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In the contemporary film industry, accurately predicting a movie's earnings is paramount for maximizing profitability. This project aims to develop a machine learning model for predicting movie earnings based on input features like the…

Machine Learning · Computer Science 2024-05-21 Vikranth Udandarao , Pratyush Gupta

The film industry is one of the most popular entertainment industries and one of the biggest markets for business. Among the contributing factors to this would be the success of a movie in terms of its popularity as well as its box office…

Machine Learning · Computer Science 2021-12-02 Manav Agarwal , Shreya Venugopal , Rishab Kashyap , R Bharathi

'There is no terror in the bang, only is the anticipation of it' - Alfred Hitchcock. Yet there is everything in correctly anticipating the bang a movie would make in the box-office. Movies make a high profile, billion dollar industry and…

Computers and Society · Computer Science 2018-04-11 Sharmistha Dey

This paper proposes a decision support system to aid movie investment decisions at the early stage of movie productions. The system predicts the success of a movie based on its profitability by leveraging historical data from various…

Artificial Intelligence · Computer Science 2017-06-13 Michael T. Lash , Kang Zhao

Movie-making has become one of the most costly and risky endeavors in the entertainment industry. Continuous change in the preference of the audience makes it harder to predict what kind of movie will be financially successful at the box…

Information Retrieval · Computer Science 2021-12-08 Arnab Sen Sharma , Tirtha Roy , Sadique Ahmmod Rifat , Maruf Ahmed Mridul

Movie ratings play an important role both in determining the likelihood of a potential viewer to watch the movie and in reflecting the current viewer satisfaction with the movie. They are available in several sources like the television…

Information Retrieval · Computer Science 2016-05-02 Eric Makita , Artem Lenskiy

This paper proposes a movie genre-prediction based on multinomial probability model. To the best of our knowledge, this problem has not been addressed yet in the field of recommender system. The prediction of a movie genre has many…

Information Retrieval · Computer Science 2016-03-28 Eric Makita , Artem Lenskiy

In this paper, we propose a movie genre recommendation system based on imbalanced survey data and unequal classification costs for small and medium-sized enterprises (SMEs) who need a data-based and analytical approach to stock favored…

Information Retrieval · Computer Science 2018-12-07 Haifeng Wang

Addressing the cold-start issue in content recommendation remains a critical ongoing challenge. In this work, we focus on tackling the cold-start problem for movies on a large entertainment platform. Our primary goal is to forecast the…

Information Retrieval · Computer Science 2025-05-06 Shaghayegh Agah , Yejin Kim , Neeraj Sharma , Mayur Nankani , Kevin Foley , H. Howie Huang , Sardar Hamidian

Use of socially generated "big data" to access information about collective states of the minds in human societies has become a new paradigm in the emerging field of computational social science. A natural application of this would be the…

Physics and Society · Physics 2023-01-05 Márton Mestyán , Taha Yasseri , János Kertész

The movie industry is associated with an elevated level of risk, which necessitates the use of automated tools to predict box-office revenue and facilitate human decision-making. In this study, we build a sophisticated multimodal neural…

Multimedia · Computer Science 2025-09-22 Qin Chao , Eunsoo Kim , Boyang Li

Television is an ever-evolving multi billion dollar industry. The success of a television show in an increasingly technological society is a vast multi-variable formula. The art of success is not just something that happens, but is studied,…

Machine Learning · Computer Science 2019-10-29 Ramya Akula , Zachary Wieselthier , Laura Martin , Ivan Garibay

The film industry is characterized by significant financial uncertainty, where large production investments do not always guarantee commercial success. This study analyzes the relationship between release season, production budget, and…

Econometrics · Economics 2026-05-14 Mohammad Jalili Torkamani , Pedro Gomes , Amirmohammad Sadeghnejad , Jason Le

Folksonomy of movies covers a wide range of heterogeneous information about movies, like the genre, plot structure, visual experiences, soundtracks, metadata, and emotional experiences from watching a movie. Being able to automatically…

Computation and Language · Computer Science 2018-08-16 Sudipta Kar , Suraj Maharjan , Thamar Solorio

Deciding which scripts to turn into movies is a costly and time-consuming process for filmmakers. Thus, building a tool to aid script selection, an initial phase in movie production, can be very beneficial. Toward that goal, in this work,…

Computation and Language · Computer Science 2020-05-14 Ming-Chang Chiu , Tiantian Feng , Xiang Ren , Shrikanth Narayanan

The generation of novelty is central to any creative endeavor. Novelty generation and the relationship between novelty and individual hedonic value have long been subjects of study in social psychology. However, few studies have utilized…

Physics and Society · Physics 2013-10-07 Sameet Sreenivasan

Investments in movie production are associated with a high level of risk as movie revenues have long-tailed and bimodal distributions. Accurate prediction of box-office revenue may mitigate the uncertainty and encourage investment. However,…

Multimedia · Computer Science 2023-04-21 Qin Chao , Eunsoo Kim , Boyang Li

Much work has been done in understanding human creativity and defining measures to evaluate creativity. This is necessary mainly for the reason of having an objective and automatic way of quantifying creative artifacts. In this work, we…

Machine Learning · Computer Science 2017-07-19 Disha Shrivastava , Saneem Ahmed CG , Anirban Laha , Karthik Sankaranarayanan

This study presents a hybrid framework for predicting movie success. The framework integrates multi-task learning (MTL), GPT-based sentiment analysis, and Susceptible-Infected-Recovered (SIR) propagation modeling. The study examines…

Social and Information Networks · Computer Science 2026-01-21 Wenlan Xie

Audience discovery is an important activity at major movie studios. Deep models that use convolutional networks to extract frame-by-frame features of a movie trailer and represent it in a form that is suitable for prediction are now…

Information Retrieval · Computer Science 2018-07-13 Miguel Campo , Cheng-Kang Hsieh , Matt Nickens , JJ Espinoza , Abhinav Taliyan , Julie Rieger , Jean Ho , Bettina Sherick
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