamp: String variable, YYYY-MM-DD HH:MM:SS\n", | |
"* twp: String variable, Township\n", | |
"* addr: String variable, Address\n", | |
"* e: String variable, Dummy variable (always 1)\n", | |
"\n", | |
"Just go along with this notebook and try to complete the instructions or answer the questions in bold using your Python and Data Science skills!" | |
] | |
}, | |
{ | |
"cell_type": "markdown", | |
"metadata": {}, | |
"source": [ | |
"## Data and Setup" | |
] | |
}, | |
{ | |
"cell_type": "markdown", | |
"metadata": {}, | |
"source": [ | |
"____\n", | |
"** Import numpy and pandas **" | |
] | |
}, | |
{ | |
"cell_type": "code", | |
"execution_count": 25, | |
"metadata": { | |
"collapsed": true | |
}, | |
"outputs": [ | |
{ | |
"name": "stdout", | |
"output_type": "stream", | |
"text": [ | |
"Hello World \n" | |
] | |
} | |
], | |
"source": [ | |
"import numpy as np \n", | |
"import pandas as pd \n", | |
"print('Hello World ')" | |
] | |
}, | |
{ | |
"cell_type": "markdown", | |
"metadata": {}, | |
"source": [ | |
"** Import visualization libraries and set %matplotlib inline. **" | |
] | |
}, | |
{ | |
"cell_type": "code", | |
"execution_count": 2, | |
"metadata": { | |
"collapsed": false | |
}, | |
"outputs": [], | |
"source": [ | |
"import matplotlib.pyplot as plt \n", | |
"%matplotlib inline " | |
] | |
}, | |
{ | |
"cell_type": "markdown", | |
"metadata": {}, | |
"source": [ | |
"** Read in the csv file as a dataframe called df **" | |
] | |
}, | |
{ | |
"cell_type": "code", | |
"execution_count": 3, | |
"metadata": { | |
"collapsed": true | |
}, | |
"outputs": [], | |
"source": [ | |
"df = pd.read_csv('911.csv')" | |
] | |
}, | |
{ | |
"cell_type": "markdown", | |
"metadata": {}, | |
"source": [ | |
"** Check the info() of the df **" | |
] | |
}, | |
{ | |
"cell_type": "code", | |
"execution_count": 4, | |
"metadata": { | |
"collapsed": false | |
}, | |
"outputs": [ | |
{ | |
"name": "stdout", | |
"output_type": "stream", | |
"text": [ | |
"<class 'pandas.core.frame.DataFrame'>\n", | |
"RangeIndex: 99492 entries, 0 to 99491\n", | |
"Data columns (total 9 columns):\n", | |
"lat 99492 non-null float64\n", | |
"lng 99492 non-null float64\n", | |
"desc 99492 non-null object\n", | |
"zip 86637 non-null float64\n", | |
"title 99492 non-null object\n", | |
"timeStamp 99492 non-null object\n", | |
"twp 99449 non-null object\n", | |
"addr 98973 non-null object\n", | |
"e 99492 non-null int64\n", | |
"dtypes: float64(3), int64(1), object(5)\n", | |
"memory usage: 6.8+ MB\n" | |
] | |
} | |
], | |
"source": [ | |
"df.info()" | |
] | |
}, | |
{ | |
"cell_type": "markdown", | |
"metadata": {}, | |
"source": [ | |
"** Check the head of df **" | |
] | |
}, | |
{ | |
"cell_type": "code", | |
"execution_count": 5, | |
"metadata": { | |
"collapsed": false | |
}, | |
"outputs": [ | |
{ | |
"data": { | |
"text/html": [ | |
"<div>\n", | |
"<style scoped>\n", | |
" .dataframe tbody tr th:only-of-type {\n", | |
" vertical-align: middle;\n", | |
" }\n", | |
"\n", | |
" .dataframe tbody tr th {\n", | |
" vertical-align: top;\n", | |
" }\n", | |
"\n", | |
" .dataframe thead th {\n", | |
" text-align: right;\n", | |
" }\n", | |
"</style>\n", | |
"<table border=\"1\" class=\"dataframe\">\n", | |
" <thead>\n", | |
" <tr style=\"text-align: right;\">\n", | |
" <th></th>\n", | |
" <th>lat</th>\n", | |
" <th>lng</th>\n", | |
" <th>desc</th>\n", | |
" <th>zip</th>\n", | |
" <th>title</th>\n", | |
" <th>timeStamp</th>\n", | |
" <th>twp</th>\n", | |
" <th>addr</th>\n", | |
" <th>e</th>\n", | |
" </tr>\n", | |
" </thead>\n", | |
" <tbody>\n", | |
" <tr>\n", | |
" <th>0</th>\n", | |
" <td>40.297876</td>\n", | |
" <td>-75.581294</td>\n", | |
" <td>REINDEER CT & DEAD END; NEW HANOVER; Station ...</td>\n", | |
" <td>19525.0</td>\n", | |
" <td>EMS: BACK PAINS/INJURY</td>\n", | |
" <td>2015-12-10 17:40:00</td>\n", | |
" <td>NEW HANOVER</td>\n", | |
" <td>REINDEER CT & DEAD END</td>\n", | |
" <td>1</td>\n", | |
" </tr>\n", | |
" <tr>\n", | |
" <th>1</th>\n", | |
" <td>40.258061</td>\n", | |
" <td>-75.264680</td>\n", | |
" <td>BRIAR PATH & WHITEMARSH LN; HATFIELD TOWNSHIP...</td>\n", | |
" <td>19446.0</td>\n", | |
" <td>EMS: DIABETIC EMERGENCY</td>\n", | |
" <td>2015-12-10 17:40:00</td>\n", | |
" <td>HATFIELD TOWNSHIP</td>\n", | |
" <td>BRIAR PATH & WHITEMARSH LN</td>\n", | |
" <td>1</td>\n", | |
" </tr>\n", | |
" <tr>\n", | |
" <th>2</th>\n", | |
" <td>40.121182</td>\n", | |
" <td>-75.351975</td>\n", | |
" <td>HAWS AVE; NORRISTOWN; 2015-12-10 @ 14:39:21-St...</td>\n", | |
" <td>19401.0</td>\n", | |
" <td>Fire: GAS-ODOR/LEAK</td>\n", | |
" <td>2015-12-10 17:40:00</td>\n", | |
" <td>NORRISTOWN</td>\n", | |
" <td>HAWS AVE</td>\n", | |
" <td>1</td>\n", | |
" </tr>\n", | |
" <tr>\n", | |
" <th>3</th>\n", | |
" <td>40.116153</td>\n", | |
" <td>-75.343513</td>\n", | |
" <td>AIRY ST & SWEDE ST; NORRISTOWN; Station 308A;...</td>\n", | |
" <td>19401.0</td>\n", | |
" <td>EMS: CARDIAC EMERGENCY</td>\n", | |
" <td>2015-12-10 17:40:01</td>\n", | |
" <td>NORRISTOWN</td>\n", | |
" <td>AIRY ST & SWEDE ST</td>\n", | |
" <td>1</td>\n", | |
" </tr>\n", | |
" <tr>\n", | |
" <th>4</th>\n", | |
" <td>40.251492</td>\n", | |
" <td>-75.603350</td>\n", | |
" <td>CHERRYWOOD CT & DEAD END; LOWER POTTSGROVE; S...</td>\n", | |
" <td>NaN</td>\n", | |
" <td>EMS: DIZZINESS</td>\n", | |
" <td>2015-12-10 17:40:01</td>\n", | |
" <td>LOWER POTTSGROVE</td>\n", | |
" <td>CHERRYWOOD CT & DEAD END</td>\n", | |
" <td>1</td>\n", | |
" </tr>\n", | |
" </tbody>\n", | |
"</table>\n", | |
"</div>" | |
], | |
"text/plain": [ | |
" lat lng desc \\\n", | |
"0 40.297876 -75.581294 REINDEER CT & DEAD END; NEW HANOVER; Station ... \n", | |
"1 40.258061 -75.264680 BRIAR PATH & WHITEMARSH LN; HATFIELD TOWNSHIP... \n", | |
"2 40.121182 -75.351975 HAWS AVE; NORRISTOWN; 2015-12-10 @ 14:39:21-St... \n", | |
"3 40.116153 -75.343513 AIRY ST & SWEDE ST; NORRISTOWN; Station 308A;... \n", | |
"4 40.251492 -75.603350 CHERRYWOOD CT & DEAD END; LOWER POTTSGROVE; S... \n", | |
"\n", | |
" zip title timeStamp twp \\\n", | |
"0 19525.0 EMS: BACK PAINS/INJURY 2015-12-10 17:40:00 NEW HANOVER \n", | |
"1 19446.0 EMS: DIABETIC EMERGENCY 2015-12-10 17:40:00 HATFIELD TOWNSHIP \n", | |
"2 19401.0 Fire: GAS-ODOR/LEAK 2015-12-10 17:40:00 NORRISTOWN \n", | |
"3 19401.0 EMS: CARDIAC EMERGENCY 2015-12-10 17:40:01 NORRISTOWN \n", | |
"4 NaN EMS: DIZZINESS 2015-12-10 17:40:01 LOWER POTTSGROVE \n", | |
"\n", | |
" addr e \n", | |
"0 REINDEER CT & DEAD END 1 \n", | |
"1 BRIAR PATH & WHITEMARSH LN 1 \n", | |
"2 HAWS AVE 1 \n", | |
"3 AIRY ST & SWEDE ST 1 \n", | |
"4 CHERRYWOOD CT & DEAD END 1 " | |
] | |
}, | |
"execution_count": 5, | |
"metadata": {}, | |
"output_type": "execute_result" | |
} | |
], | |
"source": [ | |
"df.head()" | |
] | |
}, | |
{ | |
"cell_type": "markdown", | |
"metadata": {}, | |
"source": [ | |
"## Basic Questions" | |
] | |
}, | |
{ | |
"cell_type": "markdown", | |
"metadata": {}, | |
"source": [ | |
"** What are the top 5 zipcodes for 911 calls? **" | |
] | |
}, | |
{ | |
"cell_type": "code", | |
"execution_count": 7, | |
"metadata": { | |
"collapsed": false | |
}, | |
"outputs": [ | |
{ | |
"data": { | |
"text/plain": [ | |
"19401.0 6979\n", | |
"19464.0 6643\n", | |
"19403.0 4854\n", | |
"19446.0 4748\n", | |
"19406.0 3174\n", | |
"Name: zip, dtype: int64" | |
] | |
}, | |
"execution_count": 7, | |
"metadata": {}, | |
"output_type": "execute_result" | |
} | |
], | |
"source": [ | |
"df['zip'].value_counts().head(5)" | |
] | |
}, | |
{ | |
"cell_type": "markdown", | |
"metadata": {}, | |
"source": [ | |
"** What are the top 5 townships (twp) for 911 calls? **" | |
] | |
}, | |
{ | |
"cell_type": "code", | |
"execution_count": 8, | |
"metadata": { | |
"collapsed": false | |
}, | |
"outputs": [ | |
{ | |
"data": { | |
"text/plain": [ | |
"LOWER MERION 8443\n", | |
"ABINGTON 5977\n", | |
"NORRISTOWN 5890\n", | |
"UPPER MERION 5227\n", | |
"CHELTENHAM 4575\n", | |
"Name: twp, dtype: int64" | |
] | |
}, | |
"execution_count": 8, | |
"metadata": {}, | |
"output_type": "execute_result" | |
} | |
], | |
"source": [ | |
"df['twp'].value_counts().head()" | |
] | |
}, | |
{ | |
"cell_type": "markdown", | |
"metadata": {}, | |
"source": [ | |
"** Take a look at the 'title' column, how many unique title codes are there? **" | |
] | |
}, | |
{ | |
"cell_type": "code", | |
"execution_count": 11, | |
"metadata": { | |
"collapsed": false | |
}, | |
"outputs": [ | |
{ | |
"data": { | |
"text/plain": [ | |
"110" | |
] | |
}, | |
"execution_count": 11, | |
"metadata": {}, | |
"output_type": "execute_result" | |
} | |
], | |
"source": [ | |
"df['title'].nunique()" | |
] | |
}, | |
{ | |
"cell_type": "markdown", | |
"metadata": {}, | |
"source": [ | |
"## Creating new features" | |
] | |
}, | |
{ | |
"cell_type": "markdown", | |
"metadata": {}, | |
"source": [ | |
"** In the titles column there are \"Reasons/Departments\" specified before the title code. These are EMS, Fire, and Traffic. Use .apply() with a custom lambda expression to create a new column called \"Reason\" that contains this string value.** \n", | |
"\n", | |
"**For example, if the title column value is EMS: BACK PAINS/INJURY , the Reason column value would be EMS. **" | |
] | |
}, | |
{ | |
"cell_type": "code", | |
"execution_count": 13, | |
"metadata": { | |
"collapsed": true | |
}, | |
"outputs": [], | |
"source": [ | |
"df['Reason']= df['title'].apply(lambda title: title.split(':')[0])" | |
] | |
}, | |
{ | |
"cell_type": "markdown", | |
"metadata": {}, | |
"source": [ | |
"** What is the most common Reason for a 911 call based off of this new column? **" | |
] | |
}, | |
{ | |
"cell_type": "code", | |
"execution_count": 16, | |
"metadata": { | |
"collapsed": false | |
}, | |
"outputs": [ | |
{ | |
"data": { | |
"text/plain": [ | |
"EMS 48877\n", | |
"Name: Reason, dtype: int64" | |
] | |
}, | |
"execution_count": 16, | |
"metadata": {}, | |
"output_type": "execute_result" | |
} | |
], | |
"source": [ | |
"df['Reason'].value_counts().head(1)" | |
] | |
}, | |
{ | |
"cell_type": "markdown", | |
"metadata": {}, | |
"source": [ | |
"** Now use seaborn to create a countplot of 911 calls by Reason. **" | |
] | |
}, | |
{ | |
"cell_type": "code", | |
"execution_count": 17, | |
"metadata": { | |
"collapsed": false | |
}, | |
"outputs": [ | |
{ | |
"data": { | |
"text/plain": [ | |
"<matplotlib.axes._subplots.AxesSubplot at 0x16795077358>" | |
] | |
}, | |
"execution_count": 17, | |
"metadata": {}, | |
"output_type": "execute_result" | |
}, | |
{ | |
"data": { | |
"image/png": 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\n", | |
"text/plain": [ | |
"<Figure size 432x288 with 1 Axes>" | |
] | |
}, | |
"metadata": { | |
"needs_background": "light" | |
}, | |
"output_type": "display_data" | |
} | |
], | |
"source": [ | |
"import seaborn as sns\n", | |
