diff --git a/.gitignore b/.gitignore
new file mode 100644
index 0000000..7eeaf70
--- /dev/null
+++ b/.gitignore
@@ -0,0 +1,56 @@
+# Windows image file caches
+Thumbs.db
+ehthumbs.db
+
+# Folder config file
+Desktop.ini
+
+# Recycle Bin used on file shares
+$RECYCLE.BIN/
+
+# Windows Installer files
+*.cab
+*.msi
+*.msm
+*.msp
+
+# =========================
+# Operating System Files
+# =========================
+
+# OSX
+# =========================
+
+.DS_Store
+.AppleDouble
+.LSOverride
+
+# Icon must end with two \r
+Icon
+
+# Thumbnails
+._*
+
+# Files that might appear on external disk
+.Spotlight-V100
+.Trashes
+
+# Directories potentially created on remote AFP share
+.AppleDB
+.AppleDesktop
+Network Trash Folder
+Temporary Items
+.apdisk
+
+# Compiled python modules.
+*.pyc
+
+# Setuptools distribution folder.
+/dist/
+
+# Python egg metadata, regenerated from source files by setuptools.
+/*.egg-info
+
+# personal notes and help
+*.notes
+*.help
\ No newline at end of file
diff --git a/LICENSE.txt b/LICENSE.txt
new file mode 100644
index 0000000..07b8e86
--- /dev/null
+++ b/LICENSE.txt
@@ -0,0 +1,22 @@
+The MIT License (MIT)
+
+Copyright (c) 2014 cjhutto
+
+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.
+
diff --git a/MANIFEST.in b/MANIFEST.in
new file mode 100644
index 0000000..398aa9a
--- /dev/null
+++ b/MANIFEST.in
@@ -0,0 +1,3 @@
+include *.txt *.py *.md
+recursive-include vaderSentiment *.txt *.py
+recursive-include additional_resources *.tar.gz
\ No newline at end of file
diff --git a/README.md b/README.md
new file mode 100644
index 0000000..b3da90e
--- /dev/null
+++ b/README.md
@@ -0,0 +1,215 @@
+## VADER-Sentiment-Analysis
+========================
+
+VADER (Valence Aware Dictionary and sEntiment Reasoner) is a lexicon and rule-based sentiment analysis tool that is _specifically attuned to sentiments expressed in social media_. It is fully open-sourced under the [MIT License](http://choosealicense.com/) (we sincerely appreciate all attributions and readily accept most contributions, but please don't hold us liable).
+
+=======
+
+###Introduction
+
+This README file describes the dataset of the paper:
+
+ **VADER: A Parsimonious Rule-based Model for Sentiment Analysis of Social Media Text**
+ (by C.J. Hutto and Eric Gilbert)
+ Eighth International Conference on Weblogs and Social Media (ICWSM-14). Ann Arbor, MI, June 2014.
+
+For questions, please contact:
+
+C.J. Hutto
+Georgia Institute of Technology, Atlanta, GA 30032
+cjhutto [at] gatech [dot] edu
+
+=======
+
+###Citation Information
+
+If you use either the dataset or any of the VADER sentiment analysis tools (VADER sentiment lexicon or Python code for rule-based sentiment analysis engine) in your research, please cite the above paper. For example:
+
+ > **Hutto, C.J. & Gilbert, E.E. (2014). VADER: A Parsimonious Rule-based Model for Sentiment Analysis of Social Media Text. Eighth International Conference on Weblogs and Social Media (ICWSM-14). Ann Arbor, MI, June 2014.**
+
+=======
+
+###Installation
+
+There are a couple of ways to install and use VADER sentiment:
+- The simplest is to use the command line to do an installtion from PyPI using pip, e.g.,
+```
+> pip install vaderSentiment
+```
+- You could also clone the [GitHub repository](https://github.com/cjhutto/vaderSentiment) (HTTPS clone URL: https://github.com/cjhutto/vaderSentiment.git)
+- You could simply download either the [full master branch zip file](https://github.com/cjhutto/vaderSentiment/archive/master.zip) , or the [public release source code](https://github.com/cjhutto/vaderSentiment/releases/tag/0.5) as a [compressed .zip file](https://github.com/cjhutto/vaderSentiment/archive/0.5.zip) or [tarball .tar.gz file](https://github.com/cjhutto/vaderSentiment/archive/0.5.tar.gz)
+
+=======
+
+###Resources and Dataset Descriptions
+
+The compressed .tar.gz package includes **PRIMARY RESOURCES** (items 1-3) as well as additional **DATASETS AND TESTING RESOURCES** (items 4-12):
+
+1. vader_icwsm2014_final.pdf
+ The original paper for the data set, see citation information (above).
+
+2. vader_sentiment_lexicon.txt
+ Empirically validated by multiple independent human judges, VADER incorporates a "gold-standard" sentiment lexicon that is especially attuned to microblog-like contexts.
+ The VADER sentiment lexicon is sensitive both the **polarity** and the **intensity** of sentiments
+ expressed in social media contexts, and is also generally applicable to sentiment analysis
+ in other domains.
+ Manually creating (much less, validating) a comprehensive sentiment lexicon is
+ a labor intensive and sometimes error prone process, so it is no wonder that many
+ opinion mining researchers and practitioners rely so heavily on existing lexicons
+ as primary resources. We are pleased to offer ours as a new resource.
+ We begin by constructing a list inspired by examining existing well-established
+ sentiment word-banks (LIWC, ANEW, and GI). To this, we next incorporate numerous
+ lexical features common to sentiment expression in microblogs, including
+ - a full list of Western-style emoticons, for example, :-) denotes a smiley face
+ and generally indicates positive sentiment)
+ - sentiment-related acronyms and initialisms (e.g., LOL and WTF are both examples of
+ sentiment-laden initialisms)
+ - commonly used slang with sentiment value (e.g., nah, meh and giggly).
+
+ This process provided us with over 9,000 lexical feature candidates. Next, we assessed
+ the general applicability of each feature candidate to sentiment expressions. We
+ used a wisdom-of-the-crowd13 (WotC) approach (Surowiecki, 2004) to acquire a valid
+ point estimate for the sentiment valence (intensity) of each context-free candidate
+ feature. We collected intensity ratings on each of our candidate lexical features
+ from ten independent human raters (for a total of 90,000+ ratings). Features were
+ rated on a scale from "[–4] Extremely Negative" to "[4] Extremely Positive", with
+ allowance for "[0] Neutral (or Neither, N/A)".
+ We kept every lexical feature that had a non-zero mean rating, and whose standard
+ deviation was less than 2.5 as determined by the aggregate of ten independent raters.
+ This left us with just over 7,500 lexical features with validated valence scores that
+ indicated both the sentiment polarity (positive/negative), and the sentiment intensity
+ on a scale from –4 to +4. For example, the word "okay" has a positive valence of 0.9,
+ "good" is 1.9, and "great" is 3.1, whereas "horrible" is –2.5, the frowning emoticon :(
+ is –2.2, and "sucks" and it's slang derivative "sux" are both –1.5.
+
+3. vaderSentiment.py
+ The Python code for the rule-based sentiment analysis engine. Implements the
+ grammatical and syntactical rules described in the paper, incorporating empirically
+ derived quantifications for the impact of each rule on the perceived intensity of
+ sentiment in sentence-level text. Importantly, these heuristics go beyond what would
+ normally be captured in a typical bag-of-words model. They incorporate **word-order
+ sensitive relationships** between terms. For example, degree modifiers (also called
+ intensifiers, booster words, or degree adverbs) impact sentiment intensity by either
+ increasing or decreasing the intensity. Consider these examples:
+ (a) "The service here is extremely good"
+ (b) "The service here is good"
+ (c) "The service here is marginally good"
+ From Table 3 in the paper, we see that for 95% of the data, using a degree modifier
+ increases the positive sentiment intensity of example (a) by 0.227 to 0.36, with a
+ mean difference of 0.293 on a rating scale from 1 to 4. Likewise, example (c) reduces
+ the perceived sentiment intensity by 0.293, on average.
+
+4. tweets_GroundTruth.txt
+ FORMAT: the file is tab delimited with ID, MEAN-SENTIMENT-RATING, and TWEET-TEXT
+ DESCRIPTION: includes "tweet-like" text as inspired by 4,000 tweets pulled from Twitter’s public timeline, plus 200 completely contrived tweet-like texts intended to specifically test syntactical and grammatical conventions of conveying differences in sentiment intensity. The "tweet-like" texts incorporate a fictitious username (@anonymous) in places where a username might typically appear, along with a fake URL ( http://url_removed ) in places where a URL might typically appear, as inspired by the original tweets. The ID and MEAN-SENTIMENT-RATING correspond to the raw sentiment rating data provided in 'tweets_anonDataRatings.txt' (described below).
+
+5. tweets_anonDataRatings.txt
+ FORMAT: the file is tab delimited with ID, MEAN-SENTIMENT-RATING, STANDARD DEVIATION, and RAW-SENTIMENT-RATINGS
+ DESCRIPTION: Sentiment ratings from a minimum of 20 independent human raters (all pre-screened, trained, and quality checked for optimal inter-rater reliability).
+
+6. nytEditorialSnippets_GroundTruth.txt
+ FORMAT: the file is tab delimited with ID, MEAN-SENTIMENT-RATING, and TEXT-SNIPPET
+ DESCRIPTION: includes 5,190 sentence-level snippets from 500 New York Times opinion news editorials/articles; we used the NLTK tokenizer to segment the articles into sentence phrases, and added sentiment intensity ratings. The ID and MEAN-SENTIMENT-RATING correspond to the raw sentiment rating data provided in 'nytEditorialSnippets_anonDataRatings.txt' (described below).
+
+7. nytEditorialSnippets_anonDataRatings.txt
+ FORMAT: the file is tab delimited with ID, MEAN-SENTIMENT-RATING, STANDARD DEVIATION, and RAW-SENTIMENT-RATINGS
+ DESCRIPTION: Sentiment ratings from a minimum of 20 independent human raters (all pre-screened, trained, and quality checked for optimal inter-rater reliability).
+
+8. movieReviewSnippets_GroundTruth.txt
+ FORMAT: the file is tab delimited with ID, MEAN-SENTIMENT-RATING, and TEXT-SNIPPET
+ DESCRIPTION: includes 10,605 sentence-level snippets from rotten.tomatoes.com. The snippets were derived from an original set of 2000 movie reviews (1000 positive and 1000 negative) in Pang & Lee (2004); we used the NLTK tokenizer to segment the reviews into sentence phrases, and added sentiment intensity ratings. The ID and MEAN-SENTIMENT-RATING correspond to the raw sentiment rating data provided in 'movieReviewSnippets_anonDataRatings.txt' (described below).
+
+9. movieReviewSnippets_anonDataRatings.txt
+ FORMAT: the file is tab delimited with ID, MEAN-SENTIMENT-RATING, STANDARD DEVIATION, and RAW-SENTIMENT-RATINGS
+ DESCRIPTION: Sentiment ratings from a minimum of 20 independent human raters (all pre-screened, trained, and quality checked for optimal inter-rater reliability).
+
+10. amazonReviewSnippets_GroundTruth.txt
+ FORMAT: the file is tab delimited with ID, MEAN-SENTIMENT-RATING, and TEXT-SNIPPET
+ DESCRIPTION: includes 3,708 sentence-level snippets from 309 customer reviews on 5 different products. The reviews were originally used in Hu & Liu (2004); we added sentiment intensity ratings. The ID and MEAN-SENTIMENT-RATING correspond to the raw sentiment rating data provided in 'amazonReviewSnippets_anonDataRatings.txt' (described below).
