将机器学习融入城市教学法:解决 Skid Row 的无家可归问题

Taraneh Meshkani
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引用次数: 0

摘要

本文研究了机器学习在城市和建筑教育中的应用,重点是解决洛杉矶 Skid Row 的无家可归问题。它介绍了一个城市设计工作室利用数据驱动方法提出过渡性住房解决方案的案例研究,强调了设计在社会正义背景下的重要性。研究探讨了如何利用机器学习和数字制图对 Skid Row 密集的无家可归者进行详细分析,让学生深入了解城市面临的挑战。研究还指出了将这些技术融入教育框架的复杂性,包括数据准确性、技术障碍和伦理考虑等问题。论文最后倡导在建筑和城市设计教育中采用跨学科、数据知情和具有社会意识的方法,强调其在培养学生有效解决当代城市问题方面的必要性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Integrating Machine Learning in Urban Pedagogy: Addressing Homelessness in Skid Row
This paper investigates the application of machine learning in urban and architectural education, with a focus on addressing homelessness in Skid Row, Los Angeles. It presents a case study of an urban design studio utilizing data-driven methods to propose transitional housing solutions, emphasizing the importance of design in the context of social justice. The study explores the use of machine learning and digital cartography for a detailed analysis of Skid Row’s dense homeless population, offering students a thorough insight into urban challenges. The research also identifies the complexities involved in integrating these technologies into educational frameworks, including issues with data accuracy, technical hurdles, and ethical considerations. The paper concludes by advocating for an interdisciplinary, data-informed, and socially conscious approach in architectural and urban design education, highlighting its necessity in preparing students to effectively tackle contemporary urban problems.
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