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Proceedings ArticleDOI

Analysis of Stock Market using Streaming data Framework

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TLDR
A stock market prediction model which is considers different parameters of a particular stock and shows that behavior of market can be predicted using machine learning techniques is designed.
Abstract
It has been proved that the decisions in stock market exchange may bring influence on the investors, financial institutions, banking sectors etc. The stock market is a highly composite system in addition often concealed with mystery, it is therefore, very difficult to analyze all the impacting factors before making a decision. In this research, we have tried to design a stock market prediction model which is considers different parameters of a particular stock. Analysis is performed after obtaining the stock scores. This analysis involves visualization of stock scores in the form of various plots and prediction of the scores using a time series model known as ARIMA (auto regressive moving average). The results shows that the time series model performed a descent prediction of the market scores with considerably high accuracy. Each factor was studied independently to find out its association with market performance. Furthermore the results suggests that behavior of market can be predicted using machine learning techniques.

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Citations
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Journal Article

Nowcasting the Financial Time Series with Streaming Data Analytics under Apache Spark

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Evaluating Task-Level CPU Efficiency for Distributed Stream Processing Systems

TL;DR: In this article , a task-level approach for measuring CPU efficiency in distributed stream processing systems (DSPSs) is presented, which enables developers to understand the efficiency of different streaming frameworks at a granular level and provides insights that were not previously possible.
References
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Journal ArticleDOI

Giving Content to Investor Sentiment: The Role of Media in the Stock Market

Paul C. Tetlock
- 01 Jun 2007 - 
TL;DR: The authors quantitatively measure the interactions between the media and the stock market using daily content from a popular Wall Street Journal column and find that high media pessimism predicts downward pressure on market prices followed by a reversion to fundamentals.
Journal ArticleDOI

Giving Content to Investor Sentiment: The Role of Media in the Stock Market

TL;DR: The authors quantitatively measure the nature of the media's interactions with the stock market using daily content from a popular Wall Street Journal column and find that high media pessimism predicts downward pressure on market prices followed by a reversion to fundamentals.
Journal ArticleDOI

New Avenues in Opinion Mining and Sentiment Analysis

TL;DR: The history, current use, and future of opinion mining and sentiment analysis are discussed, along with relevant techniques and tools.
Journal ArticleDOI

Sentiment analysis in multiple languages: Feature selection for opinion classification in Web forums

TL;DR: Stylistic features significantly enhanced performance across all testbeds while EWGA also outperformed other feature selection methods, indicating the utility of these features and techniques for document-level classification of sentiments.
Journal ArticleDOI

A Survey of Clustering Algorithms for Big Data: Taxonomy and Empirical Analysis

TL;DR: Concepts and algorithms related to clustering, a concise survey of existing (clustering) algorithms as well as a comparison, both from a theoretical and an empirical perspective are introduced.
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