+
+11. amazonReviewSnippets_anonDataRatings.txt
+ FORMAT: the file is tab delimited with ID, MEAN-SENTIMENT-RATING, STANDARD DEVIATION, and RAW-SENTIMENT-RATINGS
+ DESCRIPTION: Sentiment ratings from a minimum of 20 independent human raters (all pre-screened, trained, and quality checked for optimal inter-rater reliability).
+
+
+12. Comp.Social website with more papers/research:
+ [Comp.Social](http://comp.social.gatech.edu/papers/)
+13. vader_sentiment_comparison_online_weblink
+ A short-cut hyperlinked to the online (web-based) sentiment comparison using a "light" version of VADER. http://www.socialai.gatech.edu/apps/sentiment.html .
+
+
+=======
+##Python Code EXAMPLE:
+```
+ from vaderSentiment import sentiment as vaderSentiment
+ #note: depending on how you installed (e.g., using source code download versus pip install), you may need to import like this:
+ #from vaderSentiment.vaderSentiment import sentiment as vaderSentiment
+
+ # --- example sentences -------
+ sentences = [
+ "VADER is smart, handsome, and funny.", # positive sentence example
+ "VADER is smart, handsome, and funny!", # punctuation emphasis handled correctly (sentiment intensity adjusted)
+ "VADER is very smart, handsome, and funny.", # booster words handled correctly (sentiment intensity adjusted)
+ "VADER is VERY SMART, handsome, and FUNNY.", # emphasis for ALLCAPS handled
+ "VADER is VERY SMART, handsome, and FUNNY!!!",# combination of signals - VADER appropriately adjusts intensity
+ "VADER is VERY SMART, really handsome, and INCREDIBLY FUNNY!!!",# booster words & punctuation make this close to ceiling for score
+ "The book was good.", # positive sentence
+ "The book was kind of good.", # qualified positive sentence is handled correctly (intensity adjusted)
+ "The plot was good, but the characters are uncompelling and the dialog is not great.", # mixed negation sentence
+ "A really bad, horrible book.", # negative sentence with booster words
+ "At least it isn't a horrible book.", # negated negative sentence with contraction
+ ":) and :D", # emoticons handled
+ "", # an empty string is correctly handled
+ "Today sux", # negative slang handled
+ "Today sux!", # negative slang with punctuation emphasis handled
+ "Today SUX!", # negative slang with capitalization emphasis
+ "Today kinda sux! But I'll get by, lol" # mixed sentiment example with slang and constrastive conjunction "but"
+ ].
+ for sentence in sentences:
+ print sentence,
+ vs = vaderSentiment(sentence)
+ print "\n\t" + str(vs)
+
+# --- output for the above example code ---
+VADER is smart, handsome, and funny.
+ {'neg': 0.0, 'neu': 0.254, 'pos': 0.746, 'compound': 0.8316}
+VADER is smart, handsome, and funny!
+ {'neg': 0.0, 'neu': 0.248, 'pos': 0.752, 'compound': 0.8439}
+VADER is very smart, handsome, and funny.
+ {'neg': 0.0, 'neu': 0.299, 'pos': 0.701, 'compound': 0.8545}
+VADER is VERY SMART, handsome, and FUNNY.
+ {'neg': 0.0, 'neu': 0.246, 'pos': 0.754, 'compound': 0.9227}
+VADER is VERY SMART, handsome, and FUNNY!!!
+ {'neg': 0.0, 'neu': 0.233, 'pos': 0.767, 'compound': 0.9342}
+VADER is VERY SMART, really handsome, and INCREDIBLY FUNNY!!!
+ {'neg': 0.0, 'neu': 0.294, 'pos': 0.706, 'compound': 0.9469}
+The book was good.
+ {'neg': 0.0, 'neu': 0.508, 'pos': 0.492, 'compound': 0.4404}
+The book was kind of good.
+ {'neg': 0.0, 'neu': 0.657, 'pos': 0.343, 'compound': 0.3832}
+The plot was good, but the characters are uncompelling and the dialog is not great.
+ {'neg': 0.327, 'neu': 0.579, 'pos': 0.094, 'compound': -0.7042}
+A really bad, horrible book.
+ {'neg': 0.791, 'neu': 0.209, 'pos': 0.0, 'compound': -0.8211}
+At least it isn't a horrible book.
+ {'neg': 0.0, 'neu': 0.637, 'pos': 0.363, 'compound': 0.431}
+:) and :D
+ {'neg': 0.0, 'neu': 0.124, 'pos': 0.876, 'compound': 0.7925}
+
+ {'neg': 0.0, 'neu': 0.0, 'pos': 0.0, 'compound': 0.0}
+Today sux
+ {'neg': 0.714, 'neu': 0.286, 'pos': 0.0, 'compound': -0.3612}
+Today sux!
+ {'neg': 0.736, 'neu': 0.264, 'pos': 0.0, 'compound': -0.4199}
+Today SUX!
+ {'neg': 0.779, 'neu': 0.221, 'pos': 0.0, 'compound': -0.5461}
+Today kinda sux! But I'll get by, lol
+ {'neg': 0.195, 'neu': 0.531, 'pos': 0.274, 'compound': 0.2228}
+```
+=======
+
+###Online (web-based) Sentiment Comparison using VADER
+
+ http://www.socialai.gatech.edu/apps/sentiment.html .
+
+=======
diff --git a/README.txt b/README.txt
new file mode 100644
index 0000000..e936ae9
--- /dev/null
+++ b/README.txt
@@ -0,0 +1,189 @@
+=======
+
+Introduction
+
+This README file describes the dataset of the paper:
+ VADER: A Parsimonious Rule-based Model for Sentiment Analysis of Social Media Text
+ C.J. Hutto and Eric Gilbert
+ Eighth International Conference on Weblogs and Social Media (ICWSM-14). Ann Arbor, MI, June 2014.
+
+For questions, please contact:
+C.J. Hutto
+Georgia Institute of Technology, Atlanta, GA 30032
+cjhutto@gatech.edu
+
+=======
+
+Citation Information
+
+If you use either the dataset or any of the VADER sentiment analysis tools (VADER sentiment lexicon or Python code for rule-based sentiment analysis engine) in your research, please cite the above paper. For example:
+
+ Hutto, C.J. & Gilbert, E.E. (2014). VADER: A Parsimonious Rule-based Model for Sentiment Analysis of Social Media Text. Eighth International Conference on Weblogs and Social Media (ICWSM-14). Ann Arbor, MI, June 2014.
+
+=======
+
+Resource and Dataset Descriptions
+
+This zip file includes:
+
+PRIMARY RESOURCES:
+1. vader_icwsm2014_final.pdf
+ The original paper for the data set, see citation information (above).
+2. vader_sentiment_lexicon.txt
+ Empirically validated by multiple independent human judges, VADER incorporates a
+ "gold-standard" sentiment lexicon that is especially attuned to microblog-like contexts.
+ The VADER sentiment lexicon is sensitive both the polarity and the intensity of sentiments
+ expressed in social media contexts, and is also generally applicable to sentiment analysis
+ in other domains.
+ Manually creating (much less, validating) a comprehensive sentiment lexicon is
+ a labor intensive and sometimes error prone process, so it is no wonder that many
+ opinion mining researchers and practitioners rely so heavily on existing lexicons
+ as primary resources. We are pleased to offer ours as a new resource.
+ We begin by constructing a list inspired by examining existing well-established
+ sentiment word-banks (LIWC, ANEW, and GI). To this, we next incorporate numerous
+ lexical features common to sentiment expression in microblogs, including
+ - a full list of Western-style emoticons, for example, :-) denotes a smiley face
+ and generally indicates positive sentiment)
+ - sentiment-related acronyms and initialisms (e.g., LOL and WTF are both examples of
+ sentiment-laden initialisms)
+ - commonly used slang with sentiment value (e.g., nah, meh and giggly).
+ This process provided us with over 9,000 lexical feature candidates. Next, we assessed
+ the general applicability of each feature candidate to sentiment expressions. We
+ used a wisdom-of-the-crowd13 (WotC) approach (Surowiecki, 2004) to acquire a valid
+ point estimate for the sentiment valence (intensity) of each context-free candidate
+ feature. We collected intensity ratings on each of our candidate lexical features
+ from ten independent human raters (for a total of 90,000+ ratings). Features were
+ rated on a scale from "[–4] Extremely Negative" to "[4] Extremely Positive", with
+ allowance for "[0] Neutral (or Neither, N/A)".
+ We kept every lexical feature that had a non-zero mean rating, and whose standard
+ deviation was less than 2.5 as determined by the aggregate of ten independent raters.
+ This left us with just over 7,500 lexical features with validated valence scores that
+ indicated both the sentiment polarity (positive/negative), and the sentiment intensity
+ on a scale from –4 to +4. For example, the word "okay" has a positive valence of 0.9,
+ "good" is 1.9, and "great" is 3.1, whereas "horrible" is –2.5, the frowning emoticon :(
+ is –2.2, and "sucks" and it's slang derivative "sux" are both –1.5.
+3. vaderSentiment.py
+ The Python code for the rule-based sentiment analysis engine. Implements the
+ grammatical and syntactical rules described in the paper, incorporating empirically
+ derived quantifications for the impact of each rule on the perceived intensity of
+ sentiment in sentence-level text. Importantly, these heuristics go beyond what would
+ normally be captured in a typical bag-of-words model. They incorporate **word-order
+ sensitive relationships** between terms. For example, degree modifiers (also called
+ intensifiers, booster words, or degree adverbs) impact sentiment intensity by either
+ increasing or decreasing the intensity. Consider these examples:
+ (a) "The service here is extremely good"
+ (b) "The service here is good"
+ (c) "The service here is marginally good"
+ From Table 3 in the paper, we see that for 95% of the data, using a degree modifier
+ increases the positive sentiment intensity of example (a) by 0.227 to 0.36, with a
+ mean difference of 0.293 on a rating scale from 1 to 4. Likewise, example (c) reduces
+ the perceived sentiment intensity by 0.293, on average.
+
+DATASETS AND TESTING RESOURCES:
+4. tweets_GroundTruth.txt
+ FORMAT: the file is tab delimited with ID, MEAN-SENTIMENT-RATING, and TWEET-TEXT
+ DESCRIPTION: includes "tweet-like" text as inspired by 4,000 tweets pulled from Twitter’s public timeline, plus 200 completely contrived tweet-like texts intended to specifically test syntactical and grammatical conventions of conveying differences in sentiment intensity. The "tweet-like" texts incorporate a fictitious username (@anonymous) in places where a username might typically appear, along with a fake URL ( http://url_removed ) in places where a URL might typically appear, as inspired by the original tweets. The ID and MEAN-SENTIMENT-RATING correspond to the raw sentiment rating data provided in 'tweets_anonDataRatings.txt' (described below).
+5. tweets_anonDataRatings.txt
+ FORMAT: the file is tab delimited with ID, MEAN-SENTIMENT-RATING, STANDARD DEVIATION, and RAW-SENTIMENT-RATINGS
+ DESCRIPTION: Sentiment ratings from a minimum of 20 independent human raters (all pre-screened, trained, and quality checked for optimal inter-rater reliability).
