October 30 Nagoya Seminar: Utilizing Data for Quality Improvement
Statistical analysis software JMP
Solving issues such as 'missing signs of abnormalities' and 'being unable to identify the cause when problems occur'!
This is a free in-person seminar held in Nagoya for manufacturing engineers in the Chubu region, using the statistical analysis software JMP. In this seminar, we will cover practical methods for quality control and factor analysis, introducing data-driven problem-solving approaches. We will explain analytical approaches that can be utilized in manufacturing settings, from monitoring quality to investigating causes when problems arise, with demonstrations included. 【Target Audience】 - Quality control personnel in manufacturing - Production technology and process improvement personnel - Those who want to utilize process and quality data - Those who feel challenges in factor analysis when problems occur 【What You Will Learn in This Seminar】 - How to monitor abnormalities in processes and quality - In what situations control charts can be utilized - Methods to identify key factors among numerous process variables - Thinking approaches to narrow down causes based on data ▼Details & Registration https://www.jmp.com/ja/events/seminars/discovery-seminar-series/2026/10-30
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Date and Time: October 30, 2026 (Friday) 14:00 - 16:00 Venue: TKP Garden City PREMIUM Nagoya Meieki West Exit 2F Sirius Address: 1-6-3 Noritake, Nakamura Ward, Nagoya City, Aichi Prefecture, Belvue Office Nagoya 5-minute walk from Nagoya Station Overview: 1) Taking Quality Control to the Next Step - Utilizing JMP Beyond Just Control Charts - In quality control, it is important not only to monitor processes through control charts and process capability analysis but also to identify causes during abnormal occurrences and share information with stakeholders. However, there are many cases in the field where analysis results are not sufficiently utilized or shared. Using quality control operations as a subject, we will introduce the flow from control charts and process capability analysis to cause exploration, and how to share the created analysis results within the organization using JMP Live. 2) Data-Driven Cause Analysis and Quality Improvement When issues related to quality or yield decline occur, quickly identifying the cause is not easy. We will explain through demonstrations examples of analytical approaches to efficiently narrow down the causes of problems using process data and quality data, from detecting anomalies using multivariate control charts to exploring causes through visualization and multivariate analysis, all aimed at quality improvement through data analysis.
Price information
Free (Pre-registration is required from the page below) https://www.jmp.com/ja/events/seminars/discovery-seminar-series/2026/10-30 Capacity: 40 people (first-come, first-served)
Delivery Time
※After your application, we will process it on a first-come, first-served basis and send you a confirmation email. One week before the event date, we will send you a ticket email containing information on how to enter.
Applications/Examples of results
"Democratization of Data" - Sharing the "Wisdom" of Manufacturing Across the Company: TOTO's New Exploration of "Good Products and Uniformity" [Challenge] The manufacturing of sanitary ceramics using natural raw materials involves approximately 13% shrinkage during the drying and firing processes. As products become larger and more complex, the challenge is how to maintain "uniform" high quality and to convert the "tacit knowledge" of skilled artisans into "explicit knowledge" for the next generation. This has been a critical issue at TOTO Ltd., which has a history of over 100 years and is fundamental to the company's manufacturing. [Solution] We introduced "exploratory data analysis" using JMP on the manufacturing data from the advanced Shiga factory. By deepening the high yield achieved through the introduction of the first barcode system in the sanitary ceramics factory, we quantified the "good product conditions" using visual verification with graph builders and techniques such as partitioning and cluster analysis, resulting in improvements in direct delivery rates and yield. Additionally, we adopted JMP for the foundational education of the "in-house study abroad program" over two years, aiming to enhance company-wide data science skills. [Results] Please check the following page for details! https://www.jmp.com/ja/customer-stories/toto
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The JMP story goes back to 1989 when John Sall decided to combine statistical analysis capabilities with graphical visualizations to animate and visualize data. For more than 35 years now, John Sall has led JMP R&D, making each version of JMP more visual, more interactive, and more practical to help users understand their data. What started as a passion project has grown by leaps and bounds. It’s now a family of statistical software products designed with scientists and engineers in mind and used worldwide in nearly every industry.





