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3D Reconstruction from Multiple Images, Part 1: Principles discusses and explains methods to extract 3-dimensional (3D) models from plain images. In particular, the 3D information is obtained from images for which the camera parameters are unknown. The principles underlying such uncalibrated structure-from-motion methods are outlined. First, a short review of 3D acquisition technologies puts such methods in a wider context, and highlights their important advantages. Then, the actual theory behind this line of research is given. The authors have tried to keep the text maximally self-contained, therefore also avoiding relying on an extensive knowledge of the projective concepts that usually appear in texts about self-calibration 3D methods. Rather, mathematical explanations that are more amenable to intuition are given. The explanation of the theory includes the stratification of reconstructions obtained from image pairs as well as metric reconstruction on the basis of more than 2 images combined with some additional knowledge about the cameras used. 3D Reconstruction from Multiple Images, Part 1: Principles is the first of a 3-part Foundations and Trends tutorial on this topic written by the same authors. Part II will focus on more practical information about how to implement such uncalibrated structure-from-motion pipelines, while Part III will outline an example pipeline with further implementation issues specific to this particular case, and including a user guide.