Shyam's Slide Share Presentations

VIRTUAL LIBRARY "KNOWLEDGE - KORRIDOR"

This article/post is from a third party website. The views expressed are that of the author. We at Capacity Building & Development may not necessarily subscribe to it completely. The relevance & applicability of the content is limited to certain geographic zones.It is not universal.

TO VIEW MORE CONTENT ON THIS SUBJECT AND OTHER TOPICS, Please visit KNOWLEDGE-KORRIDOR our Virtual Library

Showing posts with label Behavioral Scinece. Show all posts
Showing posts with label Behavioral Scinece. Show all posts

Sunday, May 10, 2015

It’s Not a ‘Stream’ of Consciousness 05-11

It’s Not a ‘Stream’ of Consciousness 







IN 1890, the American psychologist William James famously likened our conscious experience to the flow of a stream. “A ‘river’ or a ‘stream’ are the metaphors by which it is most naturally described,” he wrote. “In talking of it hereafter, let’s call it the stream of thought, consciousness, or subjective life.”

While there is no disputing the aptness of this metaphor in capturing our subjective experience of the world, recent research has shown that the “stream” of consciousness is, in fact, an illusion. We actually perceive the world in rhythmic pulses rather than as a continuous flow.

Some of the first hints of this new understanding came as early as the 1920s, when physiologists discovered brain waves: rhythmic electrical currents measurable on the surface of the scalp by means of electroencephalography. Subsequent research cataloged a spectrum of such rhythms (alpha waves, delta waves and so on) that correlated with various mental states, such as calm alertness and deep sleep.

Researchers also found that the properties of these rhythms varied with perceptual or cognitive events. The phase and amplitude of your brain waves, for example, might change if you saw or heard something, or if you increased your concentration on something, or if you shifted your attention.

But those early discoveries themselves did not change scientific thinking about the stream-like nature of conscious perception. Instead, brain waves were largely viewed as a tool for indexing mental experience, much like the waves that a ship generates in the water can be used to index the ship’s size and motion (e.g., the bigger the waves, the bigger the ship).

Recently, however, scientists have flipped this thinking on its head. We are exploring the possibility that brain rhythms are not merely a reflection of mental activity but a cause of it, helping shape perception, movement, memory and even consciousness itself.

What this means is that the brain samples the world in rhythmic pulses, perhaps even discrete time chunks, much like the individual frames of a movie. From the brain’s perspective, experience is not continuous but quantized.

Another clue that led to this discovery was the so-called wagon-wheel illusion, in which the spokes on a wheel are sometimes perceived to reverse the direction of their rotation. This illusion is easy to induce with a strobe light if the rotation of the wheel is such that each strobe flash captures the spoke location slightly behind the location captured on the previous flash, leading to the perception of reverse motion. The illusion results from “sampling” the scene in discrete frames or time chunks.

The telling fact, for perceptual scientists, is that this illusion can also occur during normal observation of a rotating wheel, in full daylight. This suggests that the brain itself, even in the absence of a strobe light, is sampling the world in discrete chunks.

Scientists have uncovered still more clues. It turns out, for example, that our ability to detect a subtle event, like a slight change in a visual scene, oscillates over time, cycling between better and worse perceptual sensitivity several times a second. Research shows that these rhythms correlate with electrical rhythms of the brain.


Consider a study that I conducted with my colleagues, forthcoming in the journal Psychological Science. We presented listeners with a three-beat-per-second rhythm (a pulsing “whoosh” sound) for only a few seconds and then asked the listeners to try to detect a faint tone immediately afterward. The tone was presented at a range of delays between zero and 1.4 seconds after the rhythm ended. Not only did we find that the ability to detect the tone varied over time by up to 25 percent — that’s a lot — but it did so precisely in sync with the previously heard three-beat-per-second rhythm.

Why would the brain do this? One theory is that it’s the brain’s way of focusing attention. Picture a noisy cafe filled with voices, clanging dishes and background music. As you attend to one particular acoustic stream — say, your lunch mate’s voice — your brain synchronizes its rhythm to the rhythm of the voice and enhances the perceptibility of that stream, while suppressing other streams, which have their own, different rhythms. (More broadly, this kind of synchronization has been proposed as a mechanism for communication between neural networks within the brain.)

All of this points to the need for a new metaphor. We should talk of the “rhythm” of thought, of perception, of consciousness. Conceptualizing our mental experience this way is not only more accurate, but it also situates our mind within the broader context of the daily, monthly and yearly rhythms that dominate our lives.

View at the original source

Monday, March 9, 2015

Neuroimaging study shows how being in love changes the architecture of your brain 03-10


Neuroimaging study shows how being in love changes the architecture of your brain



















A research team has used neuroimaging techniques to investigate how being in a romantic relationship produces alterations in the architecture of the brain. They found that being in love is associated with increased connectivity between regions of the brain associated with reward, motivation, emotion regulation, and social cognition.
“This study provides the first empirical evidence of love-related alterations in the underlying functional architecture of the brain,” wrote Hongwen Song and his colleagues, who published their findings February 13 in Frontiers in Neuroscience.
The researchers used resting state functional magnetic resonance imaging (rsfMRI) to examine differences in patterns of brain connectivity in 100 college students.
The students were divided into three groups: the “in-love” group, the “ended-love” group, and the “single” group.
The researchers found increased resting brain activity in the left dorsal anterior cingulate cortex in the in-love group, suggesting this area of the brain is closely related to the state of falling in love.
Brain activity in the bilateral caudate nucleus, on the other hand, was significantly decreased in the ended-love group. This brain structure is associated with detection of reward, expectation, representation of goals, and integration of sensory input.
The researchers also found increased connectivity between the left dorsal anterior cingulate cortex, caudate nucleus, nucleus accumbens, and insula — a brain network associated with reward, motivation, and emotion regulation — among the in-love group.
The increase in connectivity in these brain regions “may be the result of frequent efforts [of in-love participants]to monitor their own emotional state, as well as their lovers’ emotional state, monitoring conflicts while adjusting cognitive strategies in order to resolve conflicts so as to maintain their romantic relationship,” the researchers explained.
In addition, the in-love group showed increased connectivity between the temporoparietal junction, posterior cingulate, medial prefrontal cortex, precuneus, and inferior parietal lobe — a brain network associated with social cognition.
“These results shed light on the underlying neurophysiological mechanisms of romantic love by investigating intrinsic brain activity, and demonstrate the possibility of applying a resting state approach for investigating romantic love,” the researchers concluded.