Summary
Sensory register
When an environmental stimulus is detected by the senses, it is briefly available in what Atkinson and Shiffrin called the ''sensory registers'' (also ''sensory buffers'' or '' sensory memory''). Though this store is generally referred to as "the sensory register" or "sensory memory", it is actually composed of multiple registers, one for each sense. The sensory registers do not process the information carried by the stimulus, but rather detect and hold that information for use in short-term memory. For this reason Atkinson and Shiffrin also called the registers "buffers", as they prevent immense amounts of information from overwhelming higher-level cognitive processes. Information is only transferred to the short-term memory when attention is given to it, otherwise it decays rapidly and is forgotten. While it is generally agreed that there is a sensory register for each sense, most of the research in the area has focused on the visual and auditory systems.Iconic memory
Echoic memory
Short-term store
While much of the information in sensory memory decays and is forgotten, some is attended to. The information that is attended is transferred to the ''short-term store'' (also ''Duration
As with sensory memory, the information that enters short-term memory decays and is lost, but the information in the short-term store has a longer duration, approximately 18–20 seconds when the information is not being actively rehearsed, though it is possible that this depends on modality and could be as long as 30 seconds. Fortunately, the information can be held in the short-term store for much longer through what Atkinson and Shiffrin calledCapacity
There is a limit to the amount of information that can be held in the short-term store: 7 ± 2 chunks. These chunks, which were noted by Miller in his seminal paper ''The Magical Number Seven, Plus or Minus Two'', are defined as independent items of information. It is important to note that some chunks are perceived as one unit though they could be broken down into multiple items, for example "1066" can be either the series of four digits "1, 0, 6, 6" or the semantically grouped item "1066" which is the year theLong-term store
The ''long-term store'' (also ''long-term memory'') is a more or less permanent store. Information that is stored here can be "copied" and transferred to the short-term store where it can be attended to and manipulated.Transfer from STS
Information is postulated to enter the long-term store from the short-term store more or less automatically. As Atkinson and Shiffrin model it, transfer from the short-term store to the long-term store is occurring for as long as the information is being attended to in the short-term store. In this way, varying amounts of attention result in varying amounts of time in short-term memory. Ostensibly, the longer an item is held in short-term memory, the stronger its memory trace will be in long-term memory. Atkinson and Shiffrin cite evidence for this transfer mechanism in studies by Hebb (1961) and Melton (1963) which show that repeated rote repetition enhances long-term memory. One may also think to the original Ebbinghaus memory experiments showing that forgetting increases for items which are studied fewer times. Finally, the authors note that there are stronger encoding processes than simple rote rehearsal, namely relating the new information to information which has already made its way into the long-term store.Capacity and duration
In this model, as with most models of memory, long-term memory is assumed to be nearly limitless in its duration and capacity. It is most often the case that brain structures begin to deteriorate and fail before any limit of learning is reached. This is not to assume that any item which is stored in long-term memory is accessible at any point in the lifetime. Rather, it is noted that the connections, cues, or associations to the memory deteriorate; the memory remains intact but unreachable.Evidence for distinct stores
At the time of the original publication there was a schism in the field of memory on the issue of a single process or dual-process model of memory, the two processes referring to short-term and long-term memory. Atkinson and Shiffrin cite hippocampal lesion studies as compelling evidence for a separation of the two stores. These studies showed that patients with bilateral damage to the hippocampal region had nearly no ability to form new long-term memories though their short-term memory remained intact. One may also be familiar with similar evidence found through the study of Henry Molaison, famously known as H.M., who underwent a severe bilateral medial temporal lobectomy which removed most of his hippocampal regions. These data suggest that there is indeed a clear separation between the short-term and long-term stores.Criticism
Sensory register as a separate store
One of the early and central criticisms to the Atkinson-Shiffrin model was the inclusion of the sensory registers as part of memory. Specifically, the original model seemed to describe the sensory registers as both a structure and a control process. Parsimony would suggest that if the sensory registers are actually control processes, there is no need for a tri-partite system. Later revisions to the model addressed these claims and incorporated the sensory registers with the short-term store.Division and nature of working memory
Baddeley and Hitch have in turn called to question the specific structure of the short-term store, proposing that it is subdivided into multiple components. While the different components were not specifically addressed in the original Atkinson-Shiffrin model, the authors do note that little research has been done investigating the different ways sensory modalities may be represented in the short-term store. Thus the model of working memory given by Baddeley and Hitch should be viewed as a refinement of the original model. :Rehearsal as the sole transfer mechanism
