Author: Xin, Doris; Wu, Eva Yiwei; Lee, Doris Jung-Lin; Salehi, Niloufar; Parameswaran, Aditya
                    Title: Whither AutoML? Understanding the Role of Automation in Machine Learning Workflows  Cord-id: z01utn4p  Document date: 2021_1_13
                    ID: z01utn4p
                    
                    Snippet: Efforts to make machine learning more widely accessible have led to a rapid increase in Auto-ML tools that aim to automate the process of training and deploying machine learning. To understand how Auto-ML tools are used in practice today, we performed a qualitative study with participants ranging from novice hobbyists to industry researchers who use Auto-ML tools. We present insights into the benefits and deficiencies of existing tools, as well as the respective roles of the human and automation
                    
                    
                    
                     
                    
                    
                    
                    
                        
                            
                                Document: Efforts to make machine learning more widely accessible have led to a rapid increase in Auto-ML tools that aim to automate the process of training and deploying machine learning. To understand how Auto-ML tools are used in practice today, we performed a qualitative study with participants ranging from novice hobbyists to industry researchers who use Auto-ML tools. We present insights into the benefits and deficiencies of existing tools, as well as the respective roles of the human and automation in ML workflows. Finally, we discuss design implications for the future of Auto-ML tool development. We argue that instead of full automation being the ultimate goal of Auto-ML, designers of these tools should focus on supporting a partnership between the user and the Auto-ML tool. This means that a range of Auto-ML tools will need to be developed to support varying user goals such as simplicity, reproducibility, and reliability.
 
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