"sns.countplot(x='Reason',data = df)\n" | |
] | |
}, | |
{ | |
"cell_type": "markdown", | |
"metadata": {}, | |
"source": [ | |
"___\n", | |
"** Now let us begin to focus on time information. What is the data type of the objects in the timeStamp column? **" | |
] | |
}, | |
{ | |
"cell_type": "code", | |
"execution_count": 20, | |
"metadata": { | |
"collapsed": false | |
}, | |
"outputs": [ | |
{ | |
"data": { | |
"text/plain": [ | |
"str" | |
] | |
}, | |
"execution_count": 20, | |
"metadata": {}, | |
"output_type": "execute_result" | |
} | |
], | |
"source": [ | |
"type(df['timeStamp'].iloc[0])" | |
] | |
}, | |
{ | |
"cell_type": "markdown", | |
"metadata": {}, | |
"source": [ | |
"** You should have seen that these timestamps are still strings. Use [pd.to_datetime](http://pandas.pydata.org/pandas-docs/stable/generated/pandas.to_datetime.html) to convert the column from strings to DateTime objects. **" | |
] | |
}, | |
{ | |
"cell_type": "code", | |
"execution_count": 21, | |
"metadata": { | |
"collapsed": true | |
}, | |
"outputs": [], | |
"source": [ | |
"df['timeStamp']=pd.to_datetime(df['timeStamp'])" | |
] | |
}, | |
{ | |
"cell_type": "markdown", | |
"metadata": {}, | |
"source": [ | |
"** You can now grab specific attributes from a Datetime object by calling them. For example:**\n", | |
"\n", | |
" time = df['timeStamp'].iloc[0]\n", | |
" time.hour\n", | |
"\n", | |
"**You can use Jupyter's tab method to explore the various attributes you can call. Now that the timestamp column are actually DateTime objects, use .apply() to create 3 new columns called Hour, Month, and Day of Week. You will create these columns based off of the timeStamp column, reference the solutions if you get stuck on this step.**" | |
] | |
}, | |
{ | |
"cell_type": "code", | |
"execution_count": 24, | |
"metadata": { | |
"collapsed": false | |
}, | |
"outputs": [ | |
{ | |
"data": { | |
"text/plain": [ | |
"0" | |
] | |
}, | |
"execution_count": 24, | |
"metadata": {}, | |
"output_type": "execute_result" | |
} | |
], | |
"source": [ | |
"time = df['timeStamp'].iloc[0]\n", | |
"time.hour\n", | |
"time.second" | |
] | |
}, | |
{ | |
"cell_type": "markdown", | |
"metadata": {}, | |
"source": [ | |
"** Notice how the Day of Week is an integer 0-6. Use the .map() with this dictionary to map the actual string names to the day of the week: **\n", | |
"\n", | |
" dmap = {0:'Mon',1:'Tue',2:'Wed',3:'Thu',4:'Fri',5:'Sat',6:'Sun'}" | |
] | |
}, | |
{ | |
"cell_type": "code", | |
"execution_count": 143, | |
"metadata": { | |
"collapsed": false | |
}, | |
"outputs": [], | |
"source": [] | |
}, | |
{ | |
"cell_type": "code", | |
"execution_count": 144, | |
"metadata": { | |
"collapsed": false | |
}, | |
"outputs": [], | |
"source": [] | |
}, | |
{ | |
"cell_type": "markdown", | |
"metadata": {}, | |
"source": [ | |
"** Now use seaborn to create a countplot of the Day of Week column with the hue based off of the Reason column. **" | |
] | |
}, | |
{ | |
"cell_type": "code", | |
"execution_count": 168, | |
"metadata": { | |
"collapsed": false | |
}, | |
"outputs": [ | |
{ | |
"data": { | |
"text/plain": [ | |
"<matplotlib.legend.Legend at 0x12f614048>" | |
] | |
}, | |
"execution_count": 168, | |
"metadata": {}, | |
"output_type": "execute_result" | |
}, | |
{ | |
"data": { | |
"image/png": 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fGMnMt9WvF1F1p50OfDIiRoC9gFX1LrPoks9/M7Hf21StOda7M/ORuu69VK2U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\n", | |
"text/plain": [ | |
"<matplotlib.figure.Figure at 0x12f6100b8>" | |
] | |
}, | |
"metadata": {}, | |
"output_type": "display_data" | |
} | |
], | |
"source": [] | |
}, | |
{ | |
"cell_type": "markdown", | |
"metadata": {}, | |
"source": [ | |
"**Now do the same for Month:**" | |
] | |
}, | |
{ | |
"cell_type": "code", | |
"execution_count": 3, | |
"metadata": { | |
"collapsed": false | |
}, | |
"outputs": [ | |
{ | |
"data": { | |
"text/plain": [ | |
"<matplotlib.legend.Legend at 0x10330ada0>" | |
] | |
}, | |
"execution_count": 3, | |
"metadata": {}, | |
"output_type": "execute_result" | |
}, | |
{ | |
"data": { | |
"image/png": 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| |
"text/plain": [ | |
"<matplotlib.figure.Figure at 0x11ef16780>" | |
] | |
}, | |
"metadata": {}, | |
"output_type": "display_data" | |
} | |
], | |
"source": [] | |
}, | |
{ | |
"cell_type": "markdown", | |
"metadata": {}, | |
"source": [ | |
"**Did you notice something strange about the Plot?**\n", | |
"\n", | |
"_____\n", | |
"\n", | |
"** You should have noticed it was missing some Months, let's see if we can maybe fill in this information by plotting the information in another way, possibly a simple line plot that fills in the missing months, in order to do this, we'll need to do some work with pandas... **" | |
] | |
}, | |
{ | |
"cell_type": "markdown", | |
"metadata": {}, | |
"source": [ | |
"** Now create a gropuby object called byMonth, where you group the DataFrame by the month column and use the count() method for aggregation. Use the head() method on this returned DataFrame. **" | |
] | |
}, | |
{ | |
"cell_type": "code", | |
"execution_count": 169, | |
"metadata": { | |
"collapsed": false | |
}, | |
"outputs": [ | |
{ | |
"data": { | |
"text/html": [ | |
"<div>\n", | |
"<table border=\"1\" class=\"dataframe\">\n", | |
" <thead>\n", | |
" <tr style=\"text-align: right;\">\n", | |
" <th></th>\n", | |
" <th>lat</th>\n", | |
" <th>lng</th>\n", | |
" <th>desc</th>\n", | |
" <th>zip</th>\n", | |
" <th>title</th>\n", | |
" <th>timeStamp</th>\n", | |
" <th>twp</th>\n", | |
" <th>addr</th>\n", | |
" <th>e</th>\n", | |
" <th>Reason</th>\n", | |
" <th>Hour</th>\n", | |
" <th>Day of Week</th>\n", | |
" </tr>\n", | |
" <tr>\n", | |
" <th>Month</th>\n", | |
" <th></th>\n", | |
" <th></th>\n", | |
" <th></th>\n", | |
" <th></th>\n", | |
" <th></th>\n", | |
" <th></th>\n", | |
" <th></th>\n", | |
" <th></th>\n", | |
" <th></th>\n", | |
" <th></th>\n", | |
" <th></th>\n", | |
" <th></th>\n", | |
" </tr>\n", | |
" </thead>\n", | |
" <tbody>\n", | |
" <tr>\n", | |
" <th>1</th>\n", | |
" <td>13205</td>\n", | |
" <td>13205</td>\n", | |
" <td>13205</td>\n", | |
" <td>11527</td>\n", | |
" <td>13205</td>\n", | |
" <td>13205</td>\n", | |
" <td>13203</td>\n", | |
" <td>13096</td>\n", | |
" <td>13205</td>\n", | |
" <td>13205</td>\n", | |
" <td>13205</td>\n", | |
" <td>13205</td>\n", | |
" </tr>\n", | |
" <tr>\n", | |
" <th>2</th>\n", | |
" <td>11467</td>\n", | |
" <td>11467</td>\n", | |
" <td>11467</td>\n", | |
" <td>9930</td>\n", | |
" <td>11467</td>\n", | |
" <td>11467</td>\n", | |
" <td>11465</td>\n", | |
" <td>11396</td>\n", | |
" <td>11467</td>\n", | |
" <td>11467</td>\n", | |
" <td>11467</td>\n", | |
" <td>11467</td>\n", | |
" </tr>\n", | |
" <tr>\n", | |
" <th>3</th>\n", | |
" <td>11101</td>\n", | |
" <td>11101</td>\n", | |
" <td>11101</td>\n", | |
" <td>9755</td>\n", | |
" <td>11101</td>\n", | |
" <td>11101</td>\n", | |
" <td>11092</td>\n", | |
" <td>11059</td>\n", | |
" <td>11101</td>\n", | |
" <td>11101</td>\n", | |
" <td>11101</td>\n", | |
" <td>11101</td>\n", | |
" </tr>\n", | |
" <tr>\n", | |
" <th>4</th>\n", | |
" <td>11326</td>\n", | |
" <td>11326</td>\n", | |
" <td>11326</td>\n", | |
" <td>9895</td>\n", | |
" <td>11326</td>\n", | |
" <td>11326</td>\n", | |
" <td>11323</td>\n", | |
" <td>11283</td>\n", | |
" <td>11326</td>\n", | |
" <td>11326</td>\n", | |
" <td>11326</td>\n", | |
" <td>11326</td>\n", | |
" </tr>\n", | |
" <tr>\n", | |
" <th>5</th>\n", | |
" <td>11423</td>\n", | |
" <td>11423</td>\n", | |
" <td>11423</td>\n", | |
" <td>9946</td>\n", | |
" <td>11423</td>\n", | |
" <td>11423</td>\n", | |
" <td>11420</td>\n", | |
" <td>11378</td>\n", | |
" <td>11423</td>\n", | |
" <td>11423</td>\n", | |
" <td>11423</td>\n", | |
" <td>11423</td>\n", | |
" </tr>\n", | |
" </tbody>\n", | |
"</table>\n", | |
"</div>" | |
], | |
"text/plain": [ | |
" lat lng desc zip title timeStamp twp addr e \\\n", | |
"Month \n", | |
"1 13205 13205 13205 11527 13205 13205 13203 13096 13205 \n", | |
"2 11467 11467 11467 9930 11467 11467 11465 11396 11467 \n", | |
"3 11101 11101 11101 9755 11101 11101 11092 11059 11101 \n", | |
"4 11326 11326 11326 9895 11326 11326 11323 11283 11326 \n", | |
"5 11423 11423 11423 9946 11423 11423 11420 11378 11423 \n", | |
"\n", | |
" Reason Hour Day of Week \n", | |
"Month \n", | |
"1 13205 13205 13205 \n", | |
"2 11467 11467 11467 \n", | |
"3 11101 11101 11101 \n", | |
"4 11326 11326 11326 \n", | |
"5 11423 11423 11423 " | |
] | |
}, | |
"execution_count": 169, | |
"metadata": {}, | |
"output_type": "execute_result" | |
} | |
], | |
"source": [] | |
}, | |
{ | |
"cell_type": "markdown", | |
"metadata": {}, | |
"source": [ | |
"** Now create a simple plot off of the dataframe indicating the count of calls per month. **" | |
] | |
}, | |
{ | |
"cell_type": "code", | |
"execution_count": 175, | |
"metadata": { | |
"collapsed": false | |
}, | |
"outputs": [ | |
{ | |
"data": { | |
"text/plain": [ | |
"<matplotlib.axes._subplots.AxesSubplot at 0x133a3c080>" | |
] | |
}, | |
"execution_count": 175, | |
"metadata": {}, | |
"output_type": "execute_result" | |
}, | |
{ | |
"data": { | |
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J8Ly+BLgH+JExJhL4FrDfWrsceBV4ZpjjEBE/hYc5KCvK5HJ3P4+v28TfvrGP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\nvgAAAABJRU5ErkJggg==\n", | |
"text/plain": [ | |
"<matplotlib.figure.Figure at 0x133a19390>" | |
] | |
}, | |
"metadata": {}, | |
"output_type": "display_data" | |
} | |
], | |
"source": [] | |
}, | |
{ | |
"cell_type": "markdown", | |
"metadata": {}, | |
"source": [ | |
"** Now see if you can use seaborn's lmplot() to create a linear fit on the number of calls per month. Keep in mind you may need to reset the index to a column. **" | |
] | |
}, | |
{ | |
"cell_type": "code", | |
"execution_count": 187, | |
"metadata": { | |
"collapsed": false | |
}, | |
"outputs": [ | |
{ | |
"data": { | |
"text/plain": [ | |
"<seaborn.axisgrid.FacetGrid at 0x1342acd30>" | |
] | |
}, | |
"execution_count": 187, | |
"metadata": {}, | |
"output_type": "execute_result" | |
}, | |
{ | |
"data": { | |
"image/png": 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j0+s7HYVaopY9qdf/WGt9CHgYWAu8DNyjtY5iXoCrV0qtAW4DHrCecgfwFLAe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\nacJCCGGj/wNw1GmPTvAXxQAAAABJRU5ErkJggg==\n", | |
"text/plain": [ | |
"<matplotlib.figure.Figure at 0x1342ac128>" | |
] | |
}, | |
"metadata": {}, | |
"output_type": "display_data" | |
} | |
], | |
"source": [] | |
}, | |
{ | |
"cell_type": "markdown", | |
"metadata": {}, | |
"source": [ | |
"**Create a new column called 'Date' that contains the date from the timeStamp column. You'll need to use apply along with the .date() method. ** " | |
] | |
}, | |
{ | |
"cell_type": "code", | |
"execution_count": 193, | |