+6. nytEditorialSnippets_GroundTruth.txt
+ FORMAT: the file is tab delimited with ID, MEAN-SENTIMENT-RATING, and TEXT-SNIPPET
+ DESCRIPTION: includes 5,190 sentence-level snippets from 500 New York Times opinion news editorials/articles; we used the NLTK tokenizer to segment the articles into sentence phrases, and added sentiment intensity ratings. The ID and MEAN-SENTIMENT-RATING correspond to the raw sentiment rating data provided in 'nytEditorialSnippets_anonDataRatings.txt' (described below).
+7. nytEditorialSnippets_anonDataRatings.txt
+ FORMAT: the file is tab delimited with ID, MEAN-SENTIMENT-RATING, STANDARD DEVIATION, and RAW-SENTIMENT-RATINGS
+ DESCRIPTION: Sentiment ratings from a minimum of 20 independent human raters (all pre-screened, trained, and quality checked for optimal inter-rater reliability).
+8. movieReviewSnippets_GroundTruth.txt
+ FORMAT: the file is tab delimited with ID, MEAN-SENTIMENT-RATING, and TEXT-SNIPPET
+ DESCRIPTION: includes 10,605 sentence-level snippets from rotten.tomatoes.com. The snippets were derived from an original set of 2000 movie reviews (1000 positive and 1000 negative) in Pang & Lee (2004); we used the NLTK tokenizer to segment the reviews into sentence phrases, and added sentiment intensity ratings. The ID and MEAN-SENTIMENT-RATING correspond to the raw sentiment rating data provided in 'movieReviewSnippets_anonDataRatings.txt' (described below).
+9. movieReviewSnippets_anonDataRatings.txt
+ FORMAT: the file is tab delimited with ID, MEAN-SENTIMENT-RATING, STANDARD DEVIATION, and RAW-SENTIMENT-RATINGS
+ DESCRIPTION: Sentiment ratings from a minimum of 20 independent human raters (all pre-screened, trained, and quality checked for optimal inter-rater reliability).
+10. amazonReviewSnippets_GroundTruth.txt
+ FORMAT: the file is tab delimited with ID, MEAN-SENTIMENT-RATING, and TEXT-SNIPPET
+ DESCRIPTION: includes 3,708 sentence-level snippets from 309 customer reviews on 5 different products. The reviews were originally used in Hu & Liu (2004); we added sentiment intensity ratings. The ID and MEAN-SENTIMENT-RATING correspond to the raw sentiment rating data provided in 'amazonReviewSnippets_anonDataRatings.txt' (described below).
+11. amazonReviewSnippets_anonDataRatings.txt
+ FORMAT: the file is tab delimited with ID, MEAN-SENTIMENT-RATING, STANDARD DEVIATION, and RAW-SENTIMENT-RATINGS
+ DESCRIPTION: Sentiment ratings from a minimum of 20 independent human raters (all pre-screened, trained, and quality checked for optimal inter-rater reliability).
+
+ADDITIONAL RESOURCES:
+12. _README_.txt
+ This readme file
+13. vader_sentiment_comparison_online_weblink
+ A short-cut hyperlinked to the online (web-based) sentiment comparison using a "light" version of VADER. http://www.socialai.gatech.edu/apps/sentiment.html .
+
+=======
+
+Python Code EXAMPLE:
+
+ from vaderSentiment import sentiment as vaderSentiment
+ #note: depending on how you installed (e.g., using source code download versus pip install), you may need to import like this:
+ #from vaderSentiment.vaderSentiment import sentiment as vaderSentiment
+
+ # --- example sentences -------
+ sentences = [
+ "VADER is smart, handsome, and funny.", # positive sentence example
+ "VADER is smart, handsome, and funny!", # punctuation emphasis handled correctly (sentiment intensity adjusted)
+ "VADER is very smart, handsome, and funny.", # booster words handled correctly (sentiment intensity adjusted)
+ "VADER is VERY SMART, handsome, and FUNNY.", # emphasis for ALLCAPS handled
+ "VADER is VERY SMART, handsome, and FUNNY!!!",# combination of signals - VADER appropriately adjusts intensity
+ "VADER is VERY SMART, really handsome, and INCREDIBLY FUNNY!!!",# booster words & punctuation make this close to ceiling for score
+ "The book was good.", # positive sentence
+ "The book was kind of good.", # qualified positive sentence is handled correctly (intensity adjusted)
+ "The plot was good, but the characters are uncompelling and the dialog is not great.", # mixed negation sentence
+ "A really bad, horrible book.", # negative sentence with booster words
+ "At least it isn't a horrible book.", # negated negative sentence with contraction
+ ":) and :D", # emoticons handled
+ "", # an empty string is correctly handled
+ "Today sux", # negative slang handled
+ "Today sux!", # negative slang with punctuation emphasis handled
+ "Today SUX!", # negative slang with capitalization emphasis
+ "Today kinda sux! But I'll get by, lol" # mixed sentiment example with slang and constrastive conjunction "but"
+ ].
+ for sentence in sentences:
+ print sentence,
+ vs = vaderSentiment(sentence)
+ print "\n\t" + str(vs)
+
+# --- output for the above example code ---
+VADER is smart, handsome, and funny.
+ {'neg': 0.0, 'neu': 0.254, 'pos': 0.746, 'compound': 0.8316}
+VADER is smart, handsome, and funny!
+ {'neg': 0.0, 'neu': 0.248, 'pos': 0.752, 'compound': 0.8439}
+VADER is very smart, handsome, and funny.
+ {'neg': 0.0, 'neu': 0.299, 'pos': 0.701, 'compound': 0.8545}
+VADER is VERY SMART, handsome, and FUNNY.
+ {'neg': 0.0, 'neu': 0.246, 'pos': 0.754, 'compound': 0.9227}
+VADER is VERY SMART, handsome, and FUNNY!!!
+ {'neg': 0.0, 'neu': 0.233, 'pos': 0.767, 'compound': 0.9342}
+VADER is VERY SMART, really handsome, and INCREDIBLY FUNNY!!!
+ {'neg': 0.0, 'neu': 0.294, 'pos': 0.706, 'compound': 0.9469}
+The book was good.
+ {'neg': 0.0, 'neu': 0.508, 'pos': 0.492, 'compound': 0.4404}
+The book was kind of good.
+ {'neg': 0.0, 'neu': 0.657, 'pos': 0.343, 'compound': 0.3832}
+The plot was good, but the characters are uncompelling and the dialog is not great.
+ {'neg': 0.327, 'neu': 0.579, 'pos': 0.094, 'compound': -0.7042}
+A really bad, horrible book.
+ {'neg': 0.791, 'neu': 0.209, 'pos': 0.0, 'compound': -0.8211}
+At least it isn't a horrible book.
+ {'neg': 0.0, 'neu': 0.637, 'pos': 0.363, 'compound': 0.431}
+:) and :D
+ {'neg': 0.0, 'neu': 0.124, 'pos': 0.876, 'compound': 0.7925}
+
+ {'neg': 0.0, 'neu': 0.0, 'pos': 0.0, 'compound': 0.0}
+Today sux
+ {'neg': 0.714, 'neu': 0.286, 'pos': 0.0, 'compound': -0.3612}
+Today sux!
+ {'neg': 0.736, 'neu': 0.264, 'pos': 0.0, 'compound': -0.4199}
+Today SUX!
+ {'neg': 0.779, 'neu': 0.221, 'pos': 0.0, 'compound': -0.5461}
+Today kinda sux! But I'll get by, lol
+ {'neg': 0.195, 'neu': 0.531, 'pos': 0.274, 'compound': 0.2228}
+
+=======
+
+Online (web-based) Sentiment Comparison using VADER
+
+ http://www.socialai.gatech.edu/apps/sentiment.html .
+
+=======
diff --git a/additional_resources/hutto_ICWSM_2014.tar.gz b/additional_resources/hutto_ICWSM_2014.tar.gz
new file mode 100644
index 0000000..17f4f96
Binary files /dev/null and b/additional_resources/hutto_ICWSM_2014.tar.gz differ
diff --git a/setup.cfg b/setup.cfg
new file mode 100644
index 0000000..0809225
--- /dev/null
+++ b/setup.cfg
@@ -0,0 +1,4 @@
+[metadata]
+description-file = README.md
+[wheel]
+universal = 1
\ No newline at end of file
diff --git a/setup.py b/setup.py
new file mode 100644
index 0000000..aaca9a4
--- /dev/null
+++ b/setup.py
@@ -0,0 +1,22 @@
+from setuptools import setup, find_packages
+setup(
+ name = 'vaderSentiment',
+ #packages = ['vaderSentiment'], # this must be the same as the name above
+ packages = find_packages(exclude=['tests*']), # a better way to do it than the line above -- this way no typo/transpo errors
+ include_package_data=True,
+ version = '0.5',
+ description = 'VADER Sentiment Analysis. VADER (Valence Aware Dictionary and sEntiment Reasoner) is a lexicon and rule-based sentiment analysis tool that is specifically attuned to sentiments expressed in social media, and works well on texts from other domains.',
+ author = 'C.J. Hutto',
+ author_email = 'cjhutto [at] gatech [dot] edu',
+ license = 'MIT License: http://opensource.org/licenses/MIT',
+ url = 'https://github.com/cjhutto/vaderSentiment', # use the URL to the github repo
+ download_url = 'https://github.com/cjhutto/vaderSentiment/archive/master.zip',
+ keywords = ['vader', 'sentiment', 'analysis', 'opinion', 'mining', 'nlp', 'text', 'data',
+ 'text analysis', 'opinion analysis', 'sentiment analysis', 'text mining', 'twitter sentiment',
+ 'opinion mining', 'social media', 'twitter', 'social', 'media'], # arbitrary keywords
+ classifiers = ['Development Status :: 4 - Beta', 'Intended Audience :: Science/Research',
+ 'License :: OSI Approved :: MIT License', 'Natural Language :: English',
+ 'Programming Language :: Python :: 2.7', 'Topic :: Scientific/Engineering :: Artificial Intelligence',
+ 'Topic :: Scientific/Engineering :: Information Analysis', 'Topic :: Text Processing :: Linguistic',
+ 'Topic :: Text Processing :: General'],
+)
\ No newline at end of file
diff --git a/vaderSentiment/__init__.py b/vaderSentiment/__init__.py
new file mode 100644
index 0000000..693737f
--- /dev/null
+++ b/vaderSentiment/__init__.py
@@ -0,0 +1 @@
+#!/usr/bin/python
\ No newline at end of file
diff --git a/vaderSentiment/vaderSentiment.py b/vaderSentiment/vaderSentiment.py
new file mode 100644
index 0000000..93964ea
--- /dev/null
+++ b/vaderSentiment/vaderSentiment.py
@@ -0,0 +1,363 @@
+#!/usr/bin/python
+# coding: utf-8
+'''
+Created on July 04, 2013
+@author: C.J. Hutto
+
+Citation Information
+
+If you use any of the VADER sentiment analysis tools
+(VADER sentiment lexicon or Python code for rule-based sentiment
+analysis engine) in your work or research, please cite the paper.
+For example:
+
+ Hutto, C.J. & Gilbert, E.E. (2014). VADER: A Parsimonious Rule-based Model for
+ Sentiment Analysis of Social Media Text. Eighth International Conference on
+ Weblogs and Social Media (ICWSM-14). Ann Arbor, MI, June 2014.
