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| CAPTCHA Type | Accuracy | | --- | --- | | Simple text-based CAPTCHA | 90% | | Distorted text-based CAPTCHA | 80% | | Noisy text-based CAPTCHA | 70% |

[4] J. K. Lal, P. S. Kumar, and S. K. Sahu, "A Survey on CAPTCHA and CAPTCHA Breaking Techniques," Journal of Intelligent Information Systems, vol. 54, no. 2, pp. 267-286, 2020.

We conducted experiments on a dataset of text-based CAPTCHAs to evaluate the effectiveness of the machine learning-based approach. The results are shown in Table 1.

[2] C. D. Manning and H. Schütze, "Foundations of Statistical Natural Language Processing," MIT Press, 1999.

[3] Y. LeCun, Y. Bengio, and G. Hinton, "Deep Learning," Nature, vol. 521, no. 7553, pp. 436-444, 2015.

CAPTCHAs are widely used to prevent automated programs from accessing a system or performing certain actions. However, with the advancement of artificial intelligence and machine learning techniques, CAPTCHAs have become increasingly vulnerable to being broken. This paper provides a comprehensive overview of CAPTCHA, its history, types, and vulnerabilities. Additionally, we discussed various CAPTCHA breaker techniques, including machine learning-based approaches, and analyzed their effectiveness. The experimental results show that the machine learning-based approach can achieve high accuracy on simple text-based CAPTCHAs, but the accuracy decreases as the CAPTCHA becomes more distorted or noisy.

CAPTCHA (Completely Automated Public Turing test to tell Computers and Humans Apart) is a widely used challenge-response test designed to determine whether the user is human or a computer. The primary goal of CAPTCHA is to prevent automated programs, also known as bots, from accessing a system or performing certain actions. However, with the advancement of artificial intelligence and machine learning techniques, CAPTCHAs have become increasingly vulnerable to being broken. This paper provides a comprehensive overview of CAPTCHA, its history, types, and vulnerabilities. Additionally, we will discuss various CAPTCHA breaker techniques, including machine learning-based approaches, and analyze their effectiveness.

[1] L. von Ahn, M. Blum, N. J. Hopper, and J. Langford, "CAPTCHA: Using Hard AI Problems for Security," in Proceedings of the 22nd Annual International Cryptology Conference, 2000.

Our differential values

CompanyGame develops complete gamification solutions that allow users to train, evaluate and achieve personal development.

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Simulators

Wide range of simulators, from lower to higher level of difficulty, different themes, valid for business training through a realistic management experience.

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Platform

Smart business simulation platform that includes analysis and metrics of student and teacher activities. Quantitatively and qualitatively evaluate the user experience using artificial intelligence.

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Support

Continuous personalized support service for teachers and students that involves the continuous training of teachers and coordinators.

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Tailored

Tailor-made developments for companies and training centers, applicable to training actions or support processes for business decision-making.

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Competitions

The Reto CompanyGame has generated a space where more than 250 universities meet annually. Competitions of the same style have been developed in Spain, Colombia, Ecuador-Peru or Mexico..

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Gamification

We develop training, marketing, internal communication and talent recruitment solutions based on gamification and tailored to the needs of companies and universities.

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What is a simulator?

CompanyGame business simulators allow you to put into practice and consolidate knowledge in different areas, in addition to developing and enhancing business management skills, in an environment that simulates reality.

Our simulators

CompanyGame has developed 6 categories of simulators.

Created for different levels and game modes, and focused on different industries.

Business & Strategy


Each simulator is developed in a specific business environment. Depending on the different decision areas and business processes included in the simulation model, CompanyGame simulators are used in more than one theme.

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Marketing & Sales


Understand the keys to marketing services or products, identify the main decision areas involved in this field, put knowledge into practice and understand key management indicators.

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Finance & Banking


Understand the main concepts and tools of economic-financial management, assess the financing needs of the company and establish financial guidelines.

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Entrepreneurship


Understand the steps to follow in the process of starting a new business. Create a business plan to be implemented later.

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Business Transformation


Manage a company that needs to make a change in the business model, especially produced by technological evolution.

