nlp for sentiment analysis

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Springboot sentiment edify-@SpringBootApplication annotation Analysis

To undertake the previous text springboot sentiment edify [email protected] annotation analysis, this article will be based on the above @SpringBootApplication annotation to make a simple analysis @SpringBootApplicationThis annotation is one of the most concentrated annotations in Springboot and the most widely used annotation. The official also use this not

Springboot sentiment edify-JMX analysis

To undertake the former Wen springboot sentiment edify [email protected] annotation analysis, the recent project in contact with the use of JMX protocol framework, then on the basis of the previous article on how to integrate JMX Springboot Knowledge ReserveJmx:java Management Extension (Java Management application extension), this mechanism can easily manage and monitor running Java programs. Often us

Sentiment analysis-R vs Spark Machine learning Library test Classification comparison

Forest 40g Maximum entropy 40g Decision Tree 40g BAGGING 40g Svm 20% Experiment two (code file Sentiment_analyse. R):Data file: http:///sentiment/data/Classification using Bayes, MAXENT, SVM, Slda, BAGGING, RF, tree classifierThe results are as follows: Classifier Name Accuracy rate (R) Accuracy rate (spark) Bayesian

Challenges for sentiment analysis

1. Named Entity Recognition: what is actually mentioned by people. For example, Apple is an indispensable good thing in life. Is Apple a technology product or fruit? 2. Resolution of ing: solves the problem of reference to pronouns and noun phrases. For example, we had dinner after watching the movie. Does it mean that movie or dinner is uncomfortable? 3. syntax analysis: What is the subject and object in a sentence, and which of the following is th

An example of keras sentiment analysis

International-airline-passengers.csv is less, roughly as follows"Month","International airline passengers: monthly totals in thousands. Jan 49 ? Dec 60""1949-01",112"1949-02",118"1949-03",132"1949-04",129"1949-05",121"1949-06",135"1949-07",148"1949-08",148"1949-09",136"1949-10",119"1949-11",104"1949-12",118"1950-01",115"1950-02",126"1950-03",141"1950-04",135"1950-05",125"1950-06",149"1950-07",170"1950-08",170"1950-09",158"1950-10",133"1950-11",114"1950-12",140"1951-01",145"1951-02",150"1951-03"

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