+'''
+
+import os, math, re, sys, fnmatch, string
+reload(sys)
+
+def make_lex_dict(f):
+ return dict(map(lambda (w, m): (w, float(m)), [wmsr.strip().split('\t')[0:2] for wmsr in open(f) ]))
+
+f = 'vader_sentiment_lexicon.txt' # empirically derived valence ratings for words, emoticons, slang, swear words, acronyms/initialisms
+try:
+ word_valence_dict = make_lex_dict(f)
+except:
+ f = os.path.join(os.path.dirname(__file__),'vader_sentiment_lexicon.txt')
+ word_valence_dict = make_lex_dict(f)
+
+# for removing punctuation
+regex_remove_punctuation = re.compile('[%s]' % re.escape(string.punctuation))
+
+def sentiment(text):
+ """
+ Returns a float for sentiment strength based on the input text.
+ Positive values are positive valence, negative value are negative valence.
+ """
+ wordsAndEmoticons = str(text).split() #doesn't separate words from adjacent punctuation (keeps emoticons & contractions)
+ text_mod = regex_remove_punctuation.sub('', text) # removes punctuation (but loses emoticons & contractions)
+ wordsOnly = str(text_mod).split()
+ # get rid of empty items or single letter "words" like 'a' and 'I' from wordsOnly
+ for word in wordsOnly:
+ if len(word) <= 1:
+ wordsOnly.remove(word)
+ # now remove adjacent & redundant punctuation from [wordsAndEmoticons] while keeping emoticons and contractions
+ puncList = [".", "!", "?", ",", ";", ":", "-", "'", "\"",
+ "!!", "!!!", "??", "???", "?!?", "!?!", "?!?!", "!?!?"]
+ for word in wordsOnly:
+ for p in puncList:
+ pword = p + word
+ x1 = wordsAndEmoticons.count(pword)
+ while x1 > 0:
+ i = wordsAndEmoticons.index(pword)
+ wordsAndEmoticons.remove(pword)
+ wordsAndEmoticons.insert(i, word)
+ x1 = wordsAndEmoticons.count(pword)
+
+ wordp = word + p
+ x2 = wordsAndEmoticons.count(wordp)
+ while x2 > 0:
+ i = wordsAndEmoticons.index(wordp)
+ wordsAndEmoticons.remove(wordp)
+ wordsAndEmoticons.insert(i, word)
+ x2 = wordsAndEmoticons.count(wordp)
+ # get rid of residual empty items or single letter "words" like 'a' and 'I' from wordsAndEmoticons
+ for word in wordsAndEmoticons:
+ if len(word) <= 1:
+ wordsAndEmoticons.remove(word)
+
+ # remove stopwords from [wordsAndEmoticons]
+ #stopwords = [str(word).strip() for word in open('stopwords.txt')]
+ #for word in wordsAndEmoticons:
+ # if word in stopwords:
+ # wordsAndEmoticons.remove(word)
+
+ # check for negation
+ negate = ["aint", "arent", "cannot", "cant", "couldnt", "darent", "didnt", "doesnt",
+ "ain't", "aren't", "can't", "couldn't", "daren't", "didn't", "doesn't",
+ "dont", "hadnt", "hasnt", "havent", "isnt", "mightnt", "mustnt", "neither",
+ "don't", "hadn't", "hasn't", "haven't", "isn't", "mightn't", "mustn't",
+ "neednt", "needn't", "never", "none", "nope", "nor", "not", "nothing", "nowhere",
+ "oughtnt", "shant", "shouldnt", "uhuh", "wasnt", "werent",
+ "oughtn't", "shan't", "shouldn't", "uh-uh", "wasn't", "weren't",
+ "without", "wont", "wouldnt", "won't", "wouldn't", "rarely", "seldom", "despite"]
+ def negated(list, nWords=[], includeNT=True):
+ nWords.extend(negate)
+ for word in nWords:
+ if word in list:
+ return True
+ if includeNT:
+ for word in list:
+ if "n't" in word:
+ return True
+ if "least" in list:
+ i = list.index("least")
+ if i > 0 and list[i-1] != "at":
+ return True
+ return False
+
+ def normalize(score, alpha=15):
+ # normalize the score to be between -1 and 1 using an alpha that approximates the max expected value
+ normScore = score/math.sqrt( ((score*score) + alpha) )
+ return normScore
+
+ def wildCardMatch(patternWithWildcard, listOfStringsToMatchAgainst):
+ listOfMatches = fnmatch.filter(listOfStringsToMatchAgainst, patternWithWildcard)
+ return listOfMatches
+
+
+ def isALLCAP_differential(wordList):
+ countALLCAPS= 0
+ for w in wordList:
+ if str(w).isupper():
+ countALLCAPS += 1
+ cap_differential = len(wordList) - countALLCAPS
+ if cap_differential > 0 and cap_differential < len(wordList):
+ isDiff = True
+ else: isDiff = False
+ return isDiff
+ isCap_diff = isALLCAP_differential(wordsAndEmoticons)
+
+ b_incr = 0.293 #(empirically derived mean sentiment intensity rating increase for booster words)
+ b_decr = -0.293
+ # booster/dampener 'intensifiers' or 'degree adverbs' http://en.wiktionary.org/wiki/Category:English_degree_adverbs
+ booster_dict = {"absolutely": b_incr, "amazingly": b_incr, "awfully": b_incr, "completely": b_incr, "considerably": b_incr,
+ "decidedly": b_incr, "deeply": b_incr, "effing": b_incr, "enormously": b_incr,
+ "entirely": b_incr, "especially": b_incr, "exceptionally": b_incr, "extremely": b_incr,
+ "fabulously": b_incr, "flipping": b_incr, "flippin": b_incr,
+ "fricking": b_incr, "frickin": b_incr, "frigging": b_incr, "friggin": b_incr, "fully": b_incr, "fucking": b_incr,
+ "greatly": b_incr, "hella": b_incr, "highly": b_incr, "hugely": b_incr, "incredibly": b_incr,
+ "intensely": b_incr, "majorly": b_incr, "more": b_incr, "most": b_incr, "particularly": b_incr,
+ "purely": b_incr, "quite": b_incr, "really": b_incr, "remarkably": b_incr,
+ "so": b_incr, "substantially": b_incr,
+ "thoroughly": b_incr, "totally": b_incr, "tremendously": b_incr,
+ "uber": b_incr, "unbelievably": b_incr, "unusually": b_incr, "utterly": b_incr,
+ "very": b_incr,
+
+ "almost": b_decr, "barely": b_decr, "hardly": b_decr, "just enough": b_decr,
+ "kind of": b_decr, "kinda": b_decr, "kindof": b_decr, "kind-of": b_decr,
+ "less": b_decr, "little": b_decr, "marginally": b_decr, "occasionally": b_decr, "partly": b_decr,
+ "scarcely": b_decr, "slightly": b_decr, "somewhat": b_decr,
+ "sort of": b_decr, "sorta": b_decr, "sortof": b_decr, "sort-of": b_decr}
+ sentiments = []
+ for item in wordsAndEmoticons:
+ v = 0
+ i = wordsAndEmoticons.index(item)
+ if (i < len(wordsAndEmoticons)-1 and str(item).lower() == "kind" and \
+ str(wordsAndEmoticons[i+1]).lower() == "of") or str(item).lower() in booster_dict:
+ sentiments.append(v)
+ continue
+ item_lowercase = str(item).lower()
+ if item_lowercase in word_valence_dict:
+ #get the sentiment valence
+ v = float(word_valence_dict[item_lowercase])
+
+ #check if sentiment laden word is in ALLCAPS (while others aren't)
+ c_incr = 0.733 #(empirically derived mean sentiment intensity rating increase for using ALLCAPs to emphasize a word)
+ if str(item).isupper() and isCap_diff:
+ if v > 0: v += c_incr
+ else: v -= c_incr
+
+ #check if the preceding words increase, decrease, or negate/nullify the valence
+ def scalar_inc_dec(word, valence):
+ scalar = 0.0
+ word_lower = str(word).lower()
+ if word_lower in booster_dict:
+ scalar = booster_dict[word_lower]
+ if valence < 0: scalar *= -1
+ #check if booster/dampener word is in ALLCAPS (while others aren't)
+ if str(word).isupper() and isCap_diff:
+ if valence > 0: scalar += c_incr
+ else: scalar -= c_incr
+ return scalar
+ n_scalar = -0.74
+ if i > 0 and str(wordsAndEmoticons[i-1]).lower() not in word_valence_dict:
+ s1 = scalar_inc_dec(wordsAndEmoticons[i-1], v)
+ v = v+s1
+ if negated([wordsAndEmoticons[i-1]]): v = v*n_scalar
+ if i > 1 and str(wordsAndEmoticons[i-2]).lower() not in word_valence_dict:
+ s2 = scalar_inc_dec(wordsAndEmoticons[i-2], v)
+ if s2 != 0: s2 = s2*0.95
+ v = v+s2
+ # check for special use of 'never' as valence modifier instead of negation
+ if wordsAndEmoticons[i-2] == "never" and (wordsAndEmoticons[i-1] == "so" or wordsAndEmoticons[i-1] == "this"):
+ v = v*1.5
+ # otherwise, check for negation/nullification
+ elif negated([wordsAndEmoticons[i-2]]): v = v*n_scalar
+ if i > 2 and str(wordsAndEmoticons[i-3]).lower() not in word_valence_dict:
+ s3 = scalar_inc_dec(wordsAndEmoticons[i-3], v)
+ if s3 != 0: s3 = s3*0.9
+ v = v+s3
+ # check for special use of 'never' as valence modifier instead of negation
+ if wordsAndEmoticons[i-3] == "never" and \
+ (wordsAndEmoticons[i-2] == "so" or wordsAndEmoticons[i-2] == "this") or \
+ (wordsAndEmoticons[i-1] == "so" or wordsAndEmoticons[i-1] == "this"):
+ v = v*1.25
+ # otherwise, check for negation/nullification
+ elif negated([wordsAndEmoticons[i-3]]): v = v*n_scalar
+
+ # check for special case idioms using a sentiment-laden keyword known to SAGE
+ special_case_idioms = {"the shit": 3, "the bomb": 3, "bad ass": 1.5, "yeah right": -2,
+ "cut the mustard": 2, "kiss of death": -1.5, "hand to mouth": -2}
+ # future work: consider other sentiment-laden idioms
+ #other_idioms = {"back handed": -2, "blow smoke": -2, "blowing smoke": -2, "upper hand": 1, "break a leg": 2,
+ # "cooking with gas": 2, "in the black": 2, "in the red": -2, "on the ball": 2,"under the weather": -2}
+ onezero = "{} {}".format(str(wordsAndEmoticons[i-1]), str(wordsAndEmoticons[i]))
+ twoonezero = "{} {} {}".format(str(wordsAndEmoticons[i-2]), str(wordsAndEmoticons[i-1]), str(wordsAndEmoticons[i]))
+ twoone = "{} {}".format(str(wordsAndEmoticons[i-2]), str(wordsAndEmoticons[i-1]))
+ threetwoone = "{} {} {}".format(str(wordsAndEmoticons[i-3]), str(wordsAndEmoticons[i-2]), str(wordsAndEmoticons[i-1]))
+ threetwo = "{} {}".format(str(wordsAndEmoticons[i-3]), str(wordsAndEmoticons[i-2]))
+ if onezero in special_case_idioms: v = special_case_idioms[onezero]
+ elif twoonezero in special_case_idioms: v = special_case_idioms[twoonezero]
+ elif twoone in special_case_idioms: v = special_case_idioms[twoone]
+ elif threetwoone in special_case_idioms: v = special_case_idioms[threetwoone]
+ elif threetwo in special_case_idioms: v = special_case_idioms[threetwo]
+ if len(wordsAndEmoticons)-1 > i:
+ zeroone = "{} {}".format(str(wordsAndEmoticons[i]), str(wordsAndEmoticons[i+1]))
+ if zeroone in special_case_idioms: v = special_case_idioms[zeroone]
+ if len(wordsAndEmoticons)-1 > i+1:
+ zeroonetwo = "{} {}".format(str(wordsAndEmoticons[i]), str(wordsAndEmoticons[i+1]), str(wordsAndEmoticons[i+2]))
+ if zeroonetwo in special_case_idioms: v = special_case_idioms[zeroonetwo]
+
+ # check for booster/dampener bi-grams such as 'sort of' or 'kind of'
+ if threetwo in booster_dict or twoone in booster_dict:
+ v = v+b_decr
+
+ # check for negation case using "least"
+ if i > 1 and str(wordsAndEmoticons[i-1]).lower() not in word_valence_dict \
+ and str(wordsAndEmoticons[i-1]).lower() == "least":
+ if (str(wordsAndEmoticons[i-2]).lower() != "at" and str(wordsAndEmoticons[i-2]).lower() != "very"):
+ v = v*n_scalar
+ elif i > 0 and str(wordsAndEmoticons[i-1]).lower() not in word_valence_dict \
+ and str(wordsAndEmoticons[i-1]).lower() == "least":
+ v = v*n_scalar
+ sentiments.append(v)
+
+ # check for modification in sentiment due to contrastive conjunction 'but'
+ if 'but' in wordsAndEmoticons or 'BUT' in wordsAndEmoticons:
+ try: bi = wordsAndEmoticons.index('but')
+ except: bi = wordsAndEmoticons.index('BUT')
+ for s in sentiments:
+ si = sentiments.index(s)
+ if si < bi:
+ sentiments.pop(si)
+ sentiments.insert(si, s*0.5)
+ elif si > bi:
+ sentiments.pop(si)
+ sentiments.insert(si, s*1.5)
+
+ if sentiments:
+ sum_s = float(sum(sentiments))
+ #print sentiments, sum_s
+
+ # check for added emphasis resulting from exclamation points (up to 4 of them)
+ ep_count = str(text).count("!")
