Exploring Best Practices for Implementing Secure, Trustworthy and Ethical Artificial Intelligence
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Added on 2023/01/16
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This document explores the best practices for implementing secure, trustworthy, and ethical artificial intelligence. It discusses the human-centered approach, identifying multiple metrics, examining raw data, understanding limitations, and monitoring and updating the system after deployment.
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Artificial Intelligence "Exploring best Practices for implementing Secure, Trustworthy and Ethical Artificial Intelligence." 1
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Artificial Intelligence Experience Being a Doctoral Student Being a Doctoral Student is like a dream come true , it feels that I am doing what I had expected from me to pursue, the opportunity that everyone does not get , I feel privileged. Now I feel that after some years I will have my dream career and satisfaction in life. Most importantly now I am getting good stipend being continuing my path of exploring more knowledge, through this stipend I can now mange my life chores without compromising my hours on other odd jobs and can focus on studying and being independent. Most importantly my Head is also very supportive. Being a PHD student my life and complete process of gaining the knowledge has changed. Now I have specific research targets set by my head to achieve in specified time. My day usually begins at research centre by going through the status of current work I have done and comparing this status with the goals to achieve. I start performing experiments and literature review of the topics assigned by my head. Then after performing the work, I take the results and found data for supervision to my head and then according to his feedback and suggestions I continue my further work. In this process sometimes I found my -self in a very tough situation when I could not get the specified results and positive feedback , in this situation certain thoughts come in my mind like if I will be successful in pursuing PHD like this or not and so on. Then I discuss my problems with my Research Head,he suggests me new techniques of finding the solution and continually motivate me. It is a more learning phase of my life, now along with research study I am learning the procedure of presenting the research papers and participating in the conferences. Along with this now I have elite group of scholar friends and respect in society. 2
Artificial Intelligence Exploring best Practices for implementing Secure, Trustworthy and Ethical Artificial Intelligence. Artificial Intelligence is one of the most emerging fields in computer science, it has opened the new opportunity for improving the life of people around the world, from business to health- care , it is supporting every defiled. With its association of Internet of thing it has opened the new doors to open in technology. But with adaption of Artificial Intelligence in the various fields has raised the question for developing the best practices to build the fairness, interpretability, privacy and security into these systems. Some of the key practices that are suggested by the researchers and practitioners are as follows- Using the human centered approach for designing This is very important as the user experience the system they develop the predictions, recommendations and decisions. This can be achieved by – Designing the features with appropriate display of the built –in-clarity and control is very important for designing a good user experience. Design by considering the augmentation and assistance so that a single answer can satisfy many questions. It is also recommended to model the potential adverse feedback in advance in the design process. Take the suggestion from various users to design various user cases by taking the feedback throughout the project. Identify multiple metrics while designing the application This can be achieved by following these steps- 3
Artificial Intelligence ‘It is suggested by considering the feedback from the users, quantities that help in tracking the overall performance of the system by considering the status of short term and long term goals. By ensuring that selected metrics are appropriate according to the requirements of the project or not. Directly examining the raw data In artificial Intelligence the well designed trained data is required to have well structured raw data. Along with this special attention is required to give to the data with sensitive records by maintaining the principles of ethics and privacy. This can be done by following these steps- Analyze the mistakes in the data by checking the missing values, incorrect labels. Check whether the data is represented in a way that represents the requirements of user. Checking the Training –serving –skew, that determines the difference between the performance during the potential skews and adjusting the data according to the required training data. Then checking the redundancy of the data in appropriate form. Understanding the limitation of the dataset and model It is very important to analyze the limitations of the designed dataset and model. This can be done by following these steps- It is very important that used correlation model does not use the correlation in casual references. The machine learning is highly dependent on the training data set to communicate the scope and coverage of the training data set so clarifying the limitations of the model. Being clear and communicating the limitation of the model to the user is highly recommended. Continue to monitor and updating the system after deployment The continues monitoring helps in ensuring that the model takes the real-world performance and user –feedback and performance of the system to ensure the high 4
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Artificial Intelligence quality work , this can be achieved by building the roadmap to address the concerned issues. It is required to concentrate on the long term and short term goals to achieve the objectives. Before updating the model it is required to concentrate on the affect on the overall quality of the system. The more focus should be provided on the security and maintaining the privacy of the system. The mechanism to provide the security, control and safety is ethically required to consider while designing the system. By considering the augmentation and assistance so that a single answer can satisfy many questions. It is also recommended to model the potential adverse feedback in advance in the design process. Take the suggestion from various users to design various user cases by taking the feedback throughout the project. Qualitative Data Coding Process The coding is considered as a way of indexing or categorizing the text to establish the framework for the thematic ideas about it. In the qualitative research the coding is considered very important and it helps in defining the analysis of data to obtain the objectives. In this approach the consideration of the coding is done through the approach of the concept-driven coding and data driven . The codes are developed by taking the consideration of the requirement of the data. The researchers can use the concepts of pre-determined coding schemes for developing qualitative data coding process. It is also required to study the previous response and perform the action plan accordingly. It is required to analyze the paragraphs which contain the similar coding and develop a systematic approach for it. It is highly required to note down the meaning of the codes and prevent the coder variance in it. It is required to follow the principles of the quantitative coding approach or priori coding . The Grounded coding refers to the approach of allowing the notable themes and patterns that emerge in the document itself. Along with this the priori coding refers to the approach of using the pre-existed framework for doing the coding work. Referencing Richard.E , (2018),Artificial Intelligence ,CRC Publication 5