"metadata": { | |
"collapsed": true | |
}, | |
"outputs": [], | |
"source": [] | |
}, | |
{ | |
"cell_type": "markdown", | |
"metadata": {}, | |
"source": [ | |
"** Now groupby this Date column with the count() aggregate and create a plot of counts of 911 calls.**" | |
] | |
}, | |
{ | |
"cell_type": "code", | |
"execution_count": 197, | |
"metadata": { | |
"collapsed": false | |
}, | |
"outputs": [ | |
{ | |
"data": { | |
"image/png": 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IwnVKnppLZVnfGSQc8FS1oC6Y5zg47Gx9igxTj8fN9ds7GZtK8ozZOumds+Oc\nGlieWJ09HnmsBjefUO7K59BDn3+G//DfX5p3TW8SAWXc0OnZ9IL+2dfeMbSLu2/aABQ7ISzlARMT\nxuUyimUPV7HkMtk8HrfLctOls3nL+nPabPCJl85aml/SdIc51UEBdEYC/OlvvIf1nSG++YxWMYmz\nuQK5vM52c3uPWmuhhB95aGLOdh6GgPKZFpTP417QXSkKOd02ATW2igRUVQuqQQSUWDTKBelS0HXd\nZkEtMQaVyOD3udm5uR2P28XZy857i7105DIFHc6NpNB1nXfOjpcohH/42EH+9wtnANi9uZ3N61qB\npbu0rwWxWeNalguoXL5AOpMnHPSyrjPEyKRzLdRlU+ms5h2xFEu3i+u3dwLw9GsXrPe/+expx+8t\nFjEXOiMBxmqo2xJzMlVlDa7msoRmEVC2E1soIHro5AgtQS837uwCihZJcgkBQ5FVs5D2l87m8XuN\nLDaXYoxbLPzlN2d4Yo4vf+cY//hDwxpKWS6+6huM9XaF+dkP7KGgww/fuFDynnDBrOswtLCJGutW\nhMvQnlQhYmnCgvJ6XOQL+rzdBMQk87hdloAaX00CqszFJZroNkqmokhiWE4BlUznrEVvqQIqlsjS\nGvTi9bjYvjHCwJVYxbXTdZ03jhtdUEams7z69hAP/9UrvHSkWCQ8M5tmfWeI3/3ld3HnDb1sXmfs\nd1SrgJpNZFbM2orNGRZUuVIjlJ9QwEtvV5h0Ju/oBhRK55Xx+QWUx61w/XWd1rE2r2tB3dbBoRMj\ndddY2RFrzfYNEVKZ/IJzzsmCsgul+eKHzSGgbMJloZTS6ViKDd1hK9U56BMB+/ofsBHTWrl5l7FZ\nYDUTPJvL4/UatUPrOkNcHpuzLKhyC04UD4sHq5gkMf8OKO+9dRPhgIcfvXGh5MaKSRAOeI2uEzUG\nJIWAsgs0S0B5hYvPXfK6E2IshlvVQzjoXSMxqMawoMSisZxF6fbFbKkuvvhchtawEWPZ1ttKLl+w\n4rqCweE4o6aHZGwmyxEzbiuet0JBJ53J090e5K4be3G5FNpb/YQCnpoF1Je/c4zf+vMXawruLyfZ\nXMHyopR7I4Ty0xI0BBTA8ETptUmkskyZQuvy2Jyj1SKeT4/HxS7TUgW4ZXePtXHq9DLEKBOpHB63\ni43dxlhH5/FqFQq6da3tSVP2cZTvEGCnOQSU7eGYL0lA13UyuYLVLBEgaMYKliKgxA24wdRKxqo0\ndExnC9aaitreAAAgAElEQVRift3GNuKJjOVCK3/AxaS8MjZHPl+wXHzVkiQEAb+H9925lclYmqgt\ndVP8XjhoCKjYXMbaALEa0/G0ZeHNzKYtISPiTaIOSlhS8yUEFGwWFEBPe5Dx6eav8BeUL2hWl/cG\nyeJLWC6+5WvrVS6gFppPh04Mc/5Kpesuly+QTOesJIB1HUYT53JF7+AJw3oKB73k8nDg6JWScQjL\nw57pqigKm9e1MDQ+W2LhJ9M5R1dY/8VpMrnCvApcPJFZ9u4UwnqCShefpVwGvWzoMq6N3eUORfee\n+Lz93hw4epmf/y9PW+uSx2W0KNu12RBK+3Z1W1sAzVduc+L8BP/pf77CP/+d73G0f6zq5xLpLKGA\nhx7zPpa78q+MzVoKUyqTQ0ybpC0PwO5daX4XX6aYgn3+ykzVExILqBASxneW7uITFtSmnhY6Wv1V\nBVTGdPEBlsZy7Oy4cQ7pXInWI25gLl9gZCpRPMd5XHyCfaYld3msOIntk7y91U+hoC9oetszaHS9\nWGNV7uITsaj5EiXEPRFbhXS3B0mmc9dcUwXj2v7l40d58fClZfvN8vO4moW6Zy9NL1g38vmvHOSh\nz/+Irz51knQ2v2gXXyqTW3ARLncHzZdolMrkeOSxg+x/4ljFe/bOLmC4oaGyc7dYFD9yz3ageM1F\n7CaZcU4k2ryulVxet57TZw4O8iuP/IhP/fGz9F8szvF8vsCQ6R6bLSs7efnIZf6/Hxl1jn/894f4\n7Uedg/e6rtfVSsx+LUXJRjqb58//8bClxIZLLKhyAWX8LebdFduzf7R/nKl42go9eMzn9gN3bWPn\n5jZu3dNDJCzqQZ0VmHxB54///hBH+8dJZ/K8fWa86rkkUjlTQIn7WFQ05pJZPv2nz/OpP36Ww9po\niUVvV9Ltyut8oYMmEVDGDd2+IUIur1fN6ReFaX6bgBIWyVItqNaQj1DAS09HkLHpZIU2+c7ZcWJz\nGTZ0GT7x6zZGACztoaCXFs7ZffqXRmeLnSQWcPEBtIWNlHO7VjaXNFvwmC4+YMG6g1Omu3T7BmOs\n4roKt5UQ9FZH83msBbuLD1ixONTMbJrP/uUBnn5tgH94euktdcCwDssLVQM+Dy6XclViUP/9G0f4\n/f2vzxsrOaKNMjyR4JvPnOaINkpykS6+v/3ucT71x8/Omz5eLqDmi0ONTCbIF3TH2IkYk3Dx9VSx\noGJzGYJ+Dzfv7C55XSyq4vkprxW0x6Hmkln+3396y7D4dPjuy+eszw1NzFmZbuWC/PHn+/na06dI\npnOcuzzD6FTS0QPw998/ya/90bMcPV20MOKJDNnc/NalELJQfI5OnZ/kuTcvWhm04YCXDabbrMKC\nMl2Yt6nrjL9tQnLSdM/PmPdLZPJ+6Me28Re/dT+hgLfYsKBKDOrk+QkmY2lu3d0DwMhEdbddIpUj\n5PdaAsqusI9OJcjlC0zG0vzB/jdKsonta7Dd6irfY83OkgSUqqrrVFUdVFV1j6qqO1VVfVlV1RdV\nVf1L22ceUlX1kKqqr6qq+hP1HEcs3tvMhbTaxRParND4wW5B1SegdF1ndDLB+k7jZvR0hMjlS10E\nuq7z1e8bi+EnHtgDFC0op/OA0qD75dHZBTtJ2GlrMSbbjG3SF118Huv9heJQZy8Z7ph33dQLFBMl\nnJIkYP54S7mLr7vNqIVyyuSrxf0Ixv1cbP3NU68NcP6KsbDXIuxrIZHOUa5Mez0ufB7XssegEqks\nA0MxdB2+9gPncoJ8QS+Jy87Mpi3hUavFev7yDHOpnBUjdUIoQKJIfL44lHgmnSw4IeiEm8ly8ZXF\nLlJmIe92U7krH0cq45zpuqnHFFAjs4zPGMrj++7YwqaeFl5+64olNC+OFBfLckEuYiIXhmOWG0x0\nqxAc7R/jW88b5SLHzk2QTOf4H//0Fp/8z0/z3YPOoYeT5yf5yveOMzVb6eITe0CJ44WDHnrag7hd\nCsPjzi6+u24wnlV7osREzHjGYuYxxDNop3UBC0q4Uz92305cLqVqnL1gto0LBT3WfbQLqCmbgpLL\nF0osWPv8sRsZ+cJVsKBUVfUA/xMQZ/JF4GFN0+4DXKqqfkxV1fXAZ4C7gQ8DX1BV1VvrMRKpLLqu\nW5rTdaaAKjd/BZaA8hZPy6qDqtOCmp41aqCE1tfTXmnWvt0/zsmBSd51Yy97tnYAxWw6O/YbVGFB\npWq3oCLCQiqxoGxJEuHaLKgLwzG62wJsWy8sKFNAZYWAEhbUwltuOLn4jN8sFVCzySy/9Ac/5O+f\nG1+wNu1Pvvomv/4nz5FM5/jSt47yxa9H5/08lCovy9XqJWFeW/tOx16PC7/PvezdMvoHpy1h+Orb\nQzz23eMV9StiHhV3jM7aXHy1xaBEd3KnDfJ0XeeNY0OWciE2/pxPWRDPpJOAmi1z8XW3B1GUymOL\n7WY6WgOE/MYzHA54iCVK05SrWVCXx2atOdzdHuSj915HLl/gB28MAHBptFg/ZHfx5Qs606ayd+xs\nsa6nvPj3y99+B8XcqfLc5Rm+9Xw/P3j9AoWCznjM+dp85cnjfOv5MyUWl1BqKhJvAl7cbhfrOkIV\nSRKXx2bxed3cstuwLu0uPmFBCQHu8TgIKLNhQblVPBnP8dKRS7zy9hUiYR+37emhuz3IyKTzGiue\n2ZDfS3uLH4/bxdh0cazCbSy8MheHi4I0WcWCuloxqP8GfAm4AijA7ZqmvWy+9xTwAHAXcEDTtJym\naTGgH9hXy4+/fmyIT3zu+3z/1QGS6RyKAlt6jZqH4SpZI0IzsSdJ+H3CxVffQiK0vPXmQ+qkNZw4\nb0zqD9+93XpNURSrJkloNHY3kX1yXhqN15RmLggHPHjcSonbQFhQoaDX6joxFUvzp199kycPnKv4\njdlEhomZFFs3ROg0rR3Lgqoo1C3WdYFzWmjOVgcFVK2FGpmYMyr/R9P80d8dqlpDkcsXOHJ6jImZ\nFI9+4wjff3WA56OXFuyUIDIHRQxsseTyBb761MkS7V5cWzEHwBDerSHfsu81JtyuH79/Fz6vm//9\nwhn+85dfK3ElCmVmvTkXZ2bTljCuxcWXL+jWvXbSlA+dGOEPHzvI90z3mIiLzOfiE89kOpOvcHsW\nY1CGbur1uKwaGjvGhp3G83rvDa18/P5drO8ME7csKOcY1IbuFlyKsYiLxborEuB9d2wh6Hfz1KsD\n5PKFkkw/uyCN2yz6d84WYy8DV0oF1OhUku0bInRG/Jy7MsPb/eO4FOP5SDu4+KbiKU6aysXx80XB\nJxTpcoEvMkN7u0JMz6ZL3h+bSrC+M0RnJEA46OXtM0ZIIZ+vTPjwOlpQzkkSj78ywZ/+Q5TpeJp7\n9m3E7XbR2xliMpZ2jK+KORAKGC7unvZgiaIhLKgdZgH1xZGiUmC3+sdLXHzLbEGpqvqLwKimaT/C\nEE7lvxUHIkArYLeTZ4FK35cDjzx2EDAaE6YzeQI+T9UAosASULYYlNdj1CXVmyYrLrho31P0uxYf\nLuEvFpqcQNwk4bJwsqDcLoXLY7YYVA0uPkVRiIR9jhZUS9BLW6uhLZ25NM1Lb13m2Tcr2zNdMKvR\nt/dG6DIFlNA+i65SV8m/2VyeUxcm+en/+F0Oa6XFypYFZcvig8oYlP1hip4arVoVP3AlZo1DuB+g\nVMN1YmImSWvIS3uLr64GpyfOT/DNZ07zVVv8SixmIj4Ahp+/NeRjNlFc3FLpHO+cGV9SJ3lR5/fx\n+3fy2O9+kPv7NpNI5UqsqETarHnrrLTma0mSmJlNW2N2ShEWCpdQbNebmWXlz5A9uG1/JoUVFz01\nwh/sf4MxM5YjLCgwFL3xmZT1GwXTbSlc3Pdc38ov/+SNRMI+kuk82Vze5uIrVeK8Hhdd7UFGJuYs\nwdvZFiAU8PL+O7YyMZPi9WNDJYul/TrZlZ6TNkEyYIsB6rpOKpMj6PewY1M749NJtMEpdm5upysS\ncIzPvnFs2LKG7a5Uy8VXpXRBrHOiKUHeTHhqa/GhKAo/+/7dxBMZHvvucaZn0xXuZ7eTgApVuvim\nYimuTGbZ2tvKT923k595/26gepYlFIWqyI7u6QganXbMcxIW1E4zg9ButZYmSdgsqHliUPU66X8J\nKKiq+gBwC/D3QI/t/VZgGohhCKry12smMTfDdCyL21XgwpkTuFxwdnCMaLTS3XN+xLg442MjRKPF\nSed1w+RM3PE71RCffeesMbEmxq4Qjc4wPmW6ArQLbIsYE7j/wiguBQbPneTyQNENtLMzx303teJx\nFzhzEd45forMtLGoXB4yHoR17R6GJjNcHJ7C7YKjbx2paXxeV4HJmYw1zsFLxgJ27swpMubGhYdP\nGgv70His4twPnja0yUJqgoEzxmQZuDRKNBrl9IAxMa9cuUQ0Os2I+WCfOHWaybgRj3niubfRZzus\n37s0blyXsbERotE02ZyOohhjeP1gAa8ZuH3rnHE917V5GJ3J8fyrR7l5e9EyEbyhGePraHEzNZun\nPexmei7P86+fJJSvvqX96OQcbWEPuUyKTDbPwUNvlrjmFuLUJeNavHr0MvfsLODzuKzXPAXjurhd\ncPjwYQq5BAUdXnn9TXJ5na+/OM7wVJZfeH83160PLHis4akMVyaz3LYjhKIo6LrO8XNjtIfdnDt9\nHICNLcaxn3zxbTIzplY6Zgh5lzme85eKWn82V+D1N97E6ymec/m9vzxRXKS081eIRkutwOjxojtK\nUSAxY/x9QjuDP2t0ajl8do4nD03xKx9ax4YOHwOXiwv7G4feoqfNy3den+TIuQSXho33Ll88TzRt\nzEm3bsSKXnjlEO1hD5lcAV2HdHLWGm80GiWbNubBgdeiDIwa5z0ydJlotDQ+FPYWGBhNc/y00dpn\n+NI5onOX2NZuLKhf+/7bjE5n8XoUsjmdgYtDRKPG750ZKq4VotzD41a4OBLnjYNv4nErtvHN0WkK\nkkJBp6clR3w2QzqrV1znp19xTtW+MHiZaHSWgQulS+G5M6eYHPKQSxnP24GD7zC5JchcKo+uQz6T\nIBqNsrlFp7fDyzOHBgkolYk0J44f41KoVIgLheTKyIQ1ziPms7h3g4tbN6W5eO4kF4F8yvjNA2+8\nze6NpfP44rhxzWLTxu+IOfjCgUN0RbycvWDc69yskYVqL00ZGZskGo2WWPAAx46fYFNXUXmxU5eA\nMuNMAKiq+hzwb4A/VVX1vZqmvQQ8CDwHHAIeUVXVBwSBvUBlHuo8+AKt4JqhNeDnzjvvoPeZaWZT\nWXbuuYl8oUBXW9D6rH5yBBhn+7Yt9PXttl5vfcq4aH19fTUdMxqNWp+9EOsHpth3wx76buwlnsjw\n1089heJttT7z5088RW9XmLvuvKPit97/Xnjq1fM8e/RtNm3eTt/tmwF4IvoakOSOG7fw3ZfPMTWb\npzXkq3mMGw69ysj0GPtuuRWvx81TR98AErzrztvJ5wv81fefZnrO9HWnCtxy620lwdM3Bo4C09x3\n9z52bW6n9XujZHXj+FP5QWCSXTuuo69vK0PJc3DkHbZt20FqcAqYYTSulIw1eH4CfjjKpo0b6Ou7\nAYCPDvn57svnODMR5pMPXg/AwIxxPXf0BhidmcUd6qav7/qK83vhVBSY5uFfvocXD1/io/fu4De/\n+ALDMVfVa5RIZUl//RJbejtwu1wMjA5zw023WDVLtRBXLgETZHI6+cBG+m7ZxHRhEJjglhuu443T\n7xDweejr6+OVM0fQLg2yY/f1/NHfHWJ4ylgMs+4u+vr2Lnis3/vrVzlyeoofv8e4B1fGZkmmL3Pn\nDZusc7zxphzfPPAUQ9PF81ZOjQJj3LB7K0fOnqK8wf3uvTdaz4V9Lgsy71wBDAs4Uyidc/mCzsi3\nnmRTTwuhgIdMNs+N1+/iuwcPsa53E319OxmfTvLH33qOfAHcoV5uv307M9/8nvUb23fsYe/2Tp5+\n25iT4rrcefvNbFlvuOmPj5zg2IV+ejfv4sYdXWYiwxXW93TR19dnjfvQhbc5Pnie7TtV0p4pYJI9\nu3fQ17el5JwO9B9hYHSQ8Tljjt/7Y7db2ayv9r/KETMGtG9XN2+fGScQiljnPfPmIFCaVn27up6D\nJ4bp2bSbHZvaiuNb18m7b93Ey8cPAfDAu2/i8ef6GZ6a4Pbbb7diVKl0jgvf+D47NrUxND5XYj10\nda+jr+8mXjp9GMOpZPBjd95OOOgl7b3Cj44coqW9l76+XablN8TWTevo67sVgIT7En/2tSgXJiqX\n8Ntvu8U6dzst3xkFl9867x8dPwRM8VMP9Fn3BSDGRZ5/5zBtXRvp67uu5DfE3NuxbTN9fXs4OXaS\nt86dZv3mndyyu4d/ev0AipLkwffdxWPPPFnyXZ8/RF9fn7l1UrE7yJ49KnMT5yvGC8ubZv7bwO+r\nqvoK4AUe1zRtBHgUOAA8g5FEUbPT3uVSmE1mSKbzBM1YUm93mJnZDL/1Fy/y8F+9UvL5tEOSBBhu\ns2SdMahiBpIh4VuCXoJ+t2X+JlJZZmYzJe6fcoTbojyLz+1SULd22D63cPxJECnL5BPugpDfQ0vI\nh91o0HUq9oe6MBTDpWBNzM5IgEkzfmMV6lpZfMa4Mrm8lfRwcWS2JAmjmCRRvPaf/PBeutuDPP5c\nv2XSCxffdb1+axxOaBemaAl62bOlg1/7+D429bRww/ZOLo7Eq+6JZQ+QW9d8kS167Ht4iRY7wn3a\n1RbA4y5eD1FbMjqZYGAoZgWGT83ToXl4Yo5XTJelCMKLei3hKt7aW1wsAn4PN+3o4tyVGeseChdf\nOOAlHPRWxBUWikPZu4aUu/gujcZJpvPs3d7B53/93fy333hvxbX8m+8cs+byyGSCyViqRFMWc1GM\nS7gKRRNlKKaaCzdWtTpAe/1OtSw+KLohB4fjeNwu63sAv/3JO/i5D+/lfXds4V9+aG/JGMGI1drx\nuBVuVw2HkMjks2LEPo/VoNalGMX7VimLLcYyPZsml9fZsbGNLetLXf/CHSbm1aaeMH6f2/odEUYQ\nz4y1AavtnEQRrj22JfA6JEkAJTHTfL7AW6fHaAu7K0IT68rujR0x90Q9lgh9iFDIdDxFJOwj6PdY\nMUeBuD7lrsP5YlBLzsPVNO19tj/vd3h/P7C/nt9uC/uIJ7KkMzkr8UFkFImbl0znrBubsWJQpacV\n9HkYypTGrbK5AvFExrrA1RATWTxciqKwvjPM0MScWfhn/O6GrsUJqEQqSyjgteJUUFv8SWCvdepu\nDzKXzOL3KlZmVyRc2u5oYjplTTxd17kwHGdDd9iK13W1BbkwHCeVzlUW6trqoOyC7sT5Se6+2WjK\nW8iLGFRRMoYCXj74rm3mPlpxutuDlnBZ3+6lrcVndWi2Izpc9O1dZ50PGK2mjpwe4/i5Cd59y0YA\nHnnsDU4OTLJrczv3m9ZpVyTAZFzsY5TFMN5rw77IvHlyhLlkthjfC3lpCRQXkoiZLSnOYdfmdtKZ\nPNqFKQoF3Rr7+HSSY2fHue/2zXzzmdP86OAgX/j1d1sP9YuHL/GLH73RWtDF7wpuU9fxVv8YR7RR\n3n/n1pJAdWvIa43P7VKseMV8iGenJehlNpllNpm1rEzRDX3P1g5LEIjFSMzft/rHCAc8zKVyjE0l\nrYwz6/fMRbC8GLY0BlUaPxO/HSwTPuI7sbmMpTw47ZlmT2DpbAtYlgwYC/v/9YBq/R0KeEqEuLgP\n7a1+puPG87TBTF0XCQDFGLGb9Z0h1nUE6e0KEwp4S55v8f9ifz0Pm9e1cnpwGo9bIZfXrXiVSL55\n+BfvIjaXqaghFAlGQqjYBdTG7haCfrej4u2UZg5GosTY5SSDwzH+xz8dZS6Z5Y7d4ZJrBUaSBlQR\nULa5B/aNVFPWtRTrTEckYM3pUMBjXUPRbWRjd5gr43PN2erI41ZoCfmYNPcSETe+t0wQ2IOzxULd\ncgvKbXb7Lkrqbzyj8SuP/KgkiOeEk/aye4uxEA2OxC2td14LKuBgQSVzhIMeNnaHrSSE8odzPtrC\npRZUIpUlYDtvUQslsAclRyYTzCWzVl0ZFDWhyXiqoiOHvZOEXfs+YdPecoXSLD5BV1mGoBBQ4YCb\nbb0RhicSFSUAwqratbm95PU9Wwxr85w5wXVdJ3pqlJnZDNFTo3zHzDrrsltQi0yUEJryTTu7yOYK\nvPbOkFWvEg54+am7O/nMJww3i5gTwhLqiPhRt3Uwl8yWFFJ+6/l+/uzrh7kyPmfNp6deGwCM6zUV\nT/N2/5hVRFmuefbtNYozRWKKOCdDQBXvs1jYygVDOeIeXm+17iouRKcvGnGRPTbLPmRey0TK6IaS\nSufYtK4Ft1kvI1KSRWC83IISY7UvnNs3RPC4FZ45OEgmm7eybMuVNMuCmsvMW8ze21l8/roWUDqF\nIBWIJIm920SJSMj6DZEVaAlQvwdFUfjiv7uPh3/xLus1+2fEtTLO22t5KYTb1W5BBf0etvZGuMlW\nnNwW9uP1uCwBVe7FAcO7tGNTe8nfAqckCfH9XL7Ao994i5MDk/zYTb3cf3Ok4nMdrQE8bpcloH7w\n+gDPmtt2iPMK+r3WZ8GwQlOZHIlUzhJaYk1xKcb/xfU5Z3ayF3MsdzXqoK42breL1pC3KHR8osed\ncUHFwmevFyjWQZVqWGJC27XjC0NGN+VnDg7OOw6hvdjjGOo248E+dWGqaEEt0sWXTBsWlNvtsgRF\nLW2OBOW1UHPJLAGfXUAZ74tFwd649dW3jUD37WZVOmClmk/MpIoWlPldYT1OxdNMzKTYsr4Fj1sp\n2fLZycUHNsEnBNRsmlDAg9etWOc9OFKqJIjFI1ImZIXrS3RYECnNm3qMa3/GXFy72+oXUGK+PXDX\nNgBeOnKppI3U9nV+q9OBGJ8QUF2RgLXI2Zsai3IAw01ljEfcg/ffuRXAbAtjLkTByvPuagtwRBsj\nX9CLi5/fW5EZBwtn8k3MpFAU2GvOY7umfOL8BD6v23JXQnExSqSM7ub5gk4o4KXLTDEWbXiEQiGO\nbxeULaHSc+pqC/LRe3cwMpngOy+dtbUxKn0GRIGpYUHlHT8DRRcfsKBXpCXoY85WLyaUpmINY6hC\nsUqVbYfT1uK3su6c3Mki282woAxrTLjuRChiLpWzfsOOy6XQ3Ra0lMq4g5IMRYUAsHr4uZRKJVEg\nruXpi1NsWd/K537pXbQEKq+ly6WwriNobfux/4njfPnb76DrutWxJBw0zlkUcU/FU9Z17DCvv7gP\noYCXUMBjKaJnL8/g87is57lJLSiXtRsuFCfBLbt7+PN/dx8P/dTNQJkFVUVAObU7Emb9c29enLcX\nVHwuQzjoLdFKxCJ0amCyLgGVL+gk03lr23DRdWIxnQ/sFpRoxeP3FiemEFCiwa1dQB04ehmXS+HH\nzD2zwGbpzKSKMSjTIhMa4KmBSTLZPBu6WujtCpcsbNZ+UO6FLShRp7XNnKDHzo47dtkoT25ob/XT\nGvJaKfJCQ9+1ucPqXCGOWX7NdV2vaVtwe1utPVvbOXpm3CqKLF9MIuaie9EcT2dboER5EYh092Qq\nZy10Yiyii8d0PE28zJ0sUBSF29V1xBMZzl6aLkn1LY3rmBbUQi6+mSRtLX429pR2ox6dSjA4HGff\nru4Sa8fu4rM3NV7XEWQqnrJS4PftMuI2s4ks6Wy+JC4VCVUuxJ94QCUS9vFPz/ZbSkD5MyAW5dgC\nMaiOVr/liehsW0BAhbwk03nrHkzFU7SGfNbeUuu7QoSDXnweFxPmvJ1vx2vnGHPRgtqxqQ23S2F7\nryH07RZUeTG/QKRvZ3P5ogVVLqBMCyoc8FjWWTX3HhTnq64bXqD5WN8ZIjaXYWw6afTUNLuOiLkc\nMpWWooBKW8+4sKDEs98S8hLwGZma6WyeweE42zZErHX6qnSSuNoYLr7ipBYWlKIo7NrSbrV6d9po\nz19uQTlMICHtp+JpomU1PXbiiax1YwVb1rcSCnjQLkxxZXwOl1LqAy+nXMNKpkoDjcIqrKXNkUAI\noNhcmqTZiqfUgjLGfOseY9GYMGtRhifm6L84za27e0oyfYS2U2JBmQ98R6uflqCXE+a23Z1tgYoa\nIGs/qDLtzW5B5Qs6sbm0NamFBfXY907wK4/8qCJ4LPZcEiiKwtbeCMMTc6SzeavepjXs5aZdRRdJ\nV3uwIm7yxMvn+Lnfe4qZ2TTxRMaytsqxdyt4722bKRR0q9gyVMX9JBbijkiA7RsjRsmBrb7L2m4g\nkytpueVyKdx4nbFv2bQ5Lih15QhED7bD2miJiy/iZEHNkySh6zoT00m62wLW50WRbdTciFO4FAXi\n+UmksyWNm9d1hNB1o+3Puo6gpaTNJjOW9SQW4HILCgwF5OZd3STTOcvNWCGgbDGo5DwxKEVRLCtq\nIRefUDTEfZmKpemI+LnzhvX8/Eeu58G7t6MoCp1tgWKXBsvFV3lsRw+J7Rlf1xHiL/79/fyrj1yP\nohjzpVAwrBEnCwrsvSxTjmEGKCZKdLYFrN9x6iIhaC0LU8zHOnM9O2YrXO6/OF0Rgwr4PIQCHqbj\naUvpFxaUcP+Fg8U4Xf/gFLl8gR2b2qy14qr14ruauF2uEgFVHp8RAmHYoQDO7yt38Rl/lwio2bT1\n8Oz/zjHHzs66rhNPZKwqbIHLpbBnSweXx2Y5PThFb1fYyuxyImg94Ga/tLKbLCyoxQioiM2CsrRP\nWwxq95YOPG4Xd9+8AY9bsSwokUF2r5lkILBbOuU9DRXFcMcJjbOrLUAk7KOgF60dYaa7yjS41pAP\nt0thMpYiNpemoBe1rj1bOvjEB/awsTtMbC5jaWD2rUPK2drbiq7DpZF4iW9euN38PjfhgKdCKTh3\neYZEKsel0Vm++v2T/If//qJjgobdpfzAXVu5ydz4MhTwVPj2yxeMzkjAzCDzlzTyFRZPMp0rseI3\n9YTNh9dNbDZT0VTVzq17enApRuF6MQ7gKVn411kWVGUMamAoZiVEZHJGeYboYScakYrtW+4wN+YU\nuBmAEiUAACAASURBVF0KAZ+bRKo4/oC/2IutUNDZubndel5nE1nrXG7e1W26jJwVOCGARDJCuQCI\nOLj4yp9vwXozDrWgBWXOq9lklmzO2HCvo9Vo2/Mz799jKW6dkQDTcaOY2H7e5YgYc8LBghJeku0b\nIoQCXrweN+ls3tqGYmEBlSwmSZQJ+U3rWtnQFWbP1g7rOPNZUK22Y+2qwYICeOdM0Y1vCKjSQl0w\nFNipeMpaQztNwSTuQ0vQaykeIiywY1Ob9Tw1ZTdzj1spcfGVa02hgNHSp5YYlNB8hfaXTOdIZ/Ls\n3d7Jz7x/N1fG5/i9//VaxYUSMQ4n7U/dbrj5dF233I3VKN92PmELugNcv72TTz64l5+49zrnH3DA\nnsUnFvSAr2i9/HjfZr7xyEfYvK6VzrYgE6Y/W8R7xI7DArulU25BAWy11Ul0RQIlCwcUzfRyC8rl\nUuiIBJiMFX3UwsXncil88sHruevG3pLfSpQ93Ha2meMYHIlbi2BLyGsJqG4zg6tcKRD3fmY2zdD4\nHAUdx/ij3Y0UCnj5w3/zbv7NT+/jlz56Y8VnQwFvSXBaaIyRFl9JI1+7i8+edbXNdPmIDSbjiQwe\nt+JoIbSGfGxe38qF4ZjNgvKWJFRUc/ENT8zx7774Al/61lGrfU9vlyEcO1r9XBqbJZvLc7R/jE09\n4YpEJONYHsNFabs+QiCCEQ8RFu9sMmstqtt6I/zJv72Xf/VgZa0bFIWxyOYrFwB+nxufx0V8rhi/\n81dxhYsM3wVjUObzPJvIFLX+1srvdEYCFHRDmU3O416slqULRSXUOh+vi0y2uAut0xyHYieWsemk\nleFX7lFwuxT+8v95H5/52duKFtR8Asq81m6X4tjM2o4QUG/bLKgzl6aLLj7bWDoiAWJzGStm1h4x\nXXwRIaB8lkCzCyjRdX0+C2p52j1fBTxmkoTASXPp7QrRf3GafL6A2+1ybBZr/67w/4usnfZWP//q\nwesZHI7zxvFhLo3OlmS2xapoLgDv3reRA29d5uc/ckOFxlmOscus2yagzJtsTiqXS+ETH1Crft+J\nlqCxOMbmnC0oRVEsQd3dFuDUwKS5MaLz4t/e4selGK2ChHlvtwrttTmdbYGS7Cp6ihZUeQwKjIl6\n9vK0LZ03gL1AsVzY2ZMSytlqLuqDw3HrIYqEfPR2hbhn3wa2ri91l4rzFfd+ejZt3f/noxfpagsy\nOBzj3/7MrbhcSokLC4yH+Sfe7aw4uFwKkZCP6dk0bS0+S6C3t/gZHI6TyxfwuF1Ws9lkJk8ynWPX\nlnZu29PDPTcbVmxbi5+zl6YJ+Ny0hHwVab+C7vYgg8NxxqeTKIoxRru1Vc3F9+rbQ+QLOodODFvW\nq3D9bl7XyrFz4xztHyeVydO313kuB/1esyZRpIO7S6yinZvacbsUwkEj7T1uKQ8+Ky7nhHBnit6W\n5Z4SRVFoDfuYmcsQwYfP666aBPAT916Hz+vmxh1dju8L7BaUQFwXO/YelfYsvnJCjkkSpV4Sgc/r\nJpstFJWwBSyosekEsbkMkZCvRBkSiDknvEHzuvhCYkfjSEUYpBzxbIn4pNfj4uylabb1RnC7FCve\nB4ZwF65eKGZUbuwxUuG39rZa1+/UhUlcimFRivh9vqBDleE0rAXldrtKguROWmVvd5h8QbfSMZ16\n8UFlDMquySuKYiUSlO/BEq8SnATDLfc/P/sB7tm3seI9J4L+Yh2A5cKqEiCtBZfL7Mdn22rB73O+\nnd1tQQq6EW9LVnlw3G4X7a2GpVPsZm6zoGwCqqstWFKfAsUYlMtVOYbOtgC5vM4l03orXwzK968q\ndmavvD7FTL54McPSXNR/5xfu4uc+vLfk/MT5WhZUPG3Vh83MZtj/xDF+dHDQ0uDTmTwet6tqqm45\nYm7YNfBifDBTspfUbCJDLl8gHPDw8x+5wXKztIX95PI6o1PJihRzO0Krvjw2S8hMd7bHqzrbAvg8\nroptvV8/ZmQMJtN5nnp1AK/HZbkuN69rQdfhGTON+Kadzot7OOhhLpkr6RnZ01m0oEQGX0vQy2wi\nY+tgPn8Xj4jpPrdiUA4xno5IgKlYimQq57gOCDava+WXfvLGea0IoMQVKRrIbnRIcuqKGOc3OZOq\n2kkdqhfiQ2Uc1We6+Ox1Uk70lMWgysMM5QhB53VQEAVC4O7Z1lH1M4L1naXX43Z1HalMHm1wilDA\nU6JEiaSI04NTdLT66W43PQlhH3/7nz7Iz35gj+0a5dm0roWAz2MpGk2cJGFz8TloLhvKmsdmqgio\noDmpxCJVng4pXBrle+NYMQEHC2qx2AVUokoSwGJpMzXLWQcLyk65JuhxuxxjZp1tASZmUtZ2AKUu\nvqJl2dXm4OIz3aMehwdETOCzZv1De1kblgoLyvJzV16fthY/bS0+Lo7ELS3daRGscPGZFtREzHjg\nja4QivWQiHufysy/CJYjxm6PexQzLI3aENHMU1iQ5W4ikdCSyxdK3NrlCK06mytY10Ystm6Xgt/r\nprs9WLLRXjyZ5+TApHWNsrkCN+/qtsYgUqDfOGb0N9y73dnaCQe85PIF6x4F/B5rEe1uC1hKR0vI\na7r4ant2xPsiZuPkQutpD5LNFRifSS7q3lTDbkGJEoHtGypdXrVaUPPXQZVbUIanp1qmqsC+W+1c\nMlNRvF2OEFDzKVbbeiP8x5+/g5/70MJtuNpafFasL+j38C7TDQ+VXe3Fvdd1I1XfLrxaQj48blfJ\ndduxsb1krMvezfxa4HaXJkk4tjfpFBXPpgWVqVIHZZPeYKscNxdKaxfLMgFVdPEtTZBAuQXlPHkX\nS1uLn7lk1grI22NQdlpsWUuJdLbqcbsiAbK5glXIaRdQ7a1+ImHDjdUS9JYIlSdfOW9p4E7uF/Gg\nn6sioMr3r0okjYr8aq6cDV1hRqcS1uedLNzyRUNkgF0wNwO84bou/vp3PsCv//NbgKKSk8rk6xJQ\n9syxttbi+dgfZpEEEgyUC6ji9ZhvQe+29Z0U91C4n4VW29MRZHo2bXkTRKPbn3n/HssitWfpbTIF\nVC5fYENX2DEWA0V3tJgbQZ8br8fNv/zQXqt9EBhzLZXJW1Zqecp8OeX3zuk5Fwk86Ux+Ud1WqiGU\ngNlkxorJbdvQWvE5cU8nYqli7G2eJInyGJThhq108WVsFlQ1F5+oHRq4EqOgL2yJ1hKDArj3lk2O\n7sxyFKWY2LK+M8T77tjCg/dsB4rCU2CfM/YCbzv26ya654h49dXoZn7V8bpdJQ+r06IhLoxYqDK5\nAopS2YsqaBXqlrn4zBslLLEKF1+iuotvsQT9RtGxUWi5PBaUWByvmIK1mgVlpdWmsiRTuarZgnZB\n0tsVqriOn3hgD4lUzooLgJHm/sTT56zECidNTzzoA0MxXC6F3u4Q52x78AkLQmjns6nq9SFgpMCe\nujBlZeE5LeqVMShTQJnfaW/1s64jxBaz9mVooujiq7ZoOCHuQUek0oKans3QESnGOcS8K4+z2AXU\nfAu6cJ1AMe4hvAzCouppNxaViekkG3taGDEbtd66p4eBoRgvHL7EndcXtWFR+wPFzhJOiJil6MUo\nFpx/8cHS2KlY/IXAX8iCKo/vOqVxC0sNnNeBxSLcZVOxNANDMdZ3hhyfxU5bbWA9FlTI76mIG/m8\nbjK5guWdmW8N2NYbsUocarWgnPaCqpf1nSEujsRZ1xHC7XbxqZ/exw3XdVkKg6AjUhzbnq3O2YFB\n230TvQytLL55NixsWAHldisl5q/TxChufW48+OlsHq/HXRFkDpTtqiu0O+F6Cvg9dEb8JRbU22fG\nij3LlsHFZx/DfFlqi0EsbGLcgSoxKPEQzCVzJNK5qjVb9ol33+2bK67jP3vPTuv/YmE+b3bkuHVP\nD//igyrXO7iIOiPFBebumzdUaOnlLr5EMlvxENgRmt2FoRiK4vyQez0u3C6lKKCsDE5DExb3XvQd\nK1pQuQXTlJ3Gbs8cs8fUkg4WVLkWbm9LNa8FZVuoxfMgFiYhsIr7lRkCKmc+/AGfh1/7+M389P27\nSorKe9qD5tb1Bcd7JxAWW9GCcl46hIAVc3KxFpRThl53iYBa+pK1rTdC0O/h5bcuE5vLlLiv7Ig5\nMmErvXBKLqiWxefkohbfF2vQfMrQg/dstwTUghaUSDOfJ0lisVibtJqxRkVRrH6XduzP8+4tC1tQ\n1wkLyi0sqCZ08XlcpUkSTrUPwgISNzuTzVf04QN7oaGwoEQWX/HCbuhuYWwqQTZXYHgqw+e+9Cr/\n9Gw/4JzFt1jsk9gKkAaX6OIrs6DsnSTsFF18mZKGluXY3VROE9GOWEj7B42C191b2rnhui7HDDS7\nhvVT791Z8X7YzEicmU2j67rVSLcaIsswl9dpCXodXYEi1dwoYtZL2lxBcfFpb/UT8LkZGp9D13XS\n2cW5+MRDbA+yO5UAQFEAB8t+v8TFN08w3L5Qi+vjdil89N7r+MBdRsukHlv2FxRTeH1eF6GAtyRL\nFYxkm41mPdR8AkrMIVG4Wq0tl2XVm70I54upgbGwittnxEYrn1/7eVergVoMPq+bd93Ua92P7Rsq\n+9EBViNYYUEFfG7HTDqnOstEKufoBRAZxqJmaL6tYO69ZROd5rNTqwXlFAOul/JdxKshnqXN61qq\nClyx5nS3B605ItqiNWehrlvBbQuuOS2qkbLYRTqTn1fDERbUVDyN21VqoW3oClPQjaCk2EdJsDwu\nvqKAElroQvUaCyH68Y1bVfjVLChT+42l0PXqbgVh6eze0l7i+nHCyJwrukHLs37s9LQHja1FtnU4\nBuGLOwQbAnS+AkYobnUuxlGNoNlBOZ3NV+w6KpQTRVHo7Qpb3SmMjhy1Kw7vu2Mrf/hr91hp22C3\n7DOO26RXWFDh2iyogK+4hYE9jvhrH9/Hx0zBb1lQZqKEUE7ni0188F3buGffhpI9gcoRc2a8zMVX\nzi27jeuQyRUI+NxVt34QuFwKYVOIVdtuxh57W0xD5fl4z62brP+LHa8dj90eYHw6SSqdq3rOiqLg\n8yiWtazrRuam03Mm4uMiDj5fHNrrcfHRe3cApW5OJ8RaNl/DgMVy14297NnabtUpVqOtxc+7923k\no1XKMaC4/u207d4gSlLmy+JrWBefeKBaQ16S6Zyj5uT1uAgHvVZRZCabn9dHLLTo6bjRbseuDfV2\nG4ue0W+q9IItZF7Xgj0te2w6QdDvXtRGek6IhVC4cBeKQQmXZXnLHsGere3s2tzGz35gz4LHNgR8\ncX+Z3q7qWlZLyMcjn3r3vJ9pC/sYn0nV5P5cZ0tvnu/eCO035bAlgT1Q3NsVYmAoZvUWXIyW7vW4\nuMUmnKCYBGIkSVS2HSpf6OxjKW8UW053e5B4IluRaGF/H4pp20I7nU9Q/OR7dvCT79kx73FFc9Ci\nFeh8/Jt2dNEaMvaoqtU1Hgl7iScyVQWAsX2GkSW2HBYUwG17eqwtQ6pZUGBYDxdHZskX9IrkHjt+\nb9GdnM7kKRR0R+HjtwSUoUAsFO/86ft3sXV9K30L1FqGg14++eDekv3llsqmnhb+7DfvW/BzLpfC\nZ3/hzv/T3pnHyVVVCfirpbd0ujv7AoQkhOSwhCg0S8ISwp7gwjIwqKAoI4uDjAjjDKLID5nIDDqI\nqKOjMAMObojgOCKLDgwQFomtgEE4JBAgCcTs3UlIOkl3zx/33arX1bV19evuqu7z/dPVVa/eO+/V\nvffcs9xz8x4zZWIDB0wdzUlHpDeaTCYKW1Blr6BG1lWzbvOOnB1i1Mjqbi6+bDtJ1gXBynBF7cxN\nuvYa6/53CsoNaDOnjOpWR6ovpDMOt7Nu8w7GjRqRc0FmsTSFzP7qZDynee8He6+gcg1uI0dU8/XP\nLij6+n5ggZ7boGRSaPFk08ga3ly7NWUN1+dxf44PWVD5LI4RNUnWtO/p5nrxjO6moJzsPqOrr4H4\n+sDt2Lqtne07el4708UXLplUKGYztqmOlW+3pYp1ZpK5l5APQPd1Zp05YcilTBKJOEcePIn/Xbqq\n6Imd+w2353zuyUSc0cEavSiy+MA9j7MW7M+LKzYwedzInMd5d/KO9j15J1jVVfEe6xzzWVDhPbny\nkUjEOSpU1DkfvV3sP5DU1ST56t/N7/ZeRa+D8ubfPhNHMqaxpkfquKdpZA1t29rp7OyifXdnVhdf\nMhFn2qRGXl/TmqrplTkb8oHjtRu3s32ne2CXnT2HGy89us+KBNKZgq+taWX7jt3dysSUSng7inwz\nsREZFlQUChfSLtZEPNatmngpeDeqL12V735qqhIpBZNPQdXVJOno7Eop0TDhiYz/7f2amL4G4mOx\nGE0jncvS70CaKVeYqmQiFa8olPXmXT25XEO11Uka66tTlRn87LSvsYkRGb9Hvt2f5wUDarHrB/1v\nn++5+wzGKLL4POedIiz+1DE5lzNAunxSIflqkrFUjDvXGihIW7Kt29xmqVG65CqNdC2+CoxBeQvq\n0+e+l9uuPiFrcBLcQNPZ5fZF2tPRmVORzZo6mt17OnnomTeAnoHRVHHG1h0pF19mMdC+MCkYBP+0\nwtW2Gl8g8FgMYSWbL6nAVR0I+b0jUlB+AJowZkTRlRdykU74cMH1QhmOfmabz+LwlqIPSHtXWmN9\ndbeYTMqCChRUFG6kppE13dZBhQPm2awArzALWVC+neabZIwfXcf6LTuCLUa6qE7G+zzJCv8e8Xgs\nb0zrvTKB6Xs1MidUYT4fvp/luyd/31Fk8fWGcGw1l+cB0gtwOzo68y4jCU+g8+2AMBzwE4PIt3wX\nkTjwfUCATuAyoB24M/h/mapeHhx7MXAJsBtYrKoP9Eb4uppk3obrB2k/Y8w1uMyaMoqHnoFfPP4a\nAIfO6r6lgBu0Ymxs3Unn7ugV1LimWhLxGCsDN1IUFpRPVOjqyu8qcLUAk+kq2H1Mb/f45zMpgo6W\nmTKfOWPPZMLoEeibm/NmWPp247d/nzy2PhV/DOPl9xshRjEINtXXsPLtNlqDa48dVcf2YAuO7Esm\nanh7w/aCVsecmeOofyyZc0EkOCvrtdXOW9DRmT/+VCxha6CuuudSjjA1VQluu/qEos/t7zm/BeUV\n1MBaHOF4Z74EjZqkex5XfeOJ1GQrexZfWv58LsPhQLIfLagPAF2qeixwHfAV4BbgWlU9HoiLyBki\nMhG4ApgHLARuEpGiRsdi8/m9m8vXUsssFOvxHXrru7uorkr0WJToq25vbN3J9p0dVCXjkbnCwJmz\nE0IDeaGsnKLOGU/XYisUbA3P5qK6L++aKRR/Kgav7Pxi6UJ1Cr2Cz5vF5xVUkDXp9wsanaGg0mVl\nggy1iCwoSN9POIU/2/kXHT2N9x8zvWB1kQOmjuEni9+XWo2fjfBWDXs6uyJxI3Wrixlhv4D0b59v\nR2nfX3JVMu8vwhZUPvn8uPP6mlb++Op6ILvFVd3Ngup7v6lkisniK0lBqep/46wigKnAZuAwVX0y\neO9B4BTgSGCJqu5R1TZgOTCnmGsUKtnh8RbUuqDcUS4X3z4TG1J+89kzxmY9bkxQlHJ7eydN9bmr\nSpfK5NBAHoWLD9KZfIUGtvAA09cSS56UBRXBTNAnfHgLqpDC9et58rlJvPL2k5cpExpIJmI9guJV\nyUS3lP9IFFRD9/VA4cW/2Qb4E5qncOnZcyJpc94dt6N9Dx0dXZEs3gxb3VG72fzvlG/iNHf2ZObs\nP45DZXzOY/qDhhHpJKneprhnc1OH12kOdxdfMRZUyS1NVTtF5E7gTOBcnELybAUagQagNfT+NiD/\nRiQBG9avo6WlpeBxG9e5weelV98AoG3L5pzfm9iU5I11HYwf0Z71mHin2/W1dXsHk0bHi7p+b0h0\npitVrF29gp2b3+jzOeNdLgFgx/ZWYHROmTv3pAuIrlm1kpaOtX2+ducOd854+3paWnpu/leIsKxr\n17pz+TViq954DbavzvndkZ1dXHjSOOI7VtPSsibrMVs3O+Ww/E23Ed+7rX/holPGM6p+V4/nVF/d\nia++9M47q2lp2UwuimkXid3ut96+cw9ViRjb29Ln05dfYlVN/4V/1693v8VLf1b2dHQRj+2OpC1X\nJ2Ps2tNFZ0f2/lMq69e6Pty6eWO382Ze4+wja1n1+susiuzKxdFQF2NHO2zZvCHnfftklLqaODuC\nGPY7a96iJb6+23Fvr0mPAa0bV9PS0v3zwSDqca5Ytu902dLrN24Csmf59mkqpKofF5EJwFIg7LNq\nALYAbThFlfl+QfbeazLNzQcVPK66aQP3PvUUXcmRwHb23msizc3ZNxB8o3U5P3z4Fc4+7XD2ypJa\n2rLqT7y86nUAJo0fRXNzczGiFs2qbStYuvwl4vEYC445os+JBQCPLHuON9e9w9R9JgM7c8r8wPPP\n8tZ6N1DPmX0gB03Pn/ZdDM3AGadmXxxdiJaWlm6y7rd1Jz96/DepgGnzoYfkXTgKkH/lBeyueYdf\nLX2OrTudVXLQgTM58qDsiw4fe7mFVRucQjxg1gya37N31uMy5c7F9Jk7uf+ZhwHnCp227948qwrA\n3CObI4kL5WLVttfghWXsO20/9jy9kbEj6yJpy40PbGBD607Gjm6MtG80jN/MPUueYNaMKTQ3uzV4\nxT7ngWD6C79j3Za1TJu6N83N2VO5N7Q9y8Ez9+GM+TP4xI2PsKejk0MOltTCZc+7iTXw7O8BmD/3\n0B6FVweawXzO23bshvveobExt81SUi8RkQtE5Jrg351AB/B7EfGruhYBT+IU17EiUi0iTcABwLJi\nrlGsi8+7uFJJEnkGyzMX7M8Prj8tq3KCjHpqBUqLlIKP1Yxtqo1EOUFazkIusbC7oa9FasOUopyy\nMbqhltODaskQjRvSx5pyFWkNEw6GR+HCGtNYm8oUraupSrmXk4lYvyonSLuRXFZZNEkSkE5cidrF\nN2vf0Vz/ybk5N4YcbLwrLl/7GddYxYXvO4hRDTXMmemyF7O7+Hw7iPeq5uNQJFXNPE+x2FJb7n3A\noSLyOC7e9HfA5cANIvIUUAXcq6p/AW4DlgC/xSVR9FyUkk34Itdt+GB0Okki94CZiMfyBtXDBUrD\na4yiwsegCtW26g1ezoIKqkDh3XLgnJNmpl73tZAu9NzGO1/6eDgeEFW1Al/+qL4unYk6EM/e94Hd\nezoiS5KA9G/SH/dw+IETI504RYlPbio2OeSChQfw/mOmMz1LCSU/WZgwui7v+qvhQDH7QZXU0lT1\nXeC8LB8tyHLsHcAdvb1G0TuajqgmHksvjstWLLZYxmbZdC5K9hpfz/77NHHkQfnLlvSGsUGdsqaR\n1dCzaEGKsEUSVZJE1IxuqOXq85t5a21bJJlimenk+QbW8KQhqlTmQ2UCv3j8NUbUVqXuJ+oMuGxU\nJ33xUldbMDILKmg3A53qPdjMf+/erFi9Jad7OJOZU0bnrOrtJw/DPUECQpUkKrPUUXGzi3g8xqiG\nGja1OTdOPguqEGEXX2OeululUpVM9KqUUDGc0LwPdHUxd/ZkXng+d+JDfT+kmfcHhaqo94bqqgT1\ndVWp6vH5XFMTi6wY0BsO3m8s+05q4OD9xqae+UAsNPUpz77kTlRbMHgrvJzbT38wurGWqz8STZzG\nP8PJWbaYH27E4zHisQrdUbfYGBTAwrnTUq/7oqDGhqomR7lItz+prU6y6OjpBZ+X7xiuZl/Z/uyR\nE17zlK88TzhYHZWLr6Yqwbc/dyIfOkVS8Yt8MkSF7wNeMUe1iZ2f5AyEFThUmTqpgU+f+x7OPalw\nQebhQCIRr9RafMWLFq6+3ZfBt64mmXJj9IeLbzBJxQ/K1L3XX4TjUPkWebq1UMEGlv1g5dTVDqQF\n1V1B9WXSFma4uviiJBaLcdrcad32uBrOJBOxfkmS6HeSvQggJhJx7vzSqZx38izmzi7OT5wL7+bL\nVhW9kknvvFqegej+wltQuTbDCzNxTD2xWP8MwAOZJOEzxbZ5CypiF99A18Mzhi6JeLwyY1C9TcMe\n21THBYsO7PN1xzXVsXrdtopx8RWL3713uFlQo1JWUWGl87HTD2T1um2RWRxhfLWEgWhXVT4GFbGC\nGjlMY1BG/5FIxKLP4hsIovKb95bzTpnFhJG7hp4F1Y8pwuWMd/EVEzeZPWMcs2cUV4G7t4xqqOGG\nS+YxdVL+xcdR4C0onyQRVV86avZk3lq7lcMLbJ5nGMVSwRbU4KwRmD1jHO1b+n8QGWhSLr5hZkH5\nuNJAJCcU4jCZUPigCMiMQUWVxTemsZZLzy6qlKZhFIWLQVWgBTWcMs0GgtENNfz1ybOYXWBn26HG\nKG9BDaO4SX8lSRhG1CQScdp3deT8vGx77WBZUEOVWCzGRyOI0VUaPkliOLk2q5P9E4MyjKhJxPNb\nUGXbcs2CMqLAZ2UWKgU1lKhKxonFwGfvDlY81zAKkUzEU5Xgs34+gLL0ClNQRhQ0jazh6vObU4Vb\nhwOxWIyqZIJdu53rxCwoo1xJJGJ0VmIMylx8RlREWT6pUqipipuCMsqeZDy/BVW2LTcZL1vRDKPs\nCSdGRFXN3DCiJpGI0VGRtfhs1mcYJVOdDCso60tGeZKIx8lT6ah8FdRw3yvFMPpCdWjbGVNQRrlS\nKJRTti3XkiQMo3S6u/isLxnlSaFxvmxbriVJGEbpmIIyKoFCnrKSsvhEJAn8BzANqAYWA38G7gQ6\ngWWqenlw7MXAJcBuYLGqPlDMNWzthmGUTo0lSRgVQH+5+C4ANqjqfGAh8C3gFuBaVT0eiIvIGSIy\nEbgCmBccd5OIFLVisrfVzA3DSBO2msyCMsqVQtnapa6Dugf4WfA6AewBDlPVJ4P3HgROxVlTS1R1\nD9AmIsuBOUBLoQsUu+W7YRg9qTEXn1EBFLKgSlJQqvougIg04BTVF4CvhQ7ZCjQCDUBr6P1tQFMx\n1zALyjBKx2JQRiVQKEmi5EoSIjIFuA/4lqr+RERuDn3cAGwB2nCKKvP9grz4/B+JD2KqeUtLrScC\nZQAADvpJREFUQSOvLKkkuStJ1jCVIHfrls2p16+8/Gf+sqpsi8bkpBKec5hKk9czmHJv2rQ57+el\nJklMBB4GLlfVx4K3/ygi81X1CWAR8CiwFFgsItVAHXAAsKyYaxxxxOGliBYJLS0tNDc3D9r1S6WS\n5K4kWcNUitzPr1nG0uWvAXDYoe9JFc2tFCrlOXsqTV7PYMu99M0XYcXKnJ+XOq36PDAKuE5EvgR0\nAZ8BvhkkQbwM3KuqXSJyG7AEiOGSKHaVeE3DMIok7OKrNhefUab0VwzqSuDKLB8tyHLsHcAdpVzH\nMIzSCFeSsLJhRrlSKIvPWq5hDEFsHZRRCVRsqSPDMErHu/hiMatraZQvCbOgDGP44auZJ005GWVM\nofWupqAMYwjiY1C24N0oZwqtdzUFZRhDEO/iS1j4yShjzIIyjGGIV1Dm4jPKGYtBGcYwpCZlQZmC\nMsoXy+IzjGGIr79nFpRRzpgFZRjDEG9B2RIoo5yxGJRhDENSSRJmQRlljGXxGcYwxNLMjUqg0ATK\nFJRhDEFqq12ZTVNQRjlTqH1W3iYxhmEUpL6uios+cDBdO9YNtiiGkRNz8RnGMOWsBfszdULNYIth\nGDmpr63K+7kpKMMwDGNQOGDaGK658Iicn5uCMgzDMAaFRDzGMXP2yvm5KSjDMAyjLDEFZRiGYZQl\nfcriE5GjgH9W1RNEZAZwJ9AJLFPVy4NjLgYuAXYDi1X1gb6JbBiGYQwHSragRORzwPcBnyZ0C3Ct\nqh4PxEXkDBGZCFwBzAMWAjeJSP60DcMwDMOgby6+FcBZof+bVfXJ4PWDwCnAkcASVd2jqm3AcmBO\nH65pGIZhDBNKVlCqej+wJ/RWeEnwVqARaABaQ+9vA5pKvaZhGIYxfIiykkRn6HUDsAVowymqzPcL\n0tLSEp1kJTDY1y+VSpK7kmQNU2lyV5q8nkqTu9Lk9ZSz3FEqqD+IyHxVfQJYBDwKLAUWi0g1UAcc\nACwrdKLm5mYrIGYYhjHMiVJB/T3w/SAJ4mXgXlXtEpHbgCU4F+C1qrorwmsahmEYQ5RYV1fXYMtg\nGIZhGD2whbqGYRhGWWIKyjAMwyhLTEEZhmEYZYkpKMMwDKMsGVI76orIY8Clqvpqid9vBO7Grd2q\nAq5S1d+JyFzgVlw9wd+o6pdD39kfuE9V5wT/jwC+A0wDqoErVPX3Wa4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| |
"text/plain": [ | |
"<matplotlib.figure.Figure at 0x130419be0>" | |
] | |
}, | |
"metadata": {}, | |
"output_type": "display_data" | |
} | |
], | |
"source": [] | |
}, | |
{ | |
"cell_type": "markdown", | |
"metadata": {}, | |
"source": [ | |
"** Now recreate this plot but create 3 separate plots with each plot representing a Reason for the 911 call**" | |
] | |
}, | |
{ | |
"cell_type": "code", | |
"execution_count": 199, | |
"metadata": { | |
"collapsed": false | |
}, | |
"outputs": [ | |
{ | |
"data": { | |
"image/png": 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+xYx7qcjmS8B/jgIOV82xrITxLoRmHHczjpnRjGNvxjEDK2vcdoaynuX6TwF8TxCEp9Xj\n/xTACQDfUUUQxwHcL4qiLAjCVwEcgBICvFMUxcJSDH6lslQqPibRbrYQX2kROTiCIIha1DRQoihm\nALzf4k83Wxx7D4B7Fj+s5oDloEoLEUmsgkJdZqBKC8jBEQRB1IJaHS0CruJbiMzcSsXXZDLzUkkZ\nryQraj6CIIilhAzUImCe00KaxRpVfE7Da81CSWeUKMxHEMRSQwZqESwmB6WF+JxNWwelN1ClVe5B\njUwmcc8vjyyopIAgiIWxagxUMrP8egzeSWIRBsrp0PJQuUJpQd5Yo7iYPKgn+0fw86fPQByMN3oo\nBHHRsCoM1PFzMfz+p/biudfOL+v3sjqgheSgrLbbuOsbz+HT335h6QZ4gSmXNY9vtRsobe+v1X2e\nBLGSWBXdzMdmUgCA8Zn0sn4v86AWomJjggiWf2KIgzHIstwU3cENHtQqD/ExA1ygEB9BLBurwoPK\n5pSuDPnC8k4ei8pBlXUiCZdmjAolCbOp/NIM8AJzMYX4mAe1kK1VCIJYGKvCQGXyioHKNZGBKnOZ\nuXFPKACYimcXP7hlwGigVrdnwTxE8qAIYvlYFQYqqxqo/DILDJZaxceYjGcWP7hloKTLQbGaqNWK\nFuIjD4oglotVYaCY57TcIT7mQZQled4Scf2Oui6zgYo1i4HS56BWt2fBO9c3kcqSIJqdVWGgeA6q\nQR4UMH+RgJWKjzHZlCG+1e1Z8BzUKj9PglhJrA4DxXNQpWX7TrYXEmO+K2tNxeeoyEE1Y4hvtU/c\nWg5qdZ8nQawkVoeBKiy/is/sMc13gtar+OZ0qr2Az908IonSxeNBaflGCvERxHKxKuqgGhHiM0/I\n852gy7pmsWPTSv1Wd3sQfq8LE7FMU9RCXUwhPi6SIJk5QSwbq8ODyi+/B2XeYmO+OSj9dhtXCl0A\ngPfctBVr2oPI5ktIZ4tLM9ALSPki6sVHhboEsfysDg+qAQZqsR6UJCnHOx0O/Oo1G7Dzkg6s7Qpj\nZFLpijEZzyIc9C7NYC8QxYspB1WiQl2CWG5WhQfFxBH54vKJJMyy6vnmJtiE7nE74XA4+Fbva9oC\nAJpDKFG+GEN85EERxLKxKgxUI1odLdaDyqsrca/HZXi9PeoHAMSTK7/d0UXVSWIRRdkEQSyMpjdQ\n5bLEpb/NJJJg3p7PazRQkZAS1kuml3f7kCNnpvEH/28vjp6dqfs9+rzbQra9byY0kcTqNsQEsZJo\negOV1XlNpbK8bMl68/fM10AxNZjP5EFF1LzTcu9v9fQro0ikC/jEPx+o+z2G7TYuEpEEeVAEsXw0\nv4HKGfNOyxXmYxNVwOc2/Lte2DhXioFiuS8AGJ5I1vWei0VmLknawoc8KIJYPprfQOWNcuzlCvNV\nGqj5fS+b6Lwe40+ghfiWV2aur+/55f6zdb2ndJGE+PTnSZ0kCGL5WAUGqjEeFJuQg/4FelCqgfJ5\njUr/kN8Np9Ox7B6U3sAePTtd13tKF0mIz9BzcZWLQQhiJdH0BiqXN04Yy9WPr7hEBsrsQTkcDoQD\nngYYKG382Xx9k/DF0uqoeJGcJ0GsNJreQLHNCt3qrrTLFuJTPYagz6P8e94iCescFKDkoZbbQLHQ\nldPpQC5fn5EvSRfHxK0/N2p1RKxU4skcfv9Te/HUoZFGD2XJaHoDxUJ8rWEfgOUM8SnfEwwsrUgC\nAKIhL5KZImR5+TYBZAYzGvTWvTNx6SIJfenPbTWfZ7MwPJHEoy8ONnoYK47RyRSSmQJeP11fiL4Z\naHoDxUJ6rRHVQDVKJDHPDfsKxTLcLgdcrsqfIBL0QpJkpHPL1xmDGZtIyINSWapLrq/fbkSfj1pt\nGDyoVewpNgs/ekzE1358GOMz6UYPZUXB7s2ZuebYDaEemt5AMZl5a0TpwJCvM3+yWLQc1MJCfPli\nuaKLBCMcVD4ztYxhPtbCh8nc6/GiLhbxgOE8i+Vl9WyJSqZnlQk4lsg1eCQrC7Yn3czc6rkuzW+g\nzCG+ZerHV+I5KMWDmq/MulDFQEVVqXliGbtJsNUXM1D5OsQmF0sdlP7cJNnoORLLDzNMs03QDqwe\nUtki7vjik3jutfOL+hyWFycPagXBDVRkeXNQi1bxFcqW+SegMcW6zMAy42iW71vBOkm4Xc7VbaBM\n4Vsq1m0csiwjllAMUzP0q6yHc+fnMDCWwMHjE4v6HCbgSWaKy9r27UJSdbsNQRDcAL4LYDMAL4C7\nARwDcC8ACcARURRvV4/9CIDbABQB3C2K4oMXbNQ6KgxUwwp1598stlUND5ppRD++QrEMl9OBgGpw\n6wnxlcoSnE4HvJ7VbaDMyr3VfK4rnXSuxBcIq8aDUheis6nFnY8+zB6by6G3M7Soz1sJ1PKgPgBg\nWhTFGwG8HcDXAXwJwJ2iKN4EwCkIwrsFQegGcAeAG9TjPicIgvXsu8SYQ3z1KtAWCzdQqpGZ7zYM\n+WK5olEsI6LmoJKZ5esmUShJ8Hqc8KuFw/VIzUtlCW6XEx736jZQ5nMjqXnjiOnCV4ud0FcK7Dlf\nrMHV36erJcxXa8PCHwP4ifrfLgAlAFeJorhffW0vgLdB8aYOiKJYApAQBOEUgD0A+pd+yEYaJTPn\ndVALCPHJsoxCcWWF+IolCW6XC37VaNbrQXlcDnhczlW9o27F7smrWBCy0tELI+KrRCSxVB6UfuG0\nWoQSVQ2UKIoZABAEIQLFUN0F4Iu6Q5IAogAiAOZ0r6cAtNQzgP7+xdmwqZlZAMDI0GkAwPDoGPr7\n5/fjLGQMY2Nx5fsGlb51U9Oxuj+H7USby6Ys3zMeV27YMwMj6O+3l9Iu9trpSaUzgAxMTYwBAI6d\nOAlHpnrBXzKVgSxLKJeLyBfkmuNZyvEuJydPnwGgFIOXyjIOv3YEY63LEiBYMM16rYHqY3/1nPY8\njI7X/8xdaBYzjlNnlakzNpfFwYMH4XA4FvQ5A0MJ/t+vHjuNsFw7p7VSrp8dNbd8FwRhA4CfAvi6\nKIo/EgThC7o/RwDMAkhAMVTm12vS19dX/2gt+MFTTyHgk9B35R5g7+Noae1AX9+Vdb+/v79/QWM4\ncOoVAGlcuWcX7n38KYTC0bo/J5kpAP85iq6ONsv3TMWz+ObeRxEIWf99MeO2w/ngIwj7XNi+bTP2\n9h/G2nWb0Ne3sep7PI8+Dj/KCAU8mE3mq45nqce7XPT392P9ho3AC3FEgl7Ek3lsu1TA9o1tjR6a\nLc16rYHaYz83dwqAsjgsyO4VcZ6Lvd7Pnz0MIImyBFy26wqEAgtb/ByfPA5lKgYC4Q709V1e9fiV\ndJ/YGcqqOSg1t/QIgL8URfH76suvCIJwo/rf7wCwH8DLAN4sCIJXEIQWADsAHFmKgdcikSkgEvTw\ncNly9+ILLEBmrrU5sl4fREIsB7WcIgkJbreTN6+tV2bu5iG+1Rv2YqGThda8rRTKkoy7v/ciHn9p\nZXVhkGUZmVx9+VYW4nO7nJhN5ldFTVpKl2teTJivUFp9Ib5aIom/BtAK4FOCIDwpCMI+AJ8E8BlB\nEJ4F4AFwvyiKEwC+CuAAgMehiCgu+OwqyzJmk3m0RnxccLB8vfiU7/H7XOq/65+0WJ7M3CiW4fe6\n4XU7MTWbXbZaqGKpDK/HyQ1uto4cVPkiE0mE1ZVts8rM51J5vHBkHPsPL67eZqn54aMi3n/XQxgc\nS9Q8NqZOvJt6IygUy3WVQ6x09AvRxQglirr78qIQSYii+L8B/G+LP91scew9AO5Z7IDiiRxyhXJd\nEslMroRSWUJL2Mc9qOWug/K6XeoEXf/3alttWIskAKCzNYDhiST+8NMP4+6Pvgm7tnQsbsA1KJYk\neN0uPqZ6PNFiSUYo4ITb7USpLEOSZDidC4ufr2TYYoQLYppUEMKUmfV45vliGZOxDDZ0Ry70sPDz\np5X88Xd+cQTvucZX9dhYIgen04FNPVGcGZnDbDLPPdtmZak8KP19ObNKBCQrrlD3H+47iNs+9zh+\n9tTpmu47+zFbwz64XE64Xc5l3w/K456/B5Gv0smc8ak/ug6/eeMWlCUZzy6ywrwW5bKEsiTD43Yi\nwGXm9ar4lPMHgLLUnBN3LSraWjWpzJx5G6k6yhd++MgJ3PHFJ3lboQvJ5Vu7AACHT01hOlF9bLFE\nDm0RHzpalNZmq6FYN5ldGg+KefbtUR9iczlIq6DjyYozUOJgDADw3QeO4sCr1Sdm9mOyIl2f17Xs\n220sJMRVbasNxvo1EXzoXbvg97pw+OTk4gZbg6LO2M7HgyqXJbjdDm6gVmuYz7w55Xxr3lYKrHQg\nUYcHdfTsDMqSvCwGSh99eFFM2R6ndJHIoT3q52Ulq6FYV1+QvygDpd6n3e0hlCV5WVulXShWnIFi\nTV8BYGg8WfXYOZ0HBSgT/nKG+FxOB5xORSQwny7XWg7K3kABisHYvbUTwxMp24licDyBr//k8OJi\n16qx9XpcPAdVrwflcjpXvYFiv22I56Ca8zyZB5XOFqv2E5QkGYPjSj4olb3wxeLs+rqcDpyP2U+q\nqWwRxZKkGKgIM1DNHcoqlsrIFcpoj6rns5gQn3pfdncEASj7QzU7K85A6Q3MXLr6j8V+zJaw3oNa\nPhUfm5j9PjeydaqQAG2Cq5aDYlxxqRr+ODlV8beBsQTu/Jdn8cgLg3jhyFhd3316ZBYf+8I+jE1r\n9STMo/O4nLpC3erXsSzJkGQ1xOlShSKr1EAVTQaqWQt19b9puorhmYhl+K7K9arr7Nh3cBh//pVn\nqn5fvlCC1+PChu4IJudKyOSK+Muv7ccTLw8ZjmOLtPYWP9rUhWy8ybtJsHDr+jVKrm8xBpfdl93t\nioGKJXK4f98p/M23nm/aBscrzkAVSmV0qvHlWi7qXNLoQfm9riVpdfSTJ07iBw8dq3qM3kC1R/1I\nZop1T1zadu+1DdSV2+0N1BfuO8iv0WQ8U9d39x+fwPBEEq+d1j6Ph/g8epl59XMpl7VVr9vtMHzO\naoP9rjzE16QelL59VTWhxLnzWs19NcNSDy8dG4c4FEf/Cfui0XxRgs/jwsaeCIolGfsODuP4QKyi\neer4jHKP97SHdB5Ucxso9jv0dobgdDqWJMS3pk01UHM57D88ikPiJIbGayskVyIrykDJsox8oYyO\n1gCA2s1SuUgisrQhvl8+cxb/te9U1dVjSW+gVIPKuizXYj4GamNPBC1hL8ShmOH1YknG8EQSPao7\nPxGrz0BNqzJdfZ2EloNSFIlulwPZGh4Ua23kdjvhcTMPqjk9i1pwD8rf7B6UNu7qBkqbzBa7aWYi\npXxP/wn7PKrS9suJzb1Krf9Dzw0AUFS6etg93t0RRHuUPXPNHcZiffiiIS9aw97FhfhKZXjcTu3a\nJHOYUheuR8/OLH6wC+S5187jZ0+dXtB7V5SB4mopnxuhgMfgHVgp+qxCfGVJXlRfuEKxjNlUHpIM\niINx2+NmU3lEQ8r3dqg3RL29weoRSTAcDge624OYmcsZrkE8rTy8u7d0wuV0YLJeA2Wx2Rsbj1c1\nuD6vu6ahL+m22mCGerXuqmsO8TXrrrr6mqFqi7+l9KBYmL7/xIStqoztjbZJNVDDE0ru2bxAnFB3\n0O1uDyLod8PrcTW9gWJ9+MIBL1rD/sXlkksSvG4nVzien0pzA3jsXKzaW5ec+/Yex998+3nIsox/\ne/g4vvvAUR51mQ8rykDp64OiIS/mUnkcPxfDH/39Y3jqUGVfuLlUAU6Htj0F68ywGC9qWlfgdvSc\n9aojkysimy+hU/X02lQDVW/tARtfPQYKUEKIxZJk6G4eSyqTzbo1YXS2BuoO8bECPmsPSrkdAl5X\nzQLIkl7FqG5bn82XGiZtPTEQw13feHZJu28kMwW8PpCp8KAaXahbLEmQZaXu7J9+eAhP9g/X9T6j\nB2VveM7pCmYXa6CYBzWXKuD0iHX3M9bZf3NP1PC62XsbVxdhPR0hOBwOdET9vHDXjCzLK2pPpKf6\nh/FPPzxU8XxoHpQHrREfcoVyXTsJWFEoSvC4XTw/p19gHz07s6xdN555ZQSHTkxiKp7F+SllYbGQ\n3RlWlIEq6EJf0ZAXibR2Ux8SK0MEs8kcoiEfXGpxaL0J/mro1XLHbVYd7Bi2UuEudZ3tRQp1FOrq\n6WhRDKG8JZ0kAAAgAElEQVS+OjyeUs6xtzOE7vYgYol8XRPn9GyuYqz6EJ8yrno8KGagNJn5J/75\nAP7hvpfrOqel5i++th+vnZ7Gy8fGl+wzH3z2HP7ruRhePzMNYOGbUy4lyUwB7/vEA/juA0eRSBew\n7+AwHntxqPYbYcxBpWwMeSZXVAt0wwCA9CJEEpIkI5EpgPU+tduQj3lQXW0B+DxaoXeFBxXLIBTw\n8I4e7S1+zKbyFSvzQrGMz9zzIj70t48s2sAuFY+9NIR9B4crFlAptQYqHPTy+WShRbbFUhkejxPR\nkBcupwOjU5pkP5bI1Z0GqMXMXJarPK3HIfGIzvNHxrhAYyGLxxVloPSeRUvIh7IkY0h1908NVYbb\nZlMFnn8CsCTtjqbimhE4MRi3nIxYHocZjvnGw7UcVH2X3+rzmQfV2xHiqp0zI3O4b+9xW++nUCzz\nm2QmoZ0nq+th4wn4XPXnoHQhPgA4WSUseqHQT0LMyC4FzIjnC2U4HFrfxUZ6UPsODkOWgZ8/fQaZ\nvHLe9ba10d8XdrVQrLRj5yVK5xLzBD84nsD9+04ZVuMP7D+LMxbeUSpbhCTJ2L2lE36vC4+8MFDx\nbJbLEkplGT6PCw6HA2tatK4QegMlyzImYhl+rwPKcyHLRmm2JMm4+96XcPD4BFLZIs6MauOaimcX\n9dvdv+8U7vjikwtSNrJn17zwY15FJOjl88lCa89YiM/pdBjmRUFtbHzMJiI0X77+k1fx5195xtbT\nm4ilwRzFA4dH+esLqctaWQbKFOIDgLPqDTY6lTas+oolCelsES1hL39tKdodsZujtyOEQrHMv18P\n2zSNqQ07WhZmoOYT4gOMYbmY6kH1dASxRn1ov/mz1/Djx0/i+detJef698+lCtz42nlQ1cJ1rHjV\n7XIaJr5YMm/7vgvVN+3Fo5rXVE+T23rRT+Iel5OLWhrlQcmyjMdeVBq9drYGuIhg2pSftEMf4rPr\nJjGoGqjtG9vgdDoqhAr3PXQc33/wGM6MKHmqsek0vvXz1/HjJ05WfBarU+ztDOFdb7oEsUQejzw/\nYDjGLBja2utHOODBxp4IsvkyX33PJpUIgdlAAcbnThyM49CJSb6nGhN8TMYyuO1zj+PHj1eOs16e\n6h/GwFgCj9bpserhBqpoNlDMg/JoHtQCG70WShJ/hlnaAQDe/Ia1AICzo0uj5BubTiNXKEO0cBoA\n4LyuhOWEbsGq96DqNfIr00B5NAM1oFMUnRzWjMWcSSABLJEHpRqoN12h/KinR+YqjuEelCkHVbeB\nqrNQl2FlAGPJElrDPgT9Hi4rPTuqjNVOrDFtWmmz41iBH89BqZ5CtevIJg6Xy4E3X7EOu7Z0YMva\nFkiSzH8bPYfPpvG7dz3IO4UsJQde1VZp2ToKjM3k8iW8fnq64nX9gsjjcfHr06hOEicG4tyAeN1O\nZFXjUSiW6wpl1SOSGJpQnreNPRGE/B5DoW6pLOE19TqNqOGj89PK/1uFt9mKuSXsxXtv3oaAz4X7\n950yqCB5TaD6LNy4O4IffPrX0NsRMox5Qpd/YrDiVv13s7zxr7/5EgCa4OP1M9MolSUekamF2eBn\nckX+3gf2n5lXwj9XKHFDX+FBqdcoEvTynPZCG70Wi2VNWaxreLB7SycAe89sMpaxTWdYwTxWO+HF\n+SnrbiDsXM+dn8PvffKhmqU8wEozUIVKA6VXTOnDfGaJOQCthmcBkxSDGajLLmkHYD3Zsx+aeVA+\njwuhgKduAzXfHBSXsasPYqksYS6tNdTVryoB+2r0GXXcITWXwsbLQ3xcxVc7l1fUeVDbNrTi87e/\nGbu2KmEhqxj6SydTkGRYil0WQ7Ek4RVRq+laSP5x7/MDuPMbz+KEyXgm0/rQ4fJ5UI+/NIQPf+aR\nCkP/4lHNM87kS4ZVaD2rbv21scsHsBDfxu4IQgG3wfCdHIpzg8EmIVbwHbNQn7HxR0M+tIR9uPHK\n9Ygn89zIAvq8s3LvOR0OeNwuBNR7NKN+PxNI1PKgWBjr1ms3wuN2cg+KreStFk96ZFnGv9z/Kj76\nD08YDOmZ0TnIamH6ZDxbsw0bANzzyyP42Bf2GdIG+kWfLMs4ORRH0O9GNKTloKwMSa5Qwg8eOsbz\noVbjLpYlfo+yOcPtcuCStVG4XU5MzVrnoL7248P4y6/vx8PPD9Q8p2JJWwwds5GuM1FEwGec39g9\n139iEpIM/OSJU9j/ymjF+/WsKANlFkkwWK3PyaFKD6pV70F5Fu9BTc9mEQp4sFad/K2aUbLJgK14\nAOVhqUckkckVK1aNtdBEEsrnT8WzkGTtupgNVNymHot5fpduaDN8nlaoq4wnYCrWtXLHy6qkXJ9/\nssvFDU8kcT6mfMYLR8aXVE00OpVCqSzxpP5CwohsvObtHvRNPD1uJzfgF3KLB1mW8V9PnsL0XI6H\n0RjMmwn43MjkSsjoxlGfgVLUcl6PC0kbj2toPInO1gCCfg9CAY/ht9cXi7ME/Jgq/Y4nKsOMczoP\nCgDWr1F+I31JhF1NIFNMMpGGXmLOaDeJCiRJxvFzMSXs3RbEpp4IhsaTKJUlnBhQFh9zqep5kAcO\nnMXe5wcwOpXmgiJAWxz/3tsEuF0O/OvPXq8qOjg9PItfPHMGwxNJQ+5H70GdGp7FZDyL63b1wO1y\n6jyoyt/y+w8ew0+eOIVPfuNZ/EQXTmVh36nZLDegANCuLtw7WwNwuZzobPVbGj5ZlrkQ7Z/vfxX7\nD1c3GLNJ7fqdGIxZepLMq75qRzcAgG1wwDxq9lt4PS5846evVf2+FWGghieSODkUt8xBAcD2DW3o\nbA3g9Ig+nqncuOGgLgflrZ2DGp5IGuo8zEzFs+hqDVQVPkzPZhHwuQ1t/juifqSyRVvjmM2X8E8/\nPIT33/UQXlKVZvWG+EK85kO5wdik0NupPPBtUT/cLge/EWZT1pMV86Au3diq/Fv9POZB8dZN6nXM\n5kt4/vXz+N1PPoSTpnhziXeS0G4huxg6k0G3hn2Yns3itdPTeP718zXbr9RjyAZUo7Jjk+LxLqST\nCDM4rFMBQx8G87iccLmc6GoL2IYwloLTI7MYmVQ+3xzqYf0R26N+g+DF6lgrcvkS/F4XIkGPZYgv\nlS0ilshhY4/Sdifk9yBXKPPf+vDJKTgditds9qCKJalCFp5gYXi1XpCFovUlEXZbzzDFJAuNTVTx\noNiCbGgiiVS2yAUel6xtQaks4fTwLO+kkKjSPm1mLot7fnmU/1t/fVm+5aar1uNP3rsHyUwBn/3e\nS5YTtCzL+NbPXwe7fY+c0RkoXSs2Zgze/IZ1AJT9xrweV0Uo/vXT0/jvA+ewtjOE9pYAfvDQcb6Y\nOnp2Bl/98WH89EmlEJY9wyztwK55V2sQ8WS+wvuPJXJIZYvYtqEVXo8L3/nF61XzQ/q5JVco46zF\nXHp+Oo2OFj8XZ1yyrgWAMmfLsowTgzF0tgawY1MbkplC1Xmg4QZqdCqFj31hH/7vV54xeFD63FJn\nawBrO0OIJbQLzHrfsXAVoPegrFe4pbKET37zWfztd16w/Hs6q9U3BXyKUbDqjTUzl0Vnq9/wGlvN\nffzLT1t+/hfuO4h9B7V6FZfTAbervsvPaj7YxD9pelhdTgfe8oZ1uPXaTQgFPLZbELAbn904zONj\nOSivrrcgoBj6/hOTkOXKeDPv5u7WZMF2cvunXxmFz+PAh39jJwDg/33reXz23pfx6qnK9k2MR14Y\nwPvvehCnhqurAtnEI2xSzmkhNSRs4h+f0ZK7rIkngy0mNnZHEEvkbWXa1Tg1HMen/vU5/OGnH7Y1\nKPp7xBwqZSE6LprRrfDrkSYrBsqNSNBrOf5hXXgP0AqTM7kScvkSxKE4Lt3QhnVdIYxOpSDLsqGn\nozkczjyoqOpBMTGP3vOwK1pnHhSbLNlC0Ry10P+NdUtge6dtXqvUVT364iBXlSUzRdtC/sGxJCRJ\n5s+lXkhycmgWrREfuloDePsNm/ErV2/A2fNzllvhDE0kcXwgxuXwR85WelCyLOPAq+cR9Lt5OzOH\nw4HOFr/hdwUUxSYA/N8/6MNt79kNAHj4hQEAmgiEhRG9qkii3WSgOlsVxaP5vmMLvGsu68b7btmG\nWCKP+/edsrw+gNZaapO6iDHnrvLFMqbiWaztDPNn8iphDQDF4I/PZDCXKmDHpjb+TFVTVjbcQN39\nvRf5f7Okr88U4utq0zwa1qGXrdb0Xgzb3dZuFf3ikXHEEnnMzOUsJzLmAne1BuBwOJR9VUzhsnyx\njGSmyMNuDDa+ofEkDp2YqPCkjp+bQW9HCHu2KQnL+TZv1Nd8sFBPJKid+8d/vw93/M4b0Bbx2Vaj\nz8zl4HE7ecU+m9R4N3P15tZ7UGdU4cWoyWtgK0e3pQelPQS8rqbTi+t398LrdnKVnznkIMsyZuay\nGJ1K4Vs/P4Jsvoz7Hjpe9bqwB0xYhAfFJn69gWIeuselGGC3arw3qsWkgzU67Vd8R76ET37zORw+\nOYV4Mm/ZemZmLounD43yuj6zJ8omN3av6Vfa9YT4soUyAj7FQKVzJcPqfzaZx2F1wbBJ50EBysIt\nllT2F9rQHcHarjCy+TJm5nIGr9PcPXvO5EGxBdVkTFfiYBPiYx4Ue87jiTwCPq3bvnKMB36viy+I\nmADnss3KvXDJWmXlzvKe7L12ApHxmPL7X7pBiTAwFWc8kcP0bBbbN7TBoRZ1vf+t2+FwAD97+kyF\np89CWbvVnKz+PmfzwtB4EtOzWVy7s8dQGtHREsBsyujpzCSy8Htd2L6xDdfs7EF71IcnDw4jVyjx\nrhsx9dp71Fze1vUtCPnd2HOpMt90qYZqyvTMMU9sU28Uv3XLNnS0+PGLp8/YGnE2t1yuzmPmMOe4\numBZ2xXCzks68MU/fQve/1YBDodyXU7ofiNfMxio4Qlt4mMrf3MOqrM1wF1WtkpjK6uglQdlM0np\nk4DmH0r/Wlebqs6LKEZBL5tmky+bjBltUc3jk2QYmjMWS2WkcyWsaQ/gnW+8xHJstehQaz7iyTw/\nd7bC1dMa8SGRLlTcYM+/PobBsQQ6WwOaKlB9sNkN4jap+GZTeX4Dm8Na+l58DKuwKFtht0eUkOjd\nH3sTPvguxZMyG9J9B4fxoc88io/+wxMoFMvoaPHjlZNTVRVGg2MJtEZ8fPJbSH7IKsTHwjtrO5Rr\nzLplMO+iXjUYY2giiUyuxHeoHdDlu/LFMl49OYW//melE8b7fuVSABYhvkIJLqeDeyT6ia9WiE+W\nZS3EF1LOiS10EukCbvvcY/iPR04o56ga4WBANRLZIvcmwkEP1nUpoeXXTk8b7jP9Yk6WZd5FguWg\nwgEPgn63IcRXKBoXRwy28GSRkngyZ9iKh9Ee9fP7bXQqBbfLibXq+LZvbMPlWztRLkvwe124+jIl\nJ2InImK/PwuBMy+TzQtruzQF4drOMK7f3auED6eMBo8ttLeub634DjY3scUhy8sxOlorn6G5ZB5R\nNaLkdjnx1ms3IZ0r4cDh8/w+ZPMiu087WgL40d3vwi19GwBonqd5UcgWWpt7o/B73bh8WycKJclW\n8ceuHTP+5hQIyz+tVdMPwibFEIXV1nUs/7RjczsXxlRLyTTcQOlhBsrndSHo9/DtwzstckJZCw+q\nmsx8bDrNV4iAsSCXYTY+bVGfUg2vW3Ex97vT5EHt2daF9WvCuOnK9QCMDTfn+IPqw3W7ewBUKlxq\n0a6TmjMVTchiq2vW5kSvVnrp2Dg+e+9LgMOBD75zJzxuF1rDPu4x8O3r1RtmuxoC/O8DZ/nfzB6U\nvhcfI+j3IOBzGVbzLF/WHlYmux2b2nlIwzxRMK+ioyWAX7t+E/7iA1cDAP7rSeuQQyZXxGQ8i809\nUb44WYiKj70nlS3ySYmtstd1eBEKaDUqLD8zNJ7A0Hii7t5pzCDdfJVyfwyOKRNDuSzhY//wBD75\nr89hbCaN37l1Oz7w9h3weV0VoZ5coQy/14WguoCY1l3nWh5USd012a96UIC20j8kTiKbL2PPtk58\n8F07uQcR1gkVmDELBzQDxTqUs2vCwuG/fOYMPvi3j2B4MomAz8W9I4fDgTVtQUzE0tzr4MpdUw6K\nLb7SuRLKaulCe9TCQKmRhVJZwvmpNHo6gtwD9Xlc+OzH3oT/+Lt34tt3vhUbVGOQ0AkliiUJ333g\nKE4OxfnzwERE7B5I685dD5OyHxsyziVM2NEW8XGlL4PNTSw/Fw0bt7jvNBXryrKsNCTQ1Xveeu1G\nAMBzr5/nC2H94t6KLtVAmee9gbEEvG4nl++zkKDV/Ahoi8rNvVE4HJUiMqbg0xtzQJHRJzMFnByK\nw+N24pK1LXys1URtbtu/LCPhgIcnaAHlxnI6HYgGle6+Xa0B3pCVrfrZTRD01edBHVIfpl1bOnD0\n7Iyl5JJdbDbJ8z1nkjkuZ59QwwD6WDig/GDf+KtfhTgYw9OvjBiEGHrFodvlxPc+9Tbe/qVe9OGz\njIVxZui3IWBhSLavzt//yRu5fH7bhlYcPD6BeCKnGSh1Fbt9YxtaIz6DanJmLodsvsS9K32rIz3t\n0YClB9UW0X4nu60SRiZTcDod+NZf38qTvZGgt8I4yrKMR18c5CveTb1ROJ0OZbuVBXlQ2v1y9OwM\nRiZT/IEN+1348v+5iV9r5gG9emoKj7wwiO72IL788ZtrKjJZa5g9l3aidb8PA+q/Z1N5TMaz2LKu\nBR961068YXuXlnNMVHpQfp+bRw1YwXg05LVUkA5PJPHS0XG85+Zt/BwDPjfP786l8tjQHeGG5o/f\nvZuvjAEgGNBCfEy1qTdQr6jtx3Ze0oGh8ST3oI6di/Fnyaww7W4PYmAsgWSmiGjIq6t9NK6V2X2W\nyRWRUJs360tKGB1R5R4/d37OIJDQw4xdS6RyU8AXj47hZ0+dxth0ChOxDPxeFzdkTOmYtolYsOuQ\nNpW18OfT58HarrBhIcHmJl4jposUAVrpClssZ3IllMqSISff0xHChu4wXhEn+UKRRXn0qlo9XRYe\nVFlSdkTY2BPhRn2NGj2y6+3Jrl171I+WsK8i78ieVaaCZkRCXkzEMkhliti8NmrYvbuagVoRHhTz\nDtgKjD3sbVEfAj4l3GeWlPKbQHfT+FV5tNUqmuVS3rinF4D1CoFNrGylxsJ2etm2qE7aW9e3wIpN\nPcrKws6DAqCG2QKW77dDm1QKfDUbClSuL9rUh5BNEIViGYdOTKK3M4Qdm9v4cTvUBOaJwZi2YaF6\nczudDly7s4cfu0WdtPQJcX0nCT0dLX4k0gVeQ8JDfGFtrC0W23XLsvKw9HYEDQ9ZS9hrkAbLsozv\nPnAUX//JqzyZu7lXMRp+n3thhbq6++WffvQK7n3wGFdYBXzK6pKFnAM+N9a0BzE8kUKxJGFkMoV/\nf/hEze9godKN3RFs6o1gMpZBJlfk57ZrSweuFNbwHEdHS0Dt9qGdD/OgAqqxZJPT+jVhNW+hHRtP\n5vCpf30O9z54DC8dHeeG2+d1cQlyPKGErw+dmER71M+3u2DohQop3SS9sSeiKAHVsN9OVjOoPr96\nA6Dv9AJoQgkm9NHabNl4ULqFq5UHtUn97Z9V65J6TROjHpYL02+EykQpJwbjGJ/JoKcjxJtPszAv\nj1iYDBTzRDN5Yzidpx8C7orxsMmYC0hMBqqDGxLlnK3KaQCgb0e35e4Bdh4UW1DrUxuxZAnFkoRN\nuia9XGlpI6Fnz2xL2Ie2iK/Sg5pOw+Go/B0iQS/faWKrquprihwUoM9dMDdVGdbH3ncF/uoPr4HD\n4agwFixvoE+aVrPIZ8/PweN2ok/V5lutENjFZys15kHpPYITAzF4PS7DSlOP3+fG2s4QBsYSPIyh\nbQvitXxPPbCHIZkp8AeAGWQ9rabJ/7XT08gVyrhuVw+f/AAlBqycT7yi1REAXK+GIh0OravG6KTm\nyZR4JwnjLWTeG2t8JgOHA2jTGSi3y4lI0GuQrM6m8khli9xDYbSEfUhlNSnqM6+M4udPn8H6NWG8\n842bsXV9C65UVULKhpULUfFV7jTLwo1Bb+UjwvJQaztD6O0M4edPn65ZiT84lsSa9iCCfg+fEIYm\nkrb3RofpOgJKGyef121UrnpdfNJnx8qyjC/cd5CH/Z7sH+bXJeB1o1W3X9DpkVkk0gX07VhjuD8A\nbQGUypa0bSGCSsjzH//0RtzStx67tnTw3A5bTc8ZDJRxYmUe1YT6/Nl19ucy83xJF9mo9KBYOPIZ\ndUFhDi3pYdeYhfhmk3m+T9VsMo9svoTu9qD2rPEQX0m9HkYD5fW44PO6kC2YDZTOg1JzMey5ZOdr\n1QkH0EJ8zIMybynEuFqdx8zYeVAhNf+n96BOjym/F1usAroFhF2IL5VHOOCBx+1EW9SPbL5keH7G\nplPoagtW9MTUG2KzgVrxOShmoNiPwTpC7Njczg1Ku8lYpHNF+L0u7poC9idcKksYHEtiU28Ua9qC\ncDisRRKxRA5ul4PfoGblYCZXxNB4ApduaK0qEd+8tgXpbJF/h93NOB+YYi+ZKSKTK8HncfAcnZ42\n05jZVvDX7+41HLd9YxucDsWDMm+3AShbzQf9bmzqiXJvcXRaZ6DYe8weVNQYohibTqGzNVARCmw1\nqQ2ZGslsoKIhL2RZmyxYLudjv30FPvq+K/Dl/3Mz90b9XveCQ3z6hQ6g3YsBX+XvzB6w33ubgD97\n/5UAgC//6JDBOE7GM/jpk6dRlmTMJvOYTeX5dhJMRTk4lrBdIeu7CkzPZhWRA8tB6UK7QZ+bX3M2\n+WTyEo6cmcHOS9qxuTeKl4+N83vR73PzZymeyPEJuu+yyglP78WY8zDrusL4+O/34fO3vxmRoBdh\nXXkDyxf1dAR5mx2GeYVur+JTvbdsiRu+NguRBBMisIiIObSkh3vu6jV/5vAIJEk2vKe3MwS/1wW3\ny8GFITzEZxFSjwS9yJo8qLTOg2IGkxXV8xyUrQdlrCW0mzt2bmnnalv9+L02BgpQvKiJWBoHj0+g\nLMk4OpSF0wFcf7k2N7BQIFvAz8xl8cd3P8Y3HJxN5nULeGO0JpsvIZbIW/4GEV296hb1+WkKmTmg\nGQIWR7Xq8u33KSvHmC7EZ87B2HlQwxNJ7lp63E60RfyWIb54Mo/WsI9P/K2mH+DU0Cwk2bjisOIS\ntf6C9RG0m4TmAws7pDIF1Thb/3StpofwFVFpnMk8JkbA58am3ihODc9yj0x/3b0eFz5/+5vxiQ9e\nw2Pt+lwQe485uc1DsbM55ItlTM/leF818zj1NSlMzbl+TaTiOEALy7Dwpjl2z84pVyjPq1NFsSSh\nVJawqScCp9OBztaAwVAHLK7ze2/ehr/54+tx01WKB/Gbb9mK89Np/OdjWoX/Q8+ew/f++yhePTnF\n808sHMVCaQM6A2WegJjR/dqPD+OP/v5RjEymIMuKETZKrd1cQswMVKGknH9PRwi39K1HqSzzLTkC\nXpcWjUjm+dis7mlDiM8mzMVoiyr5iFJZ2bdsXVcY3/rrW/Fbt2wzHMc8KCZIsOskwc4xnStyCbVe\nKcuIBL188gc09ZgV7Boz48D6LzJVKQD0tAfhcDh4Uh+wD/EBQDTorQjxZXUe1KUbWuHzurgsW5+D\ncjiMjQYAJQzpdjl4CcGs6u21mjxsj9uFN1+xDu1RH683Yq/bsWVdC7L5Mv72Oy/g7+55ASPTBeze\n2mkw/F6PC60RH58fTw3PYiKWwXcfOIr/fExEMqPtIGEWrrFwvqWBUpWjToe2QGueHJQptmyXcG7T\nFatmcyWDxFz/PrMHxVrGMMvd1RbA9GzWUIskyzLiiZyhC3C7Sdp+fFCTSFZjfZcyEbG6Cjs3fT4Y\nQnzZIvw2W3Wwh3hWDffEk3mDsknPjs3tKJYk3iXCfHNfsrYF67rC6GoLGroHAJo6Tz85AMZuARO8\n44WFgYpoiXoAGOEelHGCiZrCMvpQkxm/aUfl+/edMhRSnhqO40v/0W+olGfdz1vCPvz1B6/BXR+6\nlhtkwNqDCgU8uPqybh4S+5/vvAxej8uwZxn7zc+dn+P5J2aYWIhwZCKlhZVtPKjRKaWHIfMc/T6X\nYaIM+D0VCXBmoAI+N25SVYPMk/b73IaSjYmZNF+0WZ0nwNSNmszciraIH8lMkYs1WsLeipAhoITg\n/F7lWsmyrLX9Mi10XE4HAj43srkSv5etclCA5kV53M4K8ZKecEBRBrNrPjWbhdftxDU7u/mipEe9\nV8NWBsrCgwoHPSiUZEPdkiaqcKOjJYB/+9u34323KKUDmgeVRzjgrXgunU4H2qN+3vUlUWXuuP1/\nXIFv3flWw29nF+IDgD/9nSvxmdtuwPaNrdxzZl0s9KxpC2BqNgNJkvnc53Q68G8Pn4Asa/eqWezE\nBRJdlYuEqPq8rlsT4akJJspqGg+KYWeg2qN+JDMFta6oWGGgXC4n3C5nhYFi7Ti4gWoNqKEXLQeS\nzhZRLEmGH7sl5DVIKbmGf1N1A9UaMebL5kz1IAsh6PfwYrdMvmTY2E2PPoxRKJZRLEm2q96dqqFl\nxZDmMBzD5awsWh6fycDpqFRp6Q0UU9n1WHlQJu+U1XOYPShzYjtlI/kFtA4Y2XwZ5bKE7z94DD96\