+ if ep_count > 4: ep_count = 4
+ ep_amplifier = ep_count*0.292 #(empirically derived mean sentiment intensity rating increase for exclamation points)
+ if sum_s > 0: sum_s += ep_amplifier
+ elif sum_s < 0: sum_s -= ep_amplifier
+
+ # check for added emphasis resulting from question marks (2 or 3+)
+ qm_count = str(text).count("?")
+ qm_amplifier = 0
+ if qm_count > 1:
+ if qm_count <= 3: qm_amplifier = qm_count*0.18
+ else: qm_amplifier = 0.96
+ if sum_s > 0: sum_s += qm_amplifier
+ elif sum_s < 0: sum_s -= qm_amplifier
+
+ compound = normalize(sum_s)
+
+ # want separate positive versus negative sentiment scores
+ pos_sum = 0.0
+ neg_sum = 0.0
+ neu_count = 0
+ for sentiment_score in sentiments:
+ if sentiment_score > 0:
+ pos_sum += (float(sentiment_score) +1) # compensates for neutral words that are counted as 1
+ if sentiment_score < 0:
+ neg_sum += (float(sentiment_score) -1) # when used with math.fabs(), compensates for neutrals
+ if sentiment_score == 0:
+ neu_count += 1
+
+ if pos_sum > math.fabs(neg_sum): pos_sum += (ep_amplifier+qm_amplifier)
+ elif pos_sum < math.fabs(neg_sum): neg_sum -= (ep_amplifier+qm_amplifier)
+
+ total = pos_sum + math.fabs(neg_sum) + neu_count
+ pos = math.fabs(pos_sum / total)
+ neg = math.fabs(neg_sum / total)
+ neu = math.fabs(neu_count / total)
+
+ else:
+ compound = 0.0; pos = 0.0; neg = 0.0; neu = 0.0
+
+ s = {"neg" : round(neg, 3),
+ "neu" : round(neu, 3),
+ "pos" : round(pos, 3),
+ "compound" : round(compound, 4)}
+ return s
+
+
+if __name__ == '__main__':
+ # --- examples -------
+ sentences = [
+ "VADER is smart, handsome, and funny.", # positive sentence example
+ "VADER is smart, handsome, and funny!", # punctuation emphasis handled correctly (sentiment intensity adjusted)
+ "VADER is very smart, handsome, and funny.", # booster words handled correctly (sentiment intensity adjusted)
+ "VADER is VERY SMART, handsome, and FUNNY.", # emphasis for ALLCAPS handled
+ "VADER is VERY SMART, handsome, and FUNNY!!!",# combination of signals - VADER appropriately adjusts intensity
+ "VADER is VERY SMART, really handsome, and INCREDIBLY FUNNY!!!",# booster words & punctuation make this close to ceiling for score
+ "The book was good.", # positive sentence
+ "The book was kind of good.", # qualified positive sentence is handled correctly (intensity adjusted)
+ "The plot was good, but the characters are uncompelling and the dialog is not great.", # mixed negation sentence
+ "A really bad, horrible book.", # negative sentence with booster words
+ "At least it isn't a horrible book.", # negated negative sentence with contraction
+ ":) and :D", # emoticons handled
+ "", # an empty string is correctly handled
+ "Today sux", # negative slang handled
+ "Today sux!", # negative slang with punctuation emphasis handled
+ "Today SUX!", # negative slang with capitalization emphasis
+ "Today kinda sux! But I'll get by, lol" # mixed sentiment example with slang and constrastive conjunction "but"
+ ]
+ paragraph = "It was one of the worst movies I've seen, despite good reviews. \
+ Unbelievably bad acting!! Poor direction. VERY poor production. \
+ The movie was bad. Very bad movie. VERY bad movie. VERY BAD movie. VERY BAD movie!"
+
+ from nltk import tokenize
+ lines_list = tokenize.sent_tokenize(paragraph)
+ sentences.extend(lines_list)
+
+ tricky_sentences = [
+ "Most automated sentiment analysis tools are shit.",
+ "VADER sentiment analysis is the shit.",
+ "Sentiment analysis has never been good.",
+ "Sentiment analysis with VADER has never been this good.",
+ "Warren Beatty has never been so entertaining.",
+ "I won't say that the movie is astounding and I wouldn't claim that the movie is too banal either.",
+ "I like to hate Michael Bay films, but I couldn't fault this one",
+ "It's one thing to watch an Uwe Boll film, but another thing entirely to pay for it",
+ "The movie was too good",
+ "This movie was actually neither that funny, nor super witty.",
+ "This movie doesn't care about cleverness, wit or any other kind of intelligent humor.",
+ "Those who find ugly meanings in beautiful things are corrupt without being charming.",
+ "There are slow and repetitive parts, BUT it has just enough spice to keep it interesting.",
+ "The script is not fantastic, but the acting is decent and the cinematography is EXCELLENT!",
+ "Roger Dodger is one of the most compelling variations on this theme.",
+ "Roger Dodger is one of the least compelling variations on this theme.",
+ "Roger Dodger is at least compelling as a variation on the theme.",
+ "they fall in love with the product",
+ "but then it breaks",
+ "usually around the time the 90 day warranty expires",
+ "the twin towers collapsed today",
+ "However, Mr. Carter solemnly argues, his client carried out the kidnapping under orders and in the ''least offensive way possible.''"
+ ]
+ sentences.extend(tricky_sentences)
+ for sentence in sentences:
+ print sentence,
+ ss = sentiment(sentence)
+ print "\t" + str(ss)
+
+ print "\n\n Done!"
diff --git a/vaderSentiment/vader_sentiment_lexicon.txt b/vaderSentiment/vader_sentiment_lexicon.txt
new file mode 100644
index 0000000..7ce7b20
--- /dev/null
+++ b/vaderSentiment/vader_sentiment_lexicon.txt
@@ -0,0 +1,7517 @@
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+]-: -2.1 0.53852 [-2, -3, -3, -2, -2, -2, -1, -2, -2, -2]
+]: -1.6 0.66332 [-1, -2, -1, -2, -3, -2, -1, -1, -1, -2]
+]:< -2.5 0.80623 [-2, -2, -2, -3, -4, -2, -2, -2, -2, -4]
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+challenging 0.6 0.91652 [0, 0, 0, 1, 1, -1, 0, 2, 2, 1]
+challengingly -0.6 1.68523 [0, -1, -2, 1, -3, 2, -2, -1, 2, -2]
+champ 2.1 0.83066 [2, 2, 2, 3, 2, 3, 2, 0, 3, 2]
+champac -0.2 0.6 [0, 0, -2, 0, 0, 0, 0, 0, 0, 0]
+champagne 1.2 1.07703 [1, 2, 2, 3, 0, 2, 0, 0, 2, 0]
+champagnes 0.5 0.92195 [0, 0, 0, 0, 0, 1, 1, 3, 0, 0]
+champaign 0.2 0.6 [0, 0, 0, 0, 2, 0, 0, 0, 0, 0]
+champaigns 0.5 0.67082 [1, 0, 0, 0, 0, 0, 0, 1, 2, 1]
+champaks -0.2 0.6 [0, 0, 0, 0, 0, 0, -2, 0, 0, 0]
+champed 1.0 0.63246 [1, 1, 2, 1, 1, 2, 1, 0, 0, 1]
+champer -0.1 0.53852 [0, -1, 1, 0, 0, 0, 0, -1, 0, 0]
+champers 0.5 0.67082 [1, 0, 0, 0, 0, 0, 0, 1, 1, 2]