The model has been further criticized as suggesting that rehearsal is the key process which initiates and facilitates transfer of information into LTM. There is very little evidence supporting this hypothesis, and long-term recall can in fact be better predicted by a levels-of-processing framework. In this framework, items which are encoded at a deeper, more semantic level are shown to have stronger traces in long-term memory. This criticism is somewhat unfounded as Atkinson and Shiffrin clearly state a difference between rehearsal and coding, where coding is akin to elaborative processes which levels-of-processing would call deep-processing. In this light, the levels-of-processing framework could be seen as more of an extension of the Atkinson-Shiffrin model rather than a refutation. :Division of long-term memory
In the case of long-term memory, it is unlikely that different types of information, such as the motor skills to ride a bike, memory for vocabulary, and memory for personal life events are stored in the same fashion. Endel Tulving notes the importance of encoding specificity in long-term memory. To clarify, there are definite differences in the way information is stored depending on whether it is episodic (memories of events), procedural (knowledge of how to do things), or semantic (general knowledge). A short (non-inclusive) example comes from the study of Henry Molaison (H.M.): learning a simple motor task (tracing a star pattern in a mirror), which involves implicit and procedural long-term storage, is unaffected by bilateral lesioning of the hippocampal regions while other forms of long-term memory, like vocabulary learning (semantic) and memories for events, are severely impaired. :Further reading
For more thorough and technical reviews of the main criticisms please refer to the following resources: * *Search of associative memory (SAM)
Due to the above and other criticism through the 1970s, the original model underwent many revisions to account for phenomena it could not explain. The "search of associative memory" (SAM) model is the culmination of that work. The SAM model uses a two-phase memory system: short- and long-term stores. Unlike the original Atkinson–Shiffrin model, there is no sensory store in the SAM model.Short-term store
Short-term store takes on the form of a buffer, which has a limited capacity. The model assumes a buffer rehearsal system in which the buffer has a size, ''r''. Items enter the short-term store and accompany other items that are already present in the buffer, until size ''r'' has been reached. Once the buffer is at full capacity, when new items enter, they replace an item, ''r'', which already exists in the buffer. A probability of 1/''r'' determines which already existing item will be replaced from the buffer. In general, items that have been in the buffer for longer are more likely to be replaced by new items.Long-term store
The long-term store is responsible for storing relationships between different items and of items to their contexts. Context information refers to the situational and temporal factors present at the time when an item is in the short-term store, such as emotional feelings or environmental details. The amount of item-context information which is transferred to the long-term store is proportional to the amount of time that the item remains in the short-term store. On the other hand, the strength of the item-item associations is proportional to the amount of time that two items simultaneously existed in the short-term store.Retrieval from long-term store
Recency effects
The usefulness of the SAM model and in particular its model of the short-term store is often demonstrated by its application to the recency effect in free recall. When serial-position curves are applied to SAM, a strong recency effect is observed, but this effect is strongly diminished when a distractor, usually arithmetic, is placed in between study and test trials. The recency effect occurs because items at the end of the test list are likely to still be present in short-term store and therefore retrieved first. However, when new information is processed, this item enters the short-term store and displaces other information from it. When a distracting task is given after the presentation of all items, information from this task displaces the last items from short-term store, resulting in a substantial reduction of recency.Problems for the SAM model
The SAM model faces serious problems in accounting for long-term recency data and long-range contiguity data. While both of these effects are observed, the short-term store cannot account for the effects. Since a distracting task after the presentation of word pairs or large interpresentation intervals filled with distractors would be expected to displace the last few studied items from the short-term store, recency effects are still observed. According to the rules of the short-term store, recency and contiguity effects should be eliminated with these distractors as the most recently studied items would no longer be present in the short-term memory. Currently, the SAM model competes with single-store free recall models of memory, such as the Temporal Context Model. Additionally, the original model assumes that the only significant associations between items are those formed during the study portion of an experiment. In other words, it does not account for the effects of prior knowledge about to-be-studied items. A more recent extension of the model incorporates various features which allow the model to account for memory store for the effects of prior semantic knowledge and prior episodic knowledge. The extension proposes a store for preexisting semantic associations; a contextual drift mechanism allowing for decontextualisation of knowledge, e.g. if you first learned a banana was a fruit because you put it in the same class as apple, you do not always have to think of apples to know bananas are fruits; a memory search mechanism that uses both episodic and semantic associations, as opposed to a unitary mechanism; and a large lexicon including both words from prior lists and unpresented words.References
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