nVFRfK+HzPziIJ/tHDBvn6dVt1+/uxbYNrVw2DVh7UGZ8Hhd6OoIYn9Hk06zR7LnzCZxSu/CzvKXf\n50ZrxIeJWIbfG1GbHBSDhUz9XrdBuRr0uXnd3hQ3UJJ6rAsdLQFs7o3yxZjf51aaG/vdiCfzmIhl\nsKYtaBkuZuGnuVRe21gvYH0Ps+eGGVK7aIHf68Yb96zF+EwGxwdiVbeeCfndBg/KSsUHAJeqBqqn\nw/o8GE6nQ90IVbmXZmZzqsfswjb+Gcq9Ggl6+H5W1URJ+sgGI5MrweHQcsR+r5uH47QcVMF2Puho\nCSCWVIryrZpiM9wup1JjpFs0VNtjzuN24kphDe768HVoj/rgdAI3mEL/gPIMl8oy4skcfz5ve/du\n7v1c9DYAACAASURBVNXaeVCsBmqdhYFi14mFx4H6WtOtOAPldjkqEu/8OPWhnYxnUSxJljJrn9dV\n4TKeHZ2D06GtYK20/jwRqwsjuFxOtIR9GJtO4/XT03hFnMSmnojtg2I+H72qyet2VuQ55oPL6UA4\n4MFkXGkKaedBKQIEJR9gJ49l7N6q5Qe8bqflipcRDfuQSOX5BMxyS2avS59kZTespQcVNnlQk0l0\ntQUqrhF7iNlEnsoW4dV1FtfD3pvLl7jRnYhlIMsyvvffR3ne45Ru2xaWN/LrvpcZqKDfbel5WtHb\nEUImV+LhI7b6Pjc2h6PnZhANeQ1Fmd1tQUzNZrTJ1ybEx2CqLqVGUBtrwOeuKMIsljRjBGgdDQCt\nS0hrxI+xmTSSmSK6TV4wQ6lrc2NmTunX5vO6bFfoa9qVMbCedS1VnpFb+hSvbt/BYdscFKB4h5lc\nEfFEXjUu1p+5TRVKVAvvMVpCXsyq6sjZVJ5fu9+5dTt+8y1beDg6ElRyn+lcEZlcEU4HLJ/faNCo\n+AOUkGjA5zYYS754Lip1XclMwTai0tkagCTJmE3ltQWMRUiboV+s1bNhZ3vUjy/ccSM+fGuX5Vym\n5Qmz3Phcvq0TH//9q+B2ObiR0ZfhALoaKIvn/ZK1LXA6HYZcp9aazn53gBVhoPRGoVoDVZYMZmoy\nswcFKCett8iyLGNwLKEmP5Xj+YpTZ6BiNonYay7rRiyRwye/+SwkGfiT39pT+3wqPKg8WiK+qgag\nHsJBL19J+6qs7KMhJTxhV2DI6GwNcONhtyhgtIZ9KJQkrtqJJfKWhkffLYBt3bBhTeXEoQ8PFEsS\nYok8etorP495UCzUkc4UbcNMbEWWLWhbUWTzJczM5fDIC4Po6VAEMvou4UwN6teFmDZ2KwsZqzCi\nHexasDg8m7CGJ5KYimex85J2w++/pl1ZpZ4bVdSl5smvPerHm/asRd8ORaGo96DMOahwQGn5w+5n\nFuJj58Taa7H3s89nz0lPu7WBApR7ZGo2i3S2aHsfAdqkxKIM1cLZl2/rQkeLHwcOj/LQodXKX/Gg\nSkodYrgyHMbYsbkdV1/WjV+5eoPtdzJawj6ks0Xu3TMDdfVl3fjIey7nRkUfUk9niwgFPJbPryZJ\n18LGmVzJ4OUyfF5lbkplCpBle6OjF8jotyyxQ+/VVgvx6eluD2JDp/Vn6muh4rrw6vW7e/HDv3sn\nbr12E4DKMpyx6TScTgdfpOpZ1xXG/Z97F266Ugspcpl5lf3VGm6gHA7Tnk5VDBSLnY9MKhNf0GcR\n5jFJja3ky7zZpk4+zjyodlMi9qPvuwLX7eqBJCuV45dvNaqSrPD7lEkknlS2IJhL5heVf2JEgh7e\nIdlvE+IDlIk1ldHVS1l4mgw2edVqEcQepkS6wPfm6bVZsa5pC2IqnsHQRBJul8MyJq03ULMW3iv/\nXuZBpTUPKmQTZmLbhOTy2gZxgNIpQZJkXLl9DdavCeP0yCzOT6fw/QeP8QkyYOFBRW0MoRXcQM0Y\nDRT7vcwFpGwSiKv3hnnyczod+MQHr8H/+NXtADTvyO91weVycuOjhH4d3JAAQKHIDJRyTru2dPLC\ncNbBRC/Z7rZYGDA6W/xKLdJcrqqBYvcC86DMSX09LqcD1+7qQTpX4ls9WD33wYAHkiRjfCZjyA2b\n8Xlc+Js/vh5v3LPW9hgGu+9YE2K7nJUWulMUjFbRGkBT1+q7zWRyRUN9JsOvRnfsFHwM/bYbelm3\nHSF9iK8OD6oWXe1amD6eVPp3siiMPtJg9qBGp1Lobg/aKpw9bpfhPvfWITOvK+YkCMJ1AD4viuIt\ngiBsBXAvAAnAEVEUb1eP+QiA2wAUAdwtiuKD9Xy23+uCz6PIOktlueomfrwhq5qvsPSgvC5DoeCI\nqg7TGyhD3DgMNYzA4tzGB8HjduITH7wGx8/FeEFiPbRFfIgnlNqKQklalIKPj1u/tUiVWHMk6EWp\nLHNBiV2ID1DCfI+8MFjzu/UhOZaL6rUJDXW1BTAwlsCZkTms7Qpb3rB6tSG7wa2S4PqcmizLSOeK\nFf3LGOzhyRXKho0uWc5pfXcY2UIJwxMj+PvvvoThiaRlTVlPRwhrO0PYtqENQH2ydRYaGptW8lBJ\n05bqrMM2o1uXl6s2mTOjwLoRsHEG/YpikT0Dna0BjEymkCuUUChrOShAmQg390Zx7nyCXyP9hG8X\n4mOfCyh5rWr3EfOg2GRTbcUPaNdL3z3GTNBiMlwsTKDSf1wRCdgaKJ3hSeeKtouxiCnEJ8syMrkS\n1nVZR3ey+ZLOK6rhQc0pHlStxa2+abSnyrxQL+y3OT+VVoRjNtGfgM+NgM+FeEJxAhLpAm+TVg9s\nrl+USEIQhL8A8G0A7Cp9CcCdoijeBMApCMK7BUHoBnAHgBsAvB3A5wRBqGv56fO64XA4+AqlWoiP\nJeTPjSqJWMsclCnEZ5V8Z3HjRKaAoak83n/XQ9j73ACASg8KUPI6l2/rrBkG09MW9WMunecP4GIE\nEgy9gbKTmQOa0oqp6KpNLJdvrWwNY4U+F8TCWHZV+91qDLtUlviEYEbvQWl1LhYeFPPcUgVk8yVI\nkmwb4mPeQS5f4lJfADh8UpmMNnZHeEKd1V1Z7f7pcjrwjb/6Vdz+21dYfo8Veg8qnVPGya6Zz+vi\nAh0Gu0ZA9XAY++3YfcQ69gfU6AHz/PRKPu5B6Sb463f3wu1y8OOMHpS9gerSTeB2AglA+T3117BW\nnlYfBnI5rfPON1zey89/U4/1fTRfmFClX1VcmnvlMVh4dy6VRzZftvUezSKJfLGMsiRbelA+kwdl\nm4Nq0VIQiXSh5rXU/y7V6qDqpbczBJfTgeFJpZC82uKgNeJHLJnjCt9qdWhmeLPYRfbiOw3gvQDu\nU//dJ4rifvW/9wJ4GxRv6oAoiiUACUEQTgHYA6C/1oezlVPIr3S7rRbiYwqboQlmoKw9KCY1druc\nlvJlHjdOF+AoKCtdFppZqpVaW8QHWda20F4SD0q34qoW4mOGjIXiQhbXidHREsD1u3ss48Z69P3b\nxrnE3Ppm7NJNvrYGStfxQhOoVF57t0sJL8yl85rU2WayYN5F1lQLxZR6G7ojFUlkJuTwm3IG1dRg\nVnS1BuByOjA2neaT1a4tHeg/MYnLt3ZWeJFMVABUN1DsXFmNIPOKmKKMLdL0zUC5zFznFb7/1u34\ntes3cfGF/lrb/Y6A1noHsJeYA0oj2N7OMM6qLcVqrfr1RtEuanLjlevxpivWYWImzfPGi4XtEcXy\ns3YeFFvEMmGN3SIvEjA23mULI6uwOls827U5YrDf6Nx5ZZv5Wotb/e9Sj0iiFm6XEz0dQZwdnUOp\nLFuG3hmdLQEcOTvNe4/Oz0AtQbNYURR/JgjCJt1L+ic3CSAKIAJAv7ViCoB1LyATPJauPnDVPKhI\nUEnAa81SK4ev9eMrIxxwYniy0oPSujIU4PYbFSTVfoz5wMJVTHa7JDko3UNSNcQXYB5U9YeLcdeH\nr6v53fpQG/egbCY2/eS7sSdqeYzXo+zsOjWbrepBAYryKmHoQWhjoHQqPvNOpwGfG+1RP0J+D9wu\nJ1wuB/KFstZhwaJt1HxwuZxY065IzdlktaYtiC/92Y2W4S69Ea+2ePF5tfC38m/VMKkeFHsG2AQ+\nPZvlNTk+vVfochqUgexahwKeqrmlToMHVf0+WtsZwtnRObhdjqqLIsBooKo98y6ndQ5zoXS1BhAK\neLiB6rIxUGzSZwtXuzwuK0BNmrpOVFs8s/u9xSYM2hb1wekATo/UZ+z1kaR6RRK1WL8mgtGp2ov2\n7Rtb8fqZad7TsHcev5WxbtX6HljIU6l/8iMAZgEkoBgq8+s1KRVz6O/vR7mo/Gj5bAr9/faOVzTg\nQEbVNoyfH0Z/v3Hjt3RK+VFfPvgKokEXzo7E0BJ04diRVw3HedwOTEzPwduprU6CPidee/VwPcOu\nSTqhGKYXXh0AAMzNjKG/336r+XqIz2iFsn6vw/Y6seMGziuKqpGhs3BmRxf13ednlEn31NlhDJzP\nIux34qjpmjJmprWEcXJmCP39SpGoebzRADA+k8KJM8qGcmPDZ1FODsOMC0XMpQvoP3xE+czZactz\nHx1Rq9/PDPBegYz2sAOHDh0CAPzBzYqi7t7Hp7iIYXjoLLyFyt1RrcZtR8hTwth0Ac8fVMaZmJ3C\n1GgedvsGh/1OpHISkrNTVb/D69YM1PDgOfQXx5DPKb/x+ZFB9GMSsSnloXjt+FnuQZ09fRLpaeuJ\ndWJW3fTSX/38pua0XFrC5rozHCVlMRjwOvm1tkOWZXjdDmWsUsnwufVe74XSGXEgnVU2ozxx7DXL\n/Mp4XLmHTw4oocBUImY5rnRO3YBwdAL9/f0YVZ+T5NxMxfHZjPKbHT+t3OOjw2cgpyvvdwAI+Z28\nm3rYmah5TXweB/JFGeKJY5gcqX9at/tcl6TNNdmU9bkDgLesPHNsx+3Y+Dn0p6zPyQzLE09NxwFY\ni88WYqAOCYJwoyiKzwB4B4B9AF4GcLcgCF4AAQA7AByp58M62lrQ19eHh197EQMT4+jqbEdfX5/t\n8VuOvITxuDLh7d65nffqYzx7+hUcGRzCmnVb4XE7kcyO4CphTcVntu6dQRlAWm1T8mfvvxLRkBd9\nu3qwFMxKQ3ji1VcwqG5m9o5b+qrG+ush6RjBXvVG8XmcttcpiWHs7T+EREZ5eK56w25Dx+KFsCGW\nwbcfeQwObwRzmRR2XtJh+/1bk3l859GH4XY5cOtN18LtcqK/v7/i+KdO9GN0ZgTxrLJ6evMNVxny\nbIy9r76I4elxRDvWA5jGpVs3oa9va8Vx7sgU8Mxz6FzTq3aISMDldKAsydixpQd9fVcBAPqghMzu\n2/cAL2Dds/syywJsq3Hb8fLgazg9dg4ldxuAGHZs24y+PvsNKtc/m8aJwTh27diCvr6Ntse1PRZH\nRl3NXr5rB3Zt6cD+U4dwfHgYe3btwOXbOtEzlcJ9+56AJ9CKQkpp4XPVGy63Dd9lckV89/FHsGub\ndl3sjvvnBx8CAFy6daPldWfEy0PYf/QVdLWH67pma596EgNjCUTCAX78fK73Qjk49BoGJ89hTXsI\nV199teUxuUIJ33r4QW7It2xah76+HRXHlcsS/vGnD8DtC6Gvrw+uk5MAJnHJpvXo6xMMxz5x7CBO\njo5CcgYBZHDd1VfwmiMzvQdSSA7N4rpdPfif77m2ZolK68MxTMQyuOrKK2w7bpipdq1jpUE8d1xZ\nrO8SLkFf32bL47ZfVsAPn9kLQAkN3vKWa+uuHZQkGfjxL+EP2ocFF2Kg/hzAt1URxHEA94uiKAuC\n8FUAB6CEAO8URdF6X2UTzL1nbmqtfXX0tTJWMnP2/s/c8wIPBa7vtqhsDnpxfiqFoHr8LX3r5yWC\nqAVziyVJRmeLn8uKF4NerWNXqAtoCd6Sbg+fxcLk3kfOzECWUbE1g56WsNI8tLvDXnIKaMKCgbEE\n3C6n7ThZiIMlYm1zUHqRhCqb39AdwcBYAhtMHSqcTgdaIz6udAwsMsQHaLujss7mkSrFlYAiFDgx\nGK8ZwlGS4IqBYiFxNgmZq/pnEjlDqyM7gn4PvvLxm+sKH7F6pGoiCUDrJF5vvnVNm7I3VK1nfqlh\nQgm78B6ghHw3dEf4jrN2YWWXywm/x8GbGVdLP7DzZGHDatdp95ZOxJN53P7bV9RVPxkOejARWxqR\nBGBMiVQzeJGgFxt7IhgaT6K307qlmh1OpwMet7Oqiq+up1IUxUEAb1T/+xSAmy2OuQfAPXWPToU9\ncGzSqRaPBrReWYCWt9LDEq6ZXAketxPFklTRURlQkqBnC2UkMsrEv5TGCTDmsnZu6Vh0kS5Qv4rP\nnHytVgdVL6xdC8uvbKpioBwOBz7zJzfU7JzBEqqyrFwvu2vEksSjNQ2Uth8YywVsW9+KgbGEoX0R\nQ9/b0SySWAjsO1htj5U3qGfHpnY899qYrZCEoZ8c2Tjfe/M27N7Sycsn/GqXh2S6AKlk3d/OjFVL\nGis6WwNIjyeriiQAJd8YDngqFIt2sFxlrWd+qWH7m9USXmzb0FrTQAFKv0YmM+d7QVktntXfYyr+\n/7d35nFyFdUC/rp7pmefyb5vZOGwBUISCJFshCWAiIEHIoIskc0lT8DnDvIDRBRcUJ97eBJlkU3e\ncwOiwgMCUTEqCD85kCeyyWISQ2LInnl/VN2Z2z3dfbtn7kx3T873z0x33657bnVVnTqnTp3awuC2\n+oLPfe479ufst+9XdLBOW1MdiUR8dTk6tJUjKopwf39gZTGZPLKpq0115GPMRdlP1K1LZ1lQEZ0q\nvOs9dyPofKQzFu3DUYeOyxktE3S2DZt3MXpoPBFCYcILi7lO+ewOmfugCm3U7ayXVDIRWafF0tZc\nx1Yf1TQhwmUYHJtdiPDid74ACehMvRIktc2X4aEhFCATzGRPO3pvJo1pY3qO83MGhX6j+hjqKMhA\nEbgNC6WnAXj74XtxxMyxkRZu+PNAzpbGNNN9lgkgIwN3OtlOIhHtjSiWIQMaeOG1TUXJeeNlRxd9\n32CDcF8rqElj2lj6rmkZGTZyMXnMAH79uFtPKaSgGuuSvL5hR8ceKHd9fgsKCkdOBpQSSXrmcfsw\nf/ro2OqytSnt8xZuj3QZ7rfXIO5d9bduBbOks7YFZVP2TBJB9FTwg0aZqOEftpAZDS5/VK5d+tDp\nfnFhnPFE7oVpbUp3NLDsTZrdJXDxJZMJ0jXRYebQmWkgDsLhrsHRET0hHJJaKFIoSOQZhKPnGyg7\nUh1tc6mOEj6Z7QlzJuZ0PYSt3J7kSQxoa05n1H2USyzp8ytGER4c6wq4Ilub0mzavJ3tO9up9/sL\n4yCwtIpZ22isL94bMdxbUH3t4kskEhwza3ykkghy/EGEBZVOsnPXbtZu2NqRA7KQBQVdTwHoKVPG\nDmThzPzrmN1h4qg26tKpyPFx9oGjOHnBZI5/24SS75Erd2qY8ltQ2WtQEWsBQwc2kEwm2L27Padb\nJmgEDXU1GZlzs2kNDSRxbKLNJplMMKTNnTgZ5cIplsb6WpIJt8O+0OATZD5vb49n/SkgCJceNrAh\nb+qXUmhuTHccHV4olc34kS0Zodb5N+pmpjqKqqdgwA184T0lkUgwbkRLx2m8QQhyTwk/byFLr6Ux\nzd9e3UhtKtXjsPkw7z5GOOyAkUXN+kshsIz7WkEVS5DgdPfu9oL9SMY0sObVbVz3w8c7JlM5lx9K\ntKDKzdJ3TePNzdsi+0ZdbYpz37F/t+5RV5vKSBOVTdkVVPY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| |
"text/plain": [ | |
"<matplotlib.figure.Figure at 0x1302eb0f0>" | |
] | |
}, | |
"metadata": {}, | |
"output_type": "display_data" | |
} | |
], | |
"source": [] | |
}, | |
{ | |
"cell_type": "code", | |
"execution_count": 201, | |
"metadata": { | |
"collapsed": false | |
}, | |
"outputs": [ | |
{ | |
"data": { | |
"image/png": 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Zcnmd67d00RYNrlg5lVIbdcVx64tRIQn1YrWDcqkelMeDbR9Uc04M+bxx8rE4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\nbefrPL9yGYuOWcDEhvI7or3c6hvKU2YoDbmn7tHOPU/8IePnhVpQ1wG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| |
"text/plain": [ | |
"<matplotlib.figure.Figure at 0x130442d68>" | |
] | |
}, | |
"metadata": {}, | |
"output_type": "display_data" | |
} | |
], | |
"source": [] | |
}, | |
{ | |
"cell_type": "code", | |
"execution_count": 202, | |
"metadata": { | |
"collapsed": false | |
}, | |
"outputs": [ | |
{ | |
"data": { | |
"image/png": 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XgPE2x3eh0dSRtB8C4FygH7oq1F1GiM80TXzu2wdcAzOdlFBrWAocSmD6Fura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\nI9KVWMneM0NjUJJvIwt12zxJYnBIPSgphnK5NOkddTOvwY0EqBmJFJ9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| |
"text/plain": [ | |
"<matplotlib.figure.Figure at 0x13030f8d0>" | |
] | |
}, | |
"metadata": {}, | |
"output_type": "display_data" | |
} | |
], | |
"source": [] | |
}, | |
{ | |
"cell_type": "markdown", | |
"metadata": {}, | |
"source": [ | |
"____\n", | |
"** Now let's move on to creating heatmaps with seaborn and our data. We'll first need to restructure the dataframe so that the columns become the Hours and the Index becomes the Day of the Week. There are lots of ways to do this, but I would recommend trying to combine groupby with an [unstack](http://pandas.pydata.org/pandas-docs/stable/generated/pandas.DataFrame.unstack.html) method. Reference the solutions if you get stuck on this!**" | |
] | |
}, | |
{ | |
"cell_type": "code", | |
"execution_count": 203, | |
"metadata": { | |
"collapsed": false | |
}, | |
"outputs": [ | |
{ | |
"data": { | |
"text/html": [ | |
"<div>\n", | |
"<table border=\"1\" class=\"dataframe\">\n", | |
" <thead>\n", | |
" <tr style=\"text-align: right;\">\n", | |
" <th>Hour</th>\n", | |
" <th>0</th>\n", | |
" <th>1</th>\n", | |
" <th>2</th>\n", | |
" <th>3</th>\n", | |
" <th>4</th>\n", | |
" <th>5</th>\n", | |
" <th>6</th>\n", | |
" <th>7</th>\n", | |
" <th>8</th>\n", | |
" <th>9</th>\n", | |
" <th>...</th>\n", | |
" <th>14</th>\n", | |
" <th>15</th>\n", | |
" <th>16</th>\n", | |
" <th>17</th>\n", | |
" <th>18</th>\n", | |
" <th>19</th>\n", | |
" <th>20</th>\n", | |
" <th>21</th>\n", | |
" <th>22</th>\n", | |
" <th>23</th>\n", | |
" </tr>\n", | |
" <tr>\n", | |
" <th>Day of Week</th>\n", | |
" <th></th>\n", | |
" <th></th>\n", | |
" <th></th>\n", | |
" <th></th>\n", | |
" <th></th>\n", | |
" <th></th>\n", | |
" <th></th>\n", | |
