Workshop: Introduction to Machine Learning for Text Analysis with Python
Wednesday, December 4, 2024 12pm to 1:30pm
About this Event
Please join us on December 4 at 12–1:30pm Boston / 9–10:30am Oakland / 5–6:30pm London, for “Introduction to Machine Learning for Text Analysis with Python.” Machine learning allows humans to create a model that can act as an extension of the creator’s mind and classify data based on predetermined categories. Manually tagging thousands of rows of data can often be cumbersome and time consuming. Forming a human-machine relationship to classify data can save researchers time and help catalyze data analysis and classification on projects that would otherwise take an untenable number of working hours.
This workshop will teach participants how to use Python for machine learning and text classification, creating a human-machine relationship to process and classify textual datasets. Learn how to use the Natural Language Toolkit (NLTK) to explore data. Use pandas, a Python library with extensive functionality to manipulate data, to clean and manipulate a dataframe (a table in pandas). Participants will also learn how to engineer textual features and build machine learning classification pipelines with SciKitLearn (a popular open source machine learning library). Examples of projects that can be undertaken using these methods include identifying a behavioral health component in police incident narratives, identifying hate speech on Facebook, and identifying wildlife trafficking posts on Twitter.
There will be an optional virtual pre-workshop “Introduction to Python” December 3 at 12–1pm Boston / 9–10am Oakland / 5–6pm London. The pre-workshop covers the Python programming language tasks required to successfully participate in the workshop. Learners who are unfamiliar with how to use loc functions and python string methods to manipulate data and create new columns should plan to attend the pre-workshop, and all are welcome to attend.
This event is free and open to the public, but registration is required. RSVP here.
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