For decades, the Standard Model of particle physics has defined our understanding of the fundamental constituents of matter and the ways in which they interact. With the discovery of the Higgs boson in 2012, all of the components of the Standard Model are now in place, and yet at the same time we know that it is not a complete description of the Universe. The most obvious exception is the lack of a description for how particles interact with the gravitational force, but even neglecting this limitation, there are several open questions that the Standard Model does not provide an answer to.
One key ingredient that is beyond any Standard Model explanation is the existence of dark matter. We have seen clear evidence for the presence of dark matter in numerous different astronomical observations, and we have even measured the dark matter abundance in the Universe to be five times that of the normal matter that we are familiar with in our everyday lives. However, despite all of these observations in the Universe, we have yet to find any experiment-verified means by which the properties of dark matter and its interactions with the Standard Model can be described.
One of the leading classes of theories posits that dark matter is a particle which only weakly interacts with the Standard Model; if this is the case, dark matter could be produced very rarely in collisions at the Large Hadron Collider (LHC) at CERN in Geneva. Discovering such dark matter would require the analysis of enormous datasets, and the LHC experimental community is actively searching for such possibilities.
The DISCOVERHEP project starts from this baseline, but turns the normal dataset analysis strategy on its head. When the two proton beams of the LHC are collided, this results in many individual proton-proton collisions. The normal analysis strategy focuses on a single one of these collisions, typically looking at those which are very energetic: such energetic collisions were impossible to produce at previous particle colliders, and thus the discovery of dark matter may just be waiting for us to reach a high-enough energy. Instead, the DISCOVERHEP project discards the high energy collision, and focuses on analysing all of the low energy collisions: perhaps dark matter was not seen at previous colliders because it so rarely interacts with the Standard Model, and thus the discovery of dark matter may be waiting for a larger dataset of low-energy collisions.