+champerties -0.1 0.83066 [0, -1, 1, 1, 0, 0, 0, 0, -2, 0]
+champertous 0.3 0.78102 [0, 0, 0, 1, -1, 2, 1, 0, 0, 0]
+champerty -0.2 1.32665 [-2, -1, 0, -1, 0, 0, 0, -2, 2, 2]
+champignon 0.4 0.8 [0, 0, 0, 0, 0, 2, 0, 2, 0, 0]
+champignons 0.2 0.6 [0, 2, 0, 0, 0, 0, 0, 0, 0, 0]
+champing 0.7 1.34536 [0, 2, 0, 3, 1, 1, 2, 0, -2, 0]
+champion 2.9 0.83066 [3, 2, 3, 4, 4, 3, 2, 2, 4, 2]
+championed 1.2 1.53623 [2, 1, 3, 1, 1, -3, 2, 2, 1, 2]
+championing 1.8 0.9798 [1, 3, 2, 0, 3, 1, 2, 2, 1, 3]
+champions 2.4 1.42829 [4, 0, 0, 3, 1, 3, 4, 3, 3, 3]
+championship 1.9 1.04403 [3, 1, 1, 3, 2, 1, 3, 3, 0, 2]
+championships 2.2 0.74833 [2, 2, 1, 2, 3, 2, 4, 2, 2, 2]
+champs 1.8 0.4 [2, 2, 2, 2, 1, 2, 1, 2, 2, 2]
+champy 1.0 1.0 [3, 0, 0, 0, 0, 2, 1, 2, 1, 1]
+chance 1.0 0.7746 [1, 1, 0, 0, 0, 2, 1, 2, 1, 2]
+chances 0.8 0.4 [0, 1, 1, 0, 1, 1, 1, 1, 1, 1]
+chaos -2.7 0.9 [-2, -2, -3, -1, -4, -3, -3, -2, -3, -4]
+chaotic -2.2 1.4 [-3, -2, -1, -2, -3, 1, -2, -2, -4, -4]
+charged -0.8 0.87178 [-1, -2, -2, -1, -1, 0, -1, 1, 0, -1]
+charges -1.1 0.7 [-2, -2, -2, -1, -1, 0, -1, -1, 0, -1]
+charitable 1.7 0.64031 [1, 2, 1, 2, 2, 1, 2, 1, 3, 2]
+charitableness 1.9 0.9434 [3, 1, 1, 3, 1, 3, 3, 2, 1, 1]
+charitablenesses 1.6 1.74356 [2, 2, 3, 4, 1, -1, -2, 3, 2, 2]
+charitably 1.4 0.66332 [1, 2, 1, 2, 2, 1, 0, 1, 2, 2]
+charities 2.2 0.6 [3, 3, 2, 2, 1, 2, 2, 3, 2, 2]
+charity 1.8 0.87178 [1, 3, 2, 2, 2, 1, 2, 0, 2, 3]
+charm 1.7 0.78102 [3, 1, 1, 3, 2, 2, 1, 1, 1, 2]
+charmed 2.0 0.63246 [3, 1, 2, 2, 2, 3, 1, 2, 2, 2]
+charmer 1.9 0.53852 [3, 2, 2, 2, 2, 2, 1, 1, 2, 2]
+charmers 2.1 0.83066 [2, 1, 2, 2, 4, 3, 2, 1, 2, 2]
+charmeuse 0.3 0.78102 [0, 0, 0, 1, 0, 2, 1, 0, -1, 0]
+charmeuses 0.4 0.66332 [0, 0, 1, 0, 1, 0, 0, 0, 0, 2]
+charming 2.8 0.4 [3, 3, 3, 3, 3, 3, 2, 3, 2, 3]
+charminger 1.5 0.67082 [2, 3, 1, 2, 1, 1, 2, 1, 1, 1]
+charmingest 2.4 0.66332 [2, 3, 3, 1, 3, 2, 3, 3, 2, 2]
+charmingly 2.2 0.87178 [2, 2, 2, 1, 2, 2, 3, 3, 4, 1]
+charmless -1.8 0.87178 [-3, -1, -3, -1, -1, -1, -2, -1, -3, -2]
+charms 1.9 0.7 [1, 2, 3, 2, 1, 2, 3, 1, 2, 2]
+chastise -2.5 0.92195 [-4, -3, -2, -1, -4, -3, -2, -2, -2, -2]
+chastised -2.2 1.16619 [-2, -3, -2, -4, -1, -1, -3, 0, -3, -3]
+chastises -1.7 1.61555 [-3, -3, -3, -1, 1, -2, 1, -1, -2, -4]
+chastising -1.7 0.78102 [-2, -3, -2, -2, -2, 0, -1, -1, -2, -2]
+cheat -2.0 0.7746 [-2, -3, -3, -2, -2, -1, -1, -1, -2, -3]
+cheated -2.3 0.64031 [-2, -4, -2, -2, -2, -2, -3, -2, -2, -2]
+cheater -2.5 0.67082 [-2, -4, -2, -3, -2, -2, -3, -2, -3, -2]
+cheaters -1.9 0.83066 [-2, -2, -2, -1, -1, -4, -2, -1, -2, -2]
+cheating -2.6 0.91652 [-2, -3, -3, -2, -4, -4, -3, -2, -1, -2]
+cheats -1.8 0.6 [-3, -1, -2, -1, -2, -1, -2, -2, -2, -2]
+cheer 2.3 0.64031 [2, 1, 2, 2, 2, 3, 3, 3, 2, 3]
+cheered 2.3 0.78102 [2, 3, 3, 4, 2, 1, 2, 2, 2, 2]
+cheerer 1.7 0.45826 [1, 2, 2, 2, 1, 1, 2, 2, 2, 2]
+cheerers 1.8 0.87178 [2, 2, 3, 2, 1, 2, 0, 1, 3, 2]
+cheerful 2.5 0.67082 [3, 2, 3, 2, 2, 2, 4, 2, 3, 2]
+cheerfuller 1.9 0.83066 [3, 3, 2, 3, 2, 1, 1, 2, 1, 1]
+cheerfullest 3.2 0.87178 [4, 4, 4, 4, 3, 2, 2, 3, 2, 4]
+cheerfully 2.1 0.83066 [3, 2, 2, 2, 1, 3, 1, 3, 1, 3]
+cheerfulness 2.1 0.9434 [3, 2, 1, 2, 3, 4, 1, 2, 1, 2]
+cheerier 2.6 0.4899 [2, 2, 3, 3, 2, 3, 3, 2, 3, 3]
+cheeriest 2.2 0.6 [3, 2, 3, 1, 2, 2, 3, 2, 2, 2]
+cheerily 2.5 0.67082 [3, 3, 2, 3, 2, 4, 2, 2, 2, 2]
+cheeriness 2.5 0.67082 [3, 2, 4, 2, 3, 2, 3, 2, 2, 2]
+cheering 2.3 0.64031 [3, 3, 2, 1, 3, 2, 2, 2, 3, 2]
+cheerio 1.2 0.6 [2, 1, 1, 1, 2, 1, 1, 1, 2, 0]
+cheerlead 1.7 0.78102 [1, 2, 0, 2, 2, 2, 2, 3, 1, 2]
+cheerleader 0.9 0.9434 [1, 1, 0, 2, 1, 0, 0, 1, 0, 3]
+cheerleaders 1.2 1.07703 [2, 0, 0, 1, 1, 0, 3, 3, 1, 1]
+cheerleading 1.2 1.07703 [2, 2, 0, 0, 1, 0, 3, 2, 0, 2]
+cheerleads 1.2 1.07703 [2, 3, 0, 3, 1, 0, 0, 1, 1, 1]
+cheerled 1.5 1.11803 [0, 2, 1, 4, 2, 2, 2, 1, 1, 0]
+cheerless -1.7 1.1 [-2, -3, -2, -2, -3, -2, -1, -1, 1, -2]
+cheerlessly -0.8 1.98997 [-2, 4, -1, -2, -1, -2, -2, -2, 2, -2]
+cheerlessness -1.7 1.48661 [-2, -1, -2, -3, -2, -4, -1, 2, -2, -2]
+cheerly 2.4 0.66332 [2, 2, 3, 2, 2, 3, 4, 2, 2, 2]
+cheers 2.1 1.3 [2, 2, 1, 3, 2, 3, 3, 4, -1, 2]
+cheery 2.6 0.66332 [3, 2, 2, 3, 2, 3, 4, 2, 3, 2]
+cherish 1.6 1.49666 [0, 3, 3, 3, 2, 2, 2, 1, -2, 2]
+cherishable 2.0 1.41421 [-2, 2, 2, 2, 3, 2, 3, 3, 2, 3]
+cherished 2.3 0.64031 [3, 2, 2, 3, 2, 2, 1, 3, 2, 3]
+cherisher 2.2 0.4 [2, 2, 3, 2, 2, 2, 2, 3, 2, 2]
+cherishers 1.9 0.7 [3, 3, 2, 2, 1, 1, 2, 2, 2, 1]
+cherishes 2.2 0.74833 [2, 2, 3, 2, 2, 2, 2, 4, 2, 1]
+cherishing 2.0 0.7746 [3, 3, 2, 2, 1, 2, 1, 3, 2, 1]
+chic 1.1 1.3 [1, 2, 2, -2, 2, 0, 1, 1, 3, 1]
+childish -1.2 0.74833 [-1, -1, -2, -3, -1, 0, -1, -1, -1, -1]
+chilling -0.1 1.92094 [3, -2, 0, 1, -2, -2, -1, -2, 1, 3]
+choke -2.5 0.92195 [-1, -2, -3, -3, -2, -4, -2, -4, -2, -2]
+choked -2.1 1.3 [-4, -3, 0, -2, -1, -3, -3, -2, 0, -3]
+chokes -2.0 0.89443 [-4, -3, -1, -2, -1, -2, -2, -2, -1, -2]
+choking -2.0 1.26491 [-4, -2, -2, -3, -2, -2, -3, -1, 1, -2]
+chuckle 1.7 0.45826 [2, 1, 2, 2, 2, 2, 1, 1, 2, 2]
+chuckled 1.2 0.9798 [2, 2, 1, 1, 2, 0, 1, 2, -1, 2]
+chucklehead -1.9 0.53852 [-2, -2, -1, -3, -2, -2, -2, -2, -1, -2]
+chuckleheaded -1.3 1.84662 [-3, -4, -2, 0, 3, -1, -2, 0, -2, -2]
+chuckleheads -1.1 0.9434 [-1, -2, 0, -1, -1, -3, 0, 0, -2, -1]
+chuckler 0.8 1.07703 [2, 1, -1, 0, 2, 1, 1, 2, -1, 1]
+chucklers 1.2 0.87178 [1, 1, 2, 3, 1, 0, 1, 0, 2, 1]
+chuckles 1.1 1.13578 [2, 2, -1, 1, 2, 1, 1, 2, -1, 2]
+chucklesome 1.1 0.53852 [1, 1, 2, 1, 1, 1, 0, 2, 1, 1]
+chuckling 1.4 0.4899 [1, 2, 1, 2, 1, 1, 2, 2, 1, 1]
+chucklingly 1.2 0.4 [1, 1, 1, 1, 2, 1, 1, 1, 2, 1]
+clarifies 0.9 1.13578 [-2, 1, 0, 2, 1, 2, 2, 1, 1, 1]
+clarity 1.7 0.78102 [2, 1, 2, 3, 3, 1, 1, 2, 1, 1]
+classy 1.9 0.53852 [1, 2, 2, 1, 3, 2, 2, 2, 2, 2]
+clean 1.7 0.78102 [3, 1, 2, 1, 2, 1, 3, 2, 1, 1]
+cleaner 0.7 0.78102 [1, 0, 1, 0, 0, 0, 2, 1, 2, 0]
+clear 1.6 1.2 [2, 1, 1, 0, 3, 1, 2, 4, 2, 0]
+cleared 0.4 0.4899 [0, 0, 1, 1, 0, 0, 0, 0, 1, 1]
+clearly 1.7 0.78102 [2, 2, 2, 2, 1, 2, 0, 2, 1, 3]
+clears 0.3 0.78102 [0, 1, 0, 0, 0, -1, 1, 2, 0, 0]
+clever 2.0 0.7746 [2, 1, 2, 2, 2, 1, 3, 1, 3, 3]
+cleverer 2.0 0.44721 [2, 2, 2, 3, 2, 2, 1, 2, 2, 2]
