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FullThrottle Labs
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I applied via Internshala and was interviewed before May 2022. There were 4 interview rounds.
BOW and Count Vectorizer are both techniques used for text representation in NLP.
BOW stands for Bag of Words and represents text as a collection of words without considering the order.
Count Vectorizer is a technique that counts the frequency of each word in a document and represents it as a vector.
BOW is a simpler technique and is used for tasks like sentiment analysis, while Count Vectorizer is used for more complex t...
NER process identifies and extracts named entities from text data.
NER stands for Named Entity Recognition.
It involves identifying and classifying entities such as people, organizations, locations, and dates.
NER can be performed using rule-based systems or machine learning algorithms.
Examples of NER applications include information extraction, sentiment analysis, and chatbots.
Popular NER tools include spaCy, NLTK, and S
There are various NER libraries available with different performances.
Stanford NER - high accuracy but slow processing
SpaCy - fast and accurate, supports multiple languages
NLTK - widely used, but lower accuracy compared to others
Flair - contextual embeddings for better accuracy
BERT - pre-trained models for NER tasks
CRF++ - Conditional Random Fields for NER
GATE - rule-based and machine learning-based NER
OpenNLP - Java-b
Was a half hour session. Was asked to dry run a code given, then basic leetcode esque questions like reverse a number, anagrams etc.
Assignment was to perform NER based on a resume given training data
posted on 15 Oct 2024
Basic Aptitude questions testing logic
posted on 14 May 2024
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