Our everyday experiences often contain overlapping information. Prior knowledge can sometimes support new learning by providing a scaffold, but it can also interfere with learning, creating confusion and hindering performance1,2,3,4. For example, when visiting a new grocery store, people can readily locate carts or checkout counters by relying on knowledge acquired from previous grocery store layouts. However, remembering the exact location of a specific item may be more difficult when its placement differs from that in a familiar store. This illustrates a broader question: under what conditions does prior experience facilitate new learning, and when does it interfere with it?
Researchers have long investigated how prior knowledge affects learning, but evidence for its facilitatory and interfering effects has often emerged from distinct experimental paradigms1,2,3,4. Consequently, developing a coherent account of how prior knowledge influences the acquisition of new information remains challenging. Interference effects are typically examined using word-pair learning tasks1,2,5,6,7. In these tasks, participants first learn a set of word pairs (e.g., A-B), then learn a second list in which some pairs share an item with the first list (e.g., A-C), along with control pairs without overlap (e.g., D-E). When the shared item (A) is used as a retrieval cue, recall of the second-list pair (C) is often impaired, a phenomenon known as proactive interference6. This effect is commonly attributed to competition between the previously learned association (A-B) and the newer association (A-C), reducing the likelihood of retrieving the latter5.
In contrast, facilitation effects have been observed in object-location learning tasks3,8. In these tasks, participants learn the positions of multiple objects on a grid, and learning is enhanced when a new set of objects is presented within a previously learned spatial layout rather than a novel one. This beneficial effect of overlapping spatial structure has been demonstrated in both humans and rodents3,8, highlighting how prior knowledge can support new learning. Importantly, prior spatial knowledge represents only one form of schematic knowledge that can influence behavior9. Schemas may also include semantic knowledge (e.g., grocery stores sell food but may also carry household items), which can facilitate the acquisition of new information and guide behavior more broadly9. For example, if someone wishes to purchase an apple, they may rely on an existing schema that it is more likely to be found in a grocery store than in a hardware store.
The Grid Learning Task (GLT)10 was developed to provide a unified framework for examining how prior knowledge influences new learning by incorporating both facilitation and interference within a single task. In the GLT, participants learn multiple object-location grids, repeating the learning process until all object locations are remembered. Crucially, the type of overlap between consecutive grids is manipulated. In the Location overlap condition, different objects are presented within the same spatial layout. In the Object overlap condition, the same objects are presented in different locations. Previous findings showed that learning is facilitated when spatial layouts overlap but impaired when object identities overlap10. However, initial applications of the GLT compared overlap conditions across participants10, raising the possibility that these opposing effects reflected individual differences rather than overlap type itself.
The present protocol describes a modified within-subjects version of the GLT in which each participant experiences all overlap conditions. This methodological modification reduces between-subject variability and allows facilitation and interference to be measured within the same individual. As a result, the design more directly tests whether different forms of prior knowledge exert distinct influences on new learning. Collectively, these findings suggest that the type of prior knowledge may determine whether prior experience facilitates or hinders subsequent learning.
The objective of the GLT is to quantify how prior experience influences new learning in human participants by measuring learning attempts within a within-subject grid-learning paradigm that systematically manipulates overlap types, thereby assessing facilitation and interference effects on learning performance. By enabling the measurement of both facilitation and interference within a single paradigm, the GLT provides a unified framework for studying how prior experience shapes new learning. Unlike existing paradigms that typically examine facilitation or interference in isolation1,2,3,5,6,7,8, the GLT systematically manipulates overlap while maintaining a consistent task structure. This approach allows direct comparison of how different forms of prior information influence learning within individuals. One potential limitation is that facilitation and interference effects may vary with the order in which overlap conditions are presented, leading to under- or overestimation. Nevertheless, the GLT remains a versatile tool for investigating the mechanisms underlying memory, learning, generalization, and interference, as well as individual differences in susceptibility to prior-knowledge effects across learning contexts.