" <th></th>\n", | |
" <th></th>\n", | |
" <th></th>\n", | |
" <th></th>\n", | |
" <th></th>\n", | |
" <th></th>\n", | |
" <th></th>\n", | |
" <th></th>\n", | |
" <th></th>\n", | |
" <th></th>\n", | |
" <th></th>\n", | |
" <th></th>\n", | |
" <th></th>\n", | |
" <th></th>\n", | |
" </tr>\n", | |
" </thead>\n", | |
" <tbody>\n", | |
" <tr>\n", | |
" <th>Fri</th>\n", | |
" <td>275</td>\n", | |
" <td>235</td>\n", | |
" <td>191</td>\n", | |
" <td>175</td>\n", | |
" <td>201</td>\n", | |
" <td>194</td>\n", | |
" <td>372</td>\n", | |
" <td>598</td>\n", | |
" <td>742</td>\n", | |
" <td>752</td>\n", | |
" <td>...</td>\n", | |
" <td>932</td>\n", | |
" <td>980</td>\n", | |
" <td>1039</td>\n", | |
" <td>980</td>\n", | |
" <td>820</td>\n", | |
" <td>696</td>\n", | |
" <td>667</td>\n", | |
" <td>559</td>\n", | |
" <td>514</td>\n", | |
" <td>474</td>\n", | |
" </tr>\n", | |
" <tr>\n", | |
" <th>Mon</th>\n", | |
" <td>282</td>\n", | |
" <td>221</td>\n", | |
" <td>201</td>\n", | |
" <td>194</td>\n", | |
" <td>204</td>\n", | |
" <td>267</td>\n", | |
" <td>397</td>\n", | |
" <td>653</td>\n", | |
" <td>819</td>\n", | |
" <td>786</td>\n", | |
" <td>...</td>\n", | |
" <td>869</td>\n", | |
" <td>913</td>\n", | |
" <td>989</td>\n", | |
" <td>997</td>\n", | |
" <td>885</td>\n", | |
" <td>746</td>\n", | |
" <td>613</td>\n", | |
" <td>497</td>\n", | |
" <td>472</td>\n", | |
" <td>325</td>\n", | |
" </tr>\n", | |
" <tr>\n", | |
" <th>Sat</th>\n", | |
" <td>375</td>\n", | |
" <td>301</td>\n", | |
" <td>263</td>\n", | |
" <td>260</td>\n", | |
" <td>224</td>\n", | |
" <td>231</td>\n", | |
" <td>257</td>\n", | |
" <td>391</td>\n", | |
" <td>459</td>\n", | |
" <td>640</td>\n", | |
" <td>...</td>\n", | |
" <td>789</td>\n", | |
" <td>796</td>\n", | |
" <td>848</td>\n", | |
" <td>757</td>\n", | |
" <td>778</td>\n", | |
" <td>696</td>\n", | |
" <td>628</td>\n", | |
" <td>572</td>\n", | |
" <td>506</td>\n", | |
" <td>467</td>\n", | |
" </tr>\n", | |
" <tr>\n", | |
" <th>Sun</th>\n", | |
" <td>383</td>\n", | |
" <td>306</td>\n", | |
" <td>286</td>\n", | |
" <td>268</td>\n", | |
" <td>242</td>\n", | |
" <td>240</td>\n", | |
" <td>300</td>\n", | |
" <td>402</td>\n", | |
" <td>483</td>\n", | |
" <td>620</td>\n", | |
" <td>...</td>\n", | |
" <td>684</td>\n", | |
" <td>691</td>\n", | |
" <td>663</td>\n", | |
" <td>714</td>\n", | |
" <td>670</td>\n", | |
" <td>655</td>\n", | |
" <td>537</td>\n", | |
" <td>461</td>\n", | |
" <td>415</td>\n", | |
" <td>330</td>\n", | |
" </tr>\n", | |
" <tr>\n", | |
" <th>Thu</th>\n", | |
" <td>278</td>\n", | |
" <td>202</td>\n", | |
" <td>233</td>\n", | |
" <td>159</td>\n", | |
" <td>182</td>\n", | |
" <td>203</td>\n", | |
" <td>362</td>\n", | |
" <td>570</td>\n", | |
" <td>777</td>\n", | |
" <td>828</td>\n", | |
" <td>...</td>\n", | |
" <td>876</td>\n", | |
" <td>969</td>\n", | |
" <td>935</td>\n", | |
" <td>1013</td>\n", | |
" <td>810</td>\n", | |
" <td>698</td>\n", | |
" <td>617</td>\n", | |
" <td>553</td>\n", | |
" <td>424</td>\n", | |
" <td>354</td>\n", | |
" </tr>\n", | |
" </tbody>\n", | |
"</table>\n", | |
"<p>5 rows × 24 columns</p>\n", | |
"</div>" | |
], | |
"text/plain": [ | |
"Hour 0 1 2 3 4 5 6 7 8 9 ... 14 15 \\\n", | |
"Day of Week ... \n", | |
"Fri 275 235 191 175 201 194 372 598 742 752 ... 932 980 \n", | |
"Mon 282 221 201 194 204 267 397 653 819 786 ... 869 913 \n", | |
"Sat 375 301 263 260 224 231 257 391 459 640 ... 789 796 \n", | |
"Sun 383 306 286 268 242 240 300 402 483 620 ... 684 691 \n", | |
"Thu 278 202 233 159 182 203 362 570 777 828 ... 876 969 \n", | |
"\n", | |
"Hour 16 17 18 19 20 21 22 23 \n", | |
"Day of Week \n", | |
"Fri 1039 980 820 696 667 559 514 474 \n", | |
"Mon 989 997 885 746 613 497 472 325 \n", | |
"Sat 848 757 778 696 628 572 506 467 \n", | |
"Sun 663 714 670 655 537 461 415 330 \n", | |
"Thu 935 1013 810 698 617 553 424 354 \n", | |
"\n", | |
"[5 rows x 24 columns]" | |
] | |
}, | |
"execution_count": 203, | |
"metadata": {}, | |
"output_type": "execute_result" | |
} | |
], | |
"source": [] | |
}, | |
{ | |
"cell_type": "markdown", | |
"metadata": {}, | |
"source": [ | |
"** Now create a HeatMap using this new DataFrame. **" | |
] | |
}, | |
{ | |
"cell_type": "code", | |
"execution_count": 204, | |
"metadata": { | |
"collapsed": false | |
}, | |
"outputs": [ | |
{ | |
"data": { | |
"text/plain": [ | |
"<matplotlib.axes._subplots.AxesSubplot at 0x1253fa198>" | |
] | |
}, | |
"execution_count": 204, | |
"metadata": {}, | |
"output_type": "execute_result" | |
}, | |
{ | |
"data": { | |
"image/png": 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lSZI6wcrjhPYC9ga+BTw3MwP4X8DyQu1JkiR1w1iv/2MWFUkeM3NNZq4G9sjM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\nzu4YAAAAAElFTkSuQmCC\n", | |
"text/plain": [ | |
"<matplotlib.figure.Figure at 0x12b4bc940>" | |
] | |
}, | |
"metadata": {}, | |
"output_type": "display_data" | |
} | |
], | |
"source": [] | |
}, | |
{ | |
"cell_type": "markdown", | |
"metadata": {}, | |
"source": [ | |
"** Now create a clustermap using this DataFrame. **" | |
] | |
}, | |
{ | |
"cell_type": "code", | |
"execution_count": 205, | |
"metadata": { | |
"collapsed": false | |
}, | |
"outputs": [ | |
{ | |
"data": { | |
"text/plain": [ | |
"<seaborn.matrix.ClusterGrid at 0x1304fb668>" | |
] | |
}, | |
"execution_count": 205, | |
"metadata": {}, | |
"output_type": "execute_result" | |
}, | |
{ | |
"data": { | |
"image/png": 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SVJBhS5IkqSDDliRJUkGGLUmSpIIMW5IkSQUZtiRJkgoybEmSJBVk2JIkSSpo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\nb5Sd9uN+9ykiPhsRj2jd5O5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| |
"text/plain": [ | |
"<matplotlib.figure.Figure at 0x1304fb320>" | |
] | |
}, | |
"metadata": {}, | |
"output_type": "display_data" | |
} | |
], | |
"source": [] | |
}, | |
{ | |
"cell_type": "markdown", | |
"metadata": {}, | |
"source": [ | |
"** Now repeat these same plots and operations, for a DataFrame that shows the Month as the column. **" | |
] | |
}, | |
{ | |
"cell_type": "code", | |
"execution_count": 207, | |
"metadata": { | |
"collapsed": false | |
}, | |
"outputs": [ | |
{ | |
"data": { | |
"text/html": [ | |
"<div>\n", | |
"<table border=\"1\" class=\"dataframe\">\n", | |
" <thead>\n", | |
" <tr style=\"text-align: right;\">\n", | |
" <th>Month</th>\n", | |
" <th>1</th>\n", | |
" <th>2</th>\n", | |
" <th>3</th>\n", | |
" <th>4</th>\n", | |
" <th>5</th>\n", | |
" <th>6</th>\n", | |
" <th>7</th>\n", | |
" <th>8</th>\n", | |
" <th>12</th>\n", | |
" </tr>\n", | |
" <tr>\n", | |
" <th>Day of Week</th>\n", | |
" <th></th>\n", | |
" <th></th>\n", | |
" <th></th>\n", | |
" <th></th>\n", | |
" <th></th>\n", | |
" <th></th>\n", | |
" <th></th>\n", | |
" <th></th>\n", | |
" <th></th>\n", | |
" </tr>\n", | |
" </thead>\n", | |
" <tbody>\n", | |
" <tr>\n", | |
" <th>Fri</th>\n", | |
" <td>1970</td>\n", | |
" <td>1581</td>\n", | |
" <td>1525</td>\n", | |
" <td>1958</td>\n", | |
" <td>1730</td>\n", | |
" <td>1649</td>\n", | |
" <td>2045</td>\n", | |
" <td>1310</td>\n", | |
" <td>1065</td>\n", | |
" </tr>\n", | |
" <tr>\n", | |
" <th>Mon</th>\n", | |
" <td>1727</td>\n", | |
" <td>1964</td>\n", | |
" <td>1535</td>\n", | |
" <td>1598</td>\n", | |
" <td>1779</td>\n", | |
" <td>1617</td>\n", | |
" <td>1692</td>\n", | |
" <td>1511</td>\n", | |
" <td>1257</td>\n", | |
" </tr>\n", | |
" <tr>\n", | |
" <th>Sat</th>\n", | |
" <td>2291</td>\n", | |
" <td>1441</td>\n", | |
" <td>1266</td>\n", | |
" <td>1734</td>\n", | |
" <td>1444</td>\n", | |
" <td>1388</td>\n", | |
" <td>1695</td>\n", | |
" <td>1099</td>\n", | |
" <td>978</td>\n", | |
" </tr>\n", | |
" <tr>\n", | |
" <th>Sun</th>\n", | |
" <td>1960</td>\n", | |
" <td>1229</td>\n", | |
" <td>1102</td>\n", | |
" <td>1488</td>\n", | |
" <td>1424</td>\n", | |
" <td>1333</td>\n", | |
" <td>1672</td>\n", | |
" <td>1021</td>\n", | |
" <td>907</td>\n", | |
" </tr>\n", | |
" <tr>\n", | |
" <th>Thu</th>\n", | |
" <td>1584</td>\n", | |
" <td>1596</td>\n", | |
" <td>1900</td>\n", | |
" <td>1601</td>\n", | |
" <td>1590</td>\n", | |
" <td>2065</td>\n", | |
" <td>1646</td>\n", | |
" <td>1230</td>\n", | |
" <td>1266</td>\n", | |
" </tr>\n", | |
" </tbody>\n", | |
"</table>\n", | |
"</div>" | |
], | |
"text/plain": [ | |
"Month 1 2 3 4 5 6 7 8 12\n", | |
"Day of Week \n", | |
"Fri 1970 1581 1525 1958 1730 1649 2045 1310 1065\n", | |
"Mon 1727 1964 1535 1598 1779 1617 1692 1511 1257\n", | |
"Sat 2291 1441 1266 1734 1444 1388 1695 1099 978\n", | |
"Sun 1960 1229 1102 1488 1424 1333 1672 1021 907\n", | |
"Thu 1584 1596 1900 1601 1590 2065 1646 1230 1266" | |
] | |
}, | |
"execution_count": 207, | |
"metadata": {}, | |
"output_type": "execute_result" | |
} | |
], | |
"source": [] | |
}, | |
{ | |
"cell_type": "code", | |
"execution_count": 208, | |
"metadata": { | |
"collapsed": false | |
}, | |
"outputs": [ | |
{ | |
"data": { | |
"text/plain": [ | |
"<matplotlib.axes._subplots.AxesSubplot at 0x1304fbd30>" | |
] | |
}, | |
"execution_count": 208, | |
"metadata": {}, | |
"output_type": "execute_result" | |
}, | |
{ | |
"data": { | |
"image/png": 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D6RxKSZIkNWKHUpIkqSCHvCVJktTMAIe8x0YD3FxTkiRJ5TiHUpIkSY1YUEqS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\n", | |
"text/plain": [ | |
"<matplotlib.figure.Figure at 0x12a1a2a58>" | |
] | |
}, | |
"metadata": {}, | |
"output_type": "display_data" | |
} | |
], | |
"source": [] | |
}, | |
{ | |
"cell_type": "code", | |
"execution_count": 209, | |
"metadata": { | |
"collapsed": false | |
}, | |
"outputs": [ | |
{ | |
"data": { | |
"text/plain": [ | |
"<seaborn.matrix.ClusterGrid at 0x12a1a61d0>" | |
] | |
}, | |
"execution_count": 209, | |
"metadata": {}, | |
"output_type": "execute_result" | |
}, | |
{ | |
"data": { | |
"image/png": 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AgN3k0939yUUuKLYAgN3kmqp6R5IPJ1lJku4+b+SCYgsA2E1+f9EL+m5EAGA3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\nYgsAYCCxBQAw0P8Hv0ppOs88huMAAAAASUVORK5CYII=\n", | |
"text/plain": [ | |
"<matplotlib.figure.Figure at 0x12a1a63c8>" | |
] | |
}, | |
"metadata": {}, | |
"output_type": "display_data" | |
} | |
], | |
"source": [] | |
}, | |
{ | |
"cell_type": "markdown", | |
"metadata": {}, | |
"source": [ | |
"**Continue exploring the Data however you see fit!**\n", | |
"# Great Job!" | |
] | |
} | |
], | |
"metadata": { | |
"kernelspec": { | |
"display_name": "Python 3", | |
"language": "python", | |
"name": "python3" | |
}, | |
"language_info": { | |
"codemirror_mode": { | |
"name": "ipython", | |
"version": 3 | |
}, | |
"file_extension": ".py", | |
"mimetype": "text/x-python", | |
"name": "python", | |
"nbconvert_exporter": "python", | |
"pygments_lexer": "ipython3", | |
"version": "3.7.1" | |
} | |
}, | |
"nbformat": 4, | |
"nbformat_minor": 2 | |
} |
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