S2D2: Small-scale Significant substructure DBSCAN Detection I. NESTs detection in 2D star-forming regions
arXiv:2011.10574 · doi:10.1051/0004-6361/202038123
Abstract
The spatial and dynamical structure of star-forming regions can help provide insights on stellar formation patterns. The amount of data from current and upcoming surveys calls for robust and objective procedures to detect structure, so the results can be statistically analysed and different regions compared. We provide the community with a tool able to detect the small scale significant structure, above random expectation, in star-forming regions, which could be the imprint of the stellar formation process. The tool makes use of the one point correlation function and of nearest neighbour statistics to determine the parameters for the DBSCAN algorithm. The procedure successfully detects significant small scale substructures in heterogeneous regions, fulfilling the goals it was designed for, and providing very reliable structures. The analysis of regions close to complete spatial randomness () shows that, even when some structure is present and recovered, it is hardly distinguishable from spurious detection in homogeneous regions due to projection effects. Interpretation should thus be done with care. For concentrated regions, we detect a main structure surrounded by smaller ones, corresponding to the core plus some Poisson fluctuations around it. We argue that these structures do not correspond to the small compact regions we are looking for. In some realistic cases, a more complete hierarchical, multi-scale analysis would be needed to capture the complexity of the region. We have developed implementations of our procedure, and a catalogue of the NESTs (Nested Elementary STructures) detected by it in four star-forming regions (Taurus, IC 348, Upper Scorpius, and Carina), which are publicly available to the community. Implementations of the 3D, and up to 6D versions of the procedure including proper movements are in progress, and will be provided as future work.
24 pages, 21 figures. Accepted for publication in A&A. Abstract abridged
References in corpus (19)
- The Gaia mission
- Kernel density estimation via diffusion
- A Spitzer Survey of Young Stellar Clusters within One Kiloparsec of the Sun: Cluster Core Extraction and Basic Structural Analysis
- Using the minimum spanning tree to trace mass segregation
- The Spatial Structure of Young Stellar Clusters. I. Subclusters
- Spatial Distributions of Young Stars
- Structure and mass segregation in Galactic stellar clusters
- Comparisons between different techniques for measuring mass segregation
- Multiplicity and clustering in Taurus star-forming region. I. Unexpected ultra-wide pairs of high-order multiplicity in Taurus
- A census of Oph candidate members from Gaia DR2
- The Spatial Evolution of Young Massive Clusters I. A New Tool to Quantitatively Trace Stellar Clustering
- : Characterising the structure of young star clusters
- A tale of two clusters: dynamical history determines disc survival in Tr14 and Tr16 in the Carina Nebula
- Phase-space structures and stellar populations in the star-forming region NGC~ 2264
- Statistical model for filamentary structures of molecular clouds -- The modified multiplicative random cascade model and its multifractal nature
- Insights from Simulations of Star Formation
- Analysis of the Kinematic Structure of the Cygnus OB1 association
- Report on Optimal Substructure Techniques for Stellar, Gas and Combined Samples
- Spatial Statistics in Star Forming Regions: Testing the Limits of Randomness