+cleverest 2.6 0.91652 [4, 3, 2, 2, 4, 3, 2, 1, 2, 3]
+cleverish 1.0 1.18322 [1, 1, 1, 1, 1, 1, 2, 1, -2, 3]
+cleverly 2.3 0.45826 [2, 3, 2, 2, 2, 3, 2, 2, 3, 2]
+cleverness 2.3 0.9 [2, 4, 2, 2, 1, 3, 3, 3, 1, 2]
+clevernesses 1.4 0.66332 [1, 1, 1, 2, 2, 2, 2, 0, 2, 1]
+clouded -0.2 0.9798 [-2, 0, 2, 0, 0, -1, 0, -1, 0, 0]
+clueless -1.5 0.5 [-1, -2, -1, -2, -2, -1, -1, -1, -2, -2]
+cock -0.6 1.49666 [0, 0, -4, 0, 0, 1, 0, -3, 0, 0]
+cocksucker -3.1 0.83066 [-3, -4, -2, -2, -4, -4, -4, -2, -3, -3]
+cocksuckers -2.6 1.42829 [-4, -3, -4, -3, -3, 1, -3, -1, -3, -3]
+cocky -0.5 1.0247 [2, 0, -1, 0, -1, -2, 0, -1, -1, -1]
+coerced -1.5 0.67082 [-1, -2, -2, -2, -1, 0, -1, -2, -2, -2]
+collapse -2.2 0.87178 [-3, -1, -2, -4, -3, -2, -2, -2, -1, -2]
+collapsed -1.1 1.64012 [-1, -2, -2, -1, -2, -2, 2, 2, -3, -2]
+collapses -1.2 0.87178 [-2, -1, -2, 0, -2, 0, 0, -2, -1, -2]
+collapsing -1.2 0.6 [-1, -1, -2, -2, -2, -1, 0, -1, -1, -1]
+collide -0.3 1.61555 [-3, 0, -1, 3, 0, -1, -1, 2, -1, -1]
+collides -1.1 1.22066 [-2, -2, -1, -1, 0, -2, 2, -2, -1, -2]
+colliding -0.5 1.36015 [-2, 2, -1, -1, 0, -1, -2, 2, -1, -1]
+collision -1.5 0.67082 [-1, -1, -2, -1, -2, -1, -1, -3, -2, -1]
+collisions -1.1 0.7 [0, -2, -1, 0, -1, -1, -2, -2, -1, -1]
+colluding -1.2 1.32665 [-1, -1, -2, -2, 0, -3, 2, -2, -1, -2]
+combat -1.4 1.0198 [0, -2, 0, -2, -2, -2, -1, -3, 0, -2]
+combats -0.8 1.16619 [0, -2, -3, -1, 0, 0, 0, -1, 1, -2]
+comedian 1.6 1.0198 [1, 0, 2, 3, 2, 0, 3, 1, 2, 2]
+comedians 1.2 1.16619 [0, 0, 0, 2, 3, 1, 3, 2, 0, 1]
+comedic 1.7 0.64031 [2, 1, 1, 3, 1, 2, 2, 2, 1, 2]
+comedically 2.1 0.7 [3, 2, 2, 1, 2, 3, 3, 2, 1, 2]
+comedienne 0.6 0.66332 [0, 2, 1, 0, 1, 1, 0, 1, 0, 0]
+comediennes 1.6 1.11355 [2, 1, 3, 0, 0, 3, 1, 1, 2, 3]
+comedies 1.7 1.00499 [0, 2, 1, 3, 3, 3, 1, 1, 2, 1]
+comedo 0.3 0.9 [0, 0, 0, 0, -1, 0, 2, 0, 2, 0]
+comedones -0.8 0.9798 [0, 0, 0, -1, 0, -3, 0, -1, -1, -2]
+comedown -0.8 1.07703 [-1, -1, -1, 0, -2, -1, 2, -1, -2, -1]
+comedowns -0.9 0.53852 [-1, -1, -1, -1, 0, -2, 0, -1, -1, -1]
+comedy 1.5 0.67082 [1, 1, 2, 1, 3, 2, 1, 1, 2, 1]
+comfort 1.5 0.67082 [1, 3, 1, 2, 1, 1, 2, 1, 1, 2]
+comfortable 2.3 0.64031 [1, 2, 3, 2, 2, 3, 3, 3, 2, 2]
+comfortableness 1.3 1.48661 [4, 2, 2, 3, 1, 1, 1, -1, -1, 1]
+comfortably 1.8 0.74833 [1, 2, 2, 1, 3, 3, 1, 2, 1, 2]
+comforted 1.8 0.6 [2, 2, 2, 0, 2, 2, 2, 2, 2, 2]
+comforter 1.9 0.53852 [2, 3, 2, 2, 2, 1, 2, 2, 2, 1]
+comforters 1.2 0.6 [2, 1, 0, 2, 1, 1, 2, 1, 1, 1]
+comforting 1.7 0.64031 [1, 2, 1, 1, 2, 2, 2, 3, 2, 1]
+comfortingly 1.7 0.45826 [1, 2, 1, 2, 2, 1, 2, 2, 2, 2]
+comfortless -1.8 0.6 [-3, -2, -1, -2, -1, -2, -1, -2, -2, -2]
+comforts 2.1 0.7 [3, 1, 3, 1, 2, 2, 3, 2, 2, 2]
+commend 1.9 0.7 [1, 2, 2, 1, 2, 1, 2, 3, 2, 3]
+commended 1.9 0.9434 [1, 3, 2, 3, 2, 2, 0, 1, 3, 2]
+commit 1.2 0.87178 [1, 0, 2, 2, 0, 0, 2, 2, 1, 2]
+commitment 1.6 0.91652 [3, 1, 2, 0, 3, 1, 2, 1, 2, 1]
+commitments 0.5 0.92195 [1, 3, 0, 0, 0, 0, 0, 0, 0, 1]
+commits 0.1 1.13578 [0, -1, 0, 2, 1, -1, 1, 1, -2, 0]
+committed 1.1 0.7 [0, 1, 1, 2, 0, 2, 1, 1, 2, 1]
+committing 0.3 1.18743 [0, 1, 0, 3, 0, -2, 1, 0, 0, 0]
+compassion 2.0 0.7746 [3, 2, 1, 1, 2, 1, 3, 2, 2, 3]
+compassionate 2.2 0.87178 [0, 3, 3, 2, 2, 3, 3, 2, 2, 2]
+compassionated 1.6 0.66332 [3, 1, 2, 2, 1, 2, 2, 1, 1, 1]
+compassionately 1.7 1.41774 [1, 3, 3, 2, 1, 2, 3, 2, -2, 2]
+compassionateness 0.9 1.37477 [-3, 2, 2, 1, 1, 1, 2, 1, 1, 1]
+compassionates 1.6 0.4899 [2, 1, 2, 2, 1, 2, 2, 1, 1, 2]
+compassionating 1.6 0.91652 [3, 0, 2, 1, 3, 1, 2, 1, 2, 1]
+compassionless -2.6 0.8 [-3, -2, -2, -3, -4, -3, -1, -2, -3, -3]
+compelled 0.2 1.07703 [-1, 0, 0, 0, 1, 2, -1, -1, 2, 0]
+compelling 0.9 0.94339 [1, 1, 1, 0, 1, 2, 2, -1, 2, 0]
+competent 1.3 0.78102 [1, 3, 1, 1, 2, 1, 1, 0, 2, 1]
+competitive 0.7 0.9 [0, 2, 0, 2, 0, 1, 0, 0, 0, 2]
+complacent -0.3 1.1 [2, -1, -1, 1, -1, -1, -1, 1, -1, -1]
+complain -1.5 0.67082 [-1, -1, -1, -2, -1, -2, -3, -2, -1, -1]
+complainant -0.7 0.78102 [0, 0, -1, 0, 0, -2, 0, -1, -2, -1]
+complainants -1.1 1.3 [-2, -1, 0, -2, -3, -2, -1, 1, -2, 1]
+complained -1.7 0.64031 [-1, -3, -2, -2, -1, -1, -2, -2, -1, -2]
+complainer -1.8 0.4 [-2, -2, -2, -2, -1, -2, -2, -2, -1, -2]
+complainers -1.3 1.00499 [-2, -1, -1, -2, -3, 1, -1, -1, -2, -1]
+complaining -0.8 1.249 [-2, -1, -1, -1, -2, -1, -1, 2, 1, -2]
+complainingly -1.7 0.64031 [-1, -2, -1, -2, -1, -2, -1, -2, -3, -2]
+complains -1.6 0.66332 [-1, -2, -1, -2, -2, -3, -1, -1, -1, -2]
+complaint -1.2 1.249 [-1, -1, -2, -2, -1, -3, -1, -1, 2, -2]
+complaints -1.7 0.45826 [-2, -2, -2, -1, -2, -2, -2, -1, -1, -2]
+compliment 2.1 0.7 [2, 2, 3, 1, 2, 3, 3, 1, 2, 2]
+complimentarily 1.7 0.45826 [2, 2, 2, 2, 1, 1, 2, 1, 2, 2]
+complimentary 1.9 0.7 [1, 2, 2, 1, 2, 1, 2, 3, 3, 2]
+complimented 1.8 1.4 [3, 2, 2, 2, 3, 2, -2, 3, 1, 2]
+complimenting 2.3 0.64031 [2, 2, 1, 3, 3, 2, 2, 3, 3, 2]
+compliments 1.7 0.45826 [2, 1, 2, 2, 1, 2, 2, 1, 2, 2]
+comprehensive 1.0 0.63246 [1, 1, 1, 0, 2, 2, 1, 0, 1, 1]
+conciliate 1.0 1.18322 [2, 1, 1, 0, 2, 2, -2, 2, 1, 1]
+conciliated 1.1 0.9434 [1, 3, 0, 0, 2, 0, 2, 1, 1, 1]
+conciliates 1.1 0.9434 [1, 3, 0, 0, 2, 0, 2, 1, 1, 1]
+conciliating 1.3 0.78102 [2, 2, 1, 1, 2, 0, 2, 1, 2, 0]
+condemn -1.6 1.0198 [-2, -2, -1, -2, -2, 1, -2, -3, -1, -2]
+condemnation -2.8 0.9798 [-3, -4, -2, -4, -2, -4, -2, -1, -3, -3]
+condemned -1.9 1.81384 [2, -2, -2, -3, -2, -3, -3, -4, 1, -3]
+condemns -2.3 0.64031 [-2, -2, -3, -3, -3, -2, -2, -3, -1, -2]
+confidence 2.3 0.64031 [3, 3, 3, 3, 1, 2, 2, 2, 2, 2]
+confident 2.2 0.87178 [1, 3, 3, 2, 3, 1, 3, 2, 1, 3]
+confidently 2.1 0.53852 [2, 2, 3, 1, 2, 2, 2, 2, 3, 2]
+conflict -1.3 0.45826 [-2, -2, -1, -2, -1, -1, -1, -1, -1, -1]
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+relieving 1.5 1.0247 [2, 2, 1, 2, 3, -1, 2, 1, 1, 2]
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+ridiculousness -1.1 1.51327 [-1, -1, -1, -2, -1, 3, -3, -2, -1, -2]
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+rigged -1.5 1.0247 [-2, -3, -2, -1, -1, -2, 1, -1, -2, -2]
+rigid -0.5 0.67082 [-2, -1, 0, 0, 0, 0, 0, -1, -1, 0]
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+wisenheimers -1.4 0.91652 [-3, -3, -2, -1, -1, -1, 0, -1, -1, -1]
+wisents 0.4 0.91652 [0, 0, 0, 0, 1, 0, 0, 0, 3, 0]
+wiser 1.2 0.87178 [1, 3, 0, 1, 1, 2, 0, 2, 1, 1]
+wises 1.3 1.48661 [3, 3, 2, -2, 2, 0, 0, 2, 2, 1]
+wisest 2.1 1.51327 [1, 3, 3, 3, 3, 2, 2, 3, -2, 3]
+wisewomen 1.3 0.9 [2, 2, 0, 0, 2, 0, 1, 2, 2, 2]
+wish 1.7 1.1 [2, 1, 1, 0, 2, 1, 3, 2, 4, 1]
+wishes 0.6 0.8 [0, 0, 1, 0, 1, 0, 2, 0, 2, 0]
+wishing 0.9 0.7 [2, 1, 1, 0, 0, 0, 1, 1, 2, 1]
+witch -1.5 0.80623 [-1, -2, -2, -1, -3, 0, -2, -2, -1, -1]
+withdrawal 0.1 1.57797 [1, -1, 0, -2, -2, 2, -1, 1, 0, 3]
+woe -1.8 0.6 [-3, -2, -2, -2, -1, -1, -2, -1, -2, -2]
+woebegone -2.6 0.66332 [-3, -2, -3, -2, -2, -4, -3, -2, -2, -3]
+woebegoneness -1.1 1.37477 [-3, 0, -1, 1, -1, -4, 0, -1, -1, -1]
+woeful -1.9 0.83066 [-1, -2, -2, -1, -3, -3, -1, -2, -1, -3]
+woefully -1.7 1.48661 [-1, -3, -2, 1, -3, -3, -2, -2, 1, -3]
+woefulness -2.1 0.7 [-3, -2, -2, -1, -2, -3, -3, -1, -2, -2]
+woes -1.9 0.83066 [-2, -2, -2, -1, -2, -3, -3, 0, -2, -2]
+woesome -1.2 1.6 [-2, -3, -2, -1, 0, 3, -2, -2, -1, -2]
+won 2.7 0.9 [3, 4, 2, 2, 2, 4, 4, 2, 2, 2]
+wonderful 2.7 0.78102 [2, 3, 3, 2, 4, 2, 2, 3, 4, 2]
+wonderfully 2.9 0.83066 [1, 3, 3, 4, 3, 2, 3, 3, 4, 3]
+wonderfulness 2.9 0.53852 [3, 2, 3, 3, 3, 3, 3, 2, 4, 3]
+woo 2.1 1.37477 [4, 2, 1, 3, 2, 2, -1, 2, 2, 4]
+woohoo 2.3 1.1 [3, 3, 1, 4, 4, 2, 1, 1, 2, 2]
+woot 1.8 1.07703 [2, 0, 2, 2, 2, 2, 0, 4, 2, 2]
+worn -1.2 0.4 [-1, -1, -1, -1, -1, -1, -2, -1, -2, -1]
+worried -1.2 0.74833 [-1, -1, -1, -1, -1, -2, -3, 0, -1, -1]
+worriedly -2.0 0.44721 [-2, -2, -3, -2, -2, -2, -2, -1, -2, -2]
+worrier -1.8 0.6 [-2, -2, -1, -2, -1, -3, -2, -2, -1, -2]
+worriers -1.7 0.45826 [-2, -1, -2, -2, -2, -2, -1, -2, -1, -2]
+worries -1.8 0.6 [-2, -2, -1, -2, -1, -2, -2, -3, -1, -2]
+worriment -1.5 0.67082 [-1, -2, -1, -1, -1, -2, -1, -3, -1, -2]
+worriments -1.9 0.7 [-2, -1, -2, -3, -1, -2, -3, -1, -2, -2]
+worrisome -1.7 0.64031 [-1, -1, -1, -2, -1, -2, -3, -2, -2, -2]
+worrisomely -2.0 0.63246 [-1, -2, -1, -2, -2, -3, -2, -2, -3, -2]
+worrisomeness -1.9 0.53852 [-2, -2, -3, -1, -2, -2, -2, -1, -2, -2]
+worrit -2.1 0.53852 [-2, -2, -1, -2, -2, -3, -3, -2, -2, -2]
+worrits -1.2 0.9798 [-1, -2, -2, -1, 0, 0, -1, -3, 0, -2]
+worry -1.9 0.7 [-2, -3, -1, -3, -1, -2, -1, -2, -2, -2]
+worrying -1.4 0.66332 [-2, -1, -2, -2, -1, 0, -1, -1, -2, -2]
+worrywart -1.8 0.9798 [-2, -2, -2, -1, -1, -1, -1, -3, -1, -4]
+worrywarts -1.5 0.5 [-2, -1, -2, -2, -2, -1, -1, -1, -2, -1]
+worse -2.1 0.83066 [-2, -2, -1, -3, -4, -2, -1, -2, -2, -2]
+worsen -2.3 0.78102 [-4, -3, -1, -2, -2, -2, -2, -3, -2, -2]
+worsened -1.9 1.22066 [-2, -2, -2, -1, -2, -2, -4, 1, -3, -2]
+worsening -2.0 0.44721 [-2, -3, -2, -2, -2, -2, -1, -2, -2, -2]
+worsens -2.1 0.53852 [-2, -2, -2, -2, -1, -2, -2, -3, -3, -2]
+worser -2.0 0.89443 [-2, -2, -4, -1, -2, -2, -2, -3, -1, -1]
+worship 1.2 1.07703 [1, 0, 0, 1, 3, 0, 2, 3, 1, 1]
+worshiped 2.4 1.0198 [1, 2, 4, 3, 4, 1, 2, 3, 2, 2]
+worshiper 1.0 1.0 [0, 0, 2, 3, 0, 2, 1, 1, 1, 0]
+worshipers 0.9 0.83066 [0, 0, 0, 2, 1, 1, 1, 2, 2, 0]
+worshipful 0.7 1.00499 [1, -1, 3, 1, 1, 1, 0, 0, 0, 1]
+worshipfully 1.1 1.3 [0, 0, 0, 1, 3, 0, 3, 3, 1, 0]
+worshipfulness 1.6 0.8 [3, 1, 2, 2, 1, 1, 3, 1, 1, 1]
+worshiping 1.0 1.18322 [0, 3, 0, 3, 0, 1, 1, 2, 0, 0]
+worshipless -0.6 1.0198 [0, -1, -3, -1, -1, -1, 0, 0, 0, 1]
+worshipped 2.7 0.78102 [3, 2, 3, 3, 1, 4, 2, 3, 3, 3]
+worshipper 0.6 0.66332 [1, 1, 0, 0, 1, 0, 0, 2, 1, 0]
+worshippers 0.8 0.87178 [0, 1, 0, 0, 3, 1, 1, 1, 0, 1]
+worshipping 1.6 1.28062 [1, 3, 3, 3, 0, 3, 1, 0, 2, 0]
+worships 1.4 1.11355 [2, 0, 1, 3, 2, 1, 0, 3, 2, 0]
+worst -3.1 1.04403 [-4, -4, -3, -1, -3, -4, -2, -2, -4, -4]
+worth 0.9 0.9434 [0, 0, 1, 1, 2, 1, 1, 3, 0, 0]
+worthless -1.9 1.13578 [-3, -1, -3, -4, -1, -3, -1, -1, -1, -1]
+worthwhile 1.4 0.4899 [1, 1, 1, 2, 1, 1, 2, 1, 2, 2]
+worthy 1.9 0.53852 [2, 2, 2, 1, 1, 2, 2, 2, 3, 2]
+wow 2.8 0.9798 [2, 3, 2, 4, 4, 3, 3, 2, 1, 4]
+wowed 2.6 0.8 [3, 3, 4, 3, 2, 1, 3, 3, 2, 2]
+wowing 2.5 0.67082 [2, 2, 3, 3, 2, 3, 4, 2, 2, 2]
+wows 2.0 1.61245 [2, 3, 3, 3, 2, 1, -2, 1, 4, 3]
+wowser -1.1 2.02237 [-3, 3, 0, 2, -2, -1, -3, -2, -2, -3]
+wowsers 1.0 2.14476 [0, -2, 4, 2, 3, 0, 1, 2, -3, 3]
+wrathful -2.7 0.64031 [-3, -2, -2, -3, -3, -2, -4, -2, -3, -3]
+wreck -1.9 0.7 [-1, -2, -3, -3, -2, -2, -2, -1, -1, -2]
+wrong -2.1 1.04403 [-2, -2, -2, -2, -4, -4, -1, -1, -1, -2]
+wronged -1.9 0.53852 [-2, -2, -2, -2, -2, -1, -3, -2, -2, -1]
+x-d 2.6 0.91652 [2, 3, 3, 4, 1, 2, 3, 4, 2, 2]
+x-p 1.7 0.45826 [2, 2, 1, 2, 2, 1, 1, 2, 2, 2]
+xd 2.8 0.87178 [3, 3, 4, 2, 3, 3, 1, 2, 4, 3]
+xp 1.6 0.4899 [2, 2, 2, 1, 1, 1, 2, 2, 1, 2]
+yay 2.4 1.0198 [1, 3, 3, 2, 2, 1, 4, 4, 2, 2]
+yeah 1.2 0.6 [1, 1, 1, 2, 1, 1, 0, 2, 1, 2]
+yearning 0.5 1.0247 [0, 1, 0, 1, 0, 3, 0, 1, -1, 0]
+yeees 1.7 1.00499 [1, 3, 1, 2, 1, 1, 4, 2, 1, 1]
+yep 1.2 0.4 [1, 1, 1, 1, 1, 1, 2, 2, 1, 1]
+yes 1.7 0.78102 [1, 2, 2, 1, 1, 1, 3, 3, 1, 2]
+youthful 1.3 0.45826 [1, 2, 1, 2, 1, 1, 1, 1, 2, 1]
+yucky -1.8 0.6 [-2, -1, -1, -2, -2, -1, -2, -2, -3, -2]
+yummy 2.4 1.0198 [1, 2, 4, 3, 2, 2, 3, 1, 4, 2]
+zealot -1.9 1.04403 [-2, -3, -1, -2, -1, -3, -4, -1, -1, -1]
+zealots -0.8 1.83303 [-1, -2, -1, -2, -2, 1, -2, 4, -1, -2]
+zealous 0.5 1.43178 [2, -1, 2, 1, 0, 0, 3, 0, -2, 0]
+{: 1.8 0.9798 [1, 3, 2, 2, 1, 1, 4, 2, 1, 1]
+|-0 -1.2 0.74833 [0, -2, -1, -1, -1, -1, -1, -1, -1, -3]
+|-: -0.8 0.74833 [-1, -2, 0, -1, 0, -2, -1, -1, 0, 0]
+|-:> -1.6 0.4899 [-1, -2, -2, -2, -2, -1, -1, -2, -2, -1]
+|-o -1.2 0.9798 [-1, 0, -1, -1, -1, -1, -1, -4, -1, -1]
+|: -0.5 1.68819 [2, -3, -1, 0, -1, -1, -1, -2, -1, 3]
+|;-) 2.2 1.32665 [4, 1, 1, 1, 3, 2, 4, 1, 4, 1]
+|= -0.4 1.56205 [2, -2, -1, 0, -1, -1, -1, -2, -1, 3]
+|^: -1.1 0.7 [-2, 0, -1, -1, 0, -1, -1, -2, -2, -1]
+|o: -0.9 0.53852 [-1, 0, -1, -2, -1, 0, -1, -1, -1, -1]
+||-: -2.3 0.45826 [-2, -2, -2, -3, -3, -3, -2, -2, -2, -2]
+}: -2.1 0.83066 [-1, -1, -3, -2, -3, -2, -2, -1, -3, -3]
+}:( -2.0 0.63246 [-3, -1, -2, -1, -3, -2, -2, -2, -2, -2]
+}:) 0.4 1.42829 [1, 1, -2, 1, 2, -2, 1, -1, 2, 1]
+}:-( -2.1 0.7 [-2, -1, -2, -2, -2, -4, -2, -2, -2, -2]
+}:-) 0.3 1.61555 [1, 1, -2, 1, -1, -3, 2, 2, 1, 1]
\ No newline at end of file