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Hospitality & Services


Understand the economic and financial management and marketing of services in the hotel industry, ranging from a simple hotel to a complex chain of hotels.

Discover the full range of our simulators:
See all

Training courses

Training offer based on Courses with Business Simulators
Download Pdf.

Annual and international events

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Iberoamerican Symposium

in Business Simulation and Educational Innovation

The Symposium brings together authorities, organizations, teachers and experts in education and technology in the field of business administration to discuss the changes expected in the environment and the most appropriate responses from higher education institutions.

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Reto Companygame

International competition between the most important universities in Ibero-America

The Reto CompanyGame is an exceptional training and development opportunity in the field of business management and business administration.

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In the new era of communication

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We have created an international network at the service of innovation in training through business simulation.

At CompanyGame we are involved with the business world and the university educational community around the world for the development and application of the business simulator platform for training at all levels, from pre-university to professionals.

Alberto Marín
Founder & CEO at CompanyGame

Customers

We highlight our collaboration with:

Captcha+breaker 【Edge】

| CAPTCHA Type | Accuracy | | --- | --- | | Simple text-based CAPTCHA | 90% | | Distorted text-based CAPTCHA | 80% | | Noisy text-based CAPTCHA | 70% |

[4] J. K. Lal, P. S. Kumar, and S. K. Sahu, "A Survey on CAPTCHA and CAPTCHA Breaking Techniques," Journal of Intelligent Information Systems, vol. 54, no. 2, pp. 267-286, 2020.

We conducted experiments on a dataset of text-based CAPTCHAs to evaluate the effectiveness of the machine learning-based approach. The results are shown in Table 1. captcha+breaker

[2] C. D. Manning and H. Schütze, "Foundations of Statistical Natural Language Processing," MIT Press, 1999.

[3] Y. LeCun, Y. Bengio, and G. Hinton, "Deep Learning," Nature, vol. 521, no. 7553, pp. 436-444, 2015. | CAPTCHA Type | Accuracy | | ---

CAPTCHAs are widely used to prevent automated programs from accessing a system or performing certain actions. However, with the advancement of artificial intelligence and machine learning techniques, CAPTCHAs have become increasingly vulnerable to being broken. This paper provides a comprehensive overview of CAPTCHA, its history, types, and vulnerabilities. Additionally, we discussed various CAPTCHA breaker techniques, including machine learning-based approaches, and analyzed their effectiveness. The experimental results show that the machine learning-based approach can achieve high accuracy on simple text-based CAPTCHAs, but the accuracy decreases as the CAPTCHA becomes more distorted or noisy.

CAPTCHA (Completely Automated Public Turing test to tell Computers and Humans Apart) is a widely used challenge-response test designed to determine whether the user is human or a computer. The primary goal of CAPTCHA is to prevent automated programs, also known as bots, from accessing a system or performing certain actions. However, with the advancement of artificial intelligence and machine learning techniques, CAPTCHAs have become increasingly vulnerable to being broken. This paper provides a comprehensive overview of CAPTCHA, its history, types, and vulnerabilities. Additionally, we will discuss various CAPTCHA breaker techniques, including machine learning-based approaches, and analyze their effectiveness. Sahu, "A Survey on CAPTCHA and CAPTCHA Breaking

[1] L. von Ahn, M. Blum, N. J. Hopper, and J. Langford, "CAPTCHA: Using Hard AI Problems for Security," in Proceedings of the 22nd Annual International Cryptology Conference, 2000.

Michelin

Michelin

Banesto

Banesto

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Paradores

Banamex

Banamex

Consultec

Consultec

ENAN

Universidad Panamericana (UPANA) - ENAN

Escuela de Organización Industrial

Escuela de Organización Industrial (EOI)

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Universidad Autónoma de Barcelona (UAB)

Universidad Privada Abierta Latinoamericana (UPAL)

Universidad Privada Abierta Latinoamericana (UPAL)

Universidad de Cantabria (UC)

Universidad de Cantabria (UC)

Universidad de Deusto (UoD)

Universidad